bims-barned Biomed News
on BBB and Neurodegeneration-ALS
Issue of 2026–09–27
sixty-two papers selected by
Luca Bolliger, lxBio



  1. Int J Mol Sci. 2026 Sep 09. pii: 8011. [Epub ahead of print]27(18):
      Failure of axonal maintenance is proposed as a mechanism shared by Parkinson's disease (PD) and amyotrophic lateral sclerosis (ALS). We reanalysed three public post-mortem resources under one rule set: bulk RNA-seq of 1242 samples from 319 donors (GSE153960) and midbrain single-nucleus RNA-seq (GSE157783, GSE178265). As a contributing project, a second batch variable tracked diagnosis in both cord segments and was completely separated from it in three cortical regions, which we removed. Adjusting for this removed a third of the naive differential expression. In ALS cord, the dominant depleted program was microtubule-based axonal transport (normalised enrichment score -2.40, FDR < 0.001); a regeneration-associated panel reached significance in none of ten fits. An ALS cord signature carried into the PD midbrain and scored highest on microglia in all 11 donors (+3.55 versus +0.73 next). Of 86 gene sets significant in both diseases, a translation block contained the GCN2 amino-acid-deficiency response. Both axes are compartment-level: within PD microglia, the complement panel is null (+0.21, p = 0.57). No GCN2 activity was measured, and the ALS cord is compared against PD midbrain. The axes that survive this control are glial and translational; the axonal question is not adjudicable in PD, where the panel score tracks dopaminergic content.
    Keywords:  GCN2; Parkinson’s disease; TREM2; amyotrophic lateral sclerosis; axonal transport; batch effect adjustment; complement; integrated stress response; neuroinflammation; single-nucleus RNA sequencing
    DOI:  https://doi.org/10.3390/ijms27188011
  2. J Xenobiot. 2026 Sep 16. pii: 174. [Epub ahead of print]16(5):
      Heavy metals and metalloids are persistent environmental contaminants that accumulate in the central nervous system and interact with endogenous essential metals, yet most neurotoxicological research continues to treat metals as independent agents rather than as co-occurring mixtures. This review systematically compares the evidence for cumulative and interactive effects of heavy metal mixtures across four major neurodegenerative diseases-Alzheimer's disease (AD), Parkinson's disease (PD), amyotrophic lateral sclerosis (ALS), and multiple sclerosis (MS)-asking which metal combinations have been directly documented for each disease, and whether these patterns are disease-specific or shared. Following a PubMed search (January 2016-June 2026), 93 unique studies were included (AD: 49; PD: 38; ALS: 19; MS: 18; 31 shared across diseases). Combined exposure to lead, cadmium, arsenic, and mercury is linked to amyloid-beta accumulation and dementia risk in AD; manganese-vanadium co-exposure produces more severe dopaminergic damage in PD than either metal alone, with manganese activating the familial PD gene LRRK2; a multi-metal mixture in ALS was associated with a three-fold higher disease risk independent of genetic susceptibility; and MS showed almost no designed mixture studies despite considerable single-metal data, with conflicting findings across cohorts. Three general mechanisms were identified: competition at shared membrane transporters (notably DMT1), sequestration by metal-binding proteins, and direct synergistic or antagonistic interactions, in which essential elements can modulate toxic-metal handling. Mixture-statistics approaches (WQS, BKMR), already established for AD and PD, should be extended to MS to close this evidence gap.
    Keywords:  Alzheimer’s disease; Parkinson’s disease; amyotrophic lateral sclerosis; cadmium; heavy metal mixtures; lead; manganese; mitochondrial dysfunction; multiple sclerosis; neurodegeneration
    DOI:  https://doi.org/10.3390/jox16050174
  3. Int J Mol Sci. 2026 Sep 15. pii: 8185. [Epub ahead of print]27(18):
      Viral infections have been associated with multiple sclerosis (MS), Alzheimer's disease (AD), Parkinson's disease (PD), and amyotrophic lateral sclerosis (ALS), but the associations may reflect different relationships to the disease process. This review evaluates evidence for viral involvement in disease initiation, modification of established disease, impaired viral control secondary to disease or treatment, and incidental detection. The strongest temporal evidence concerns Epstein-Barr virus (EBV) and MS. Prospective data place EBV seroconversion before clinical onset and the first observed increase in serum neurofilament light chain, while mechanistic studies link EBV infection, B-cell biology, and CNS-directed immunity. However, evidence that ongoing EBV activity modifies established MS remains limited. In AD, experimental studies support interactions between herpesviruses and AD-associated proteins, while the reduced incidence of all-cause dementia after herpes zoster vaccination suggests that viral or immunological pathways may be modifiable, without establishing that a specific herpesvirus initiates AD. Viral associations in PD rely mainly on epidemiological, experimental, and postmortem findings. Human pegivirus detection in a subset of PD brains remains a candidate association requiring independent confirmation and evidence of biological activity. Evidence in ALS is similarly limited. Enterovirus detection has been inconsistent, and altered human endogenous retrovirus K (HERV-K) expression in postmortem tissue does not establish an acquired viral infection. Stronger inference across these diseases will require longitudinal studies relating viral activity and antiviral immunity to subsequent disease-related changes, together with intervention studies that document the intended effect on the implicated viral process and separately assess subsequent disease risk or progression.
    Keywords:  Alzheimer’s disease; Epstein–Barr virus; Parkinson’s disease; amyotrophic lateral sclerosis; antiviral immunity; herpesviruses; human pegivirus; multiple sclerosis; viral reactivation
    DOI:  https://doi.org/10.3390/ijms27188185
  4. Antioxidants (Basel). 2026 Sep 04. pii: 1117. [Epub ahead of print]15(9):
      Amyotrophic lateral sclerosis (ALS) is a fatal neurodegenerative disease characterized by progressive motor neuron degeneration and chronic neuroinflammation in the brain and spinal cord, involving complex interactions between neurons and immune cells. Carnosine (β-alanyl-L-histidine) has pathophysiological relevance due to its ability to detoxify reactive carbonyl species, including α,β-unsaturated aldehydes, scavenge free radicals, and chelate zinc, and has also been proposed to function in the central nervous system as a histidine reservoir for histamine synthesis. Here, we investigated the effects of carnosine supplementation on the cerebellar proteome of SOD1G93A ALS rats using quantitative proteomics. Carnosine treatment extensively remodeled mitochondrial, antioxidant, and synaptic vesicle-trafficking protein networks and increased the abundance of glutamatergic and GABAergic receptor subunits relative to untreated ALS animals, with several of these changes exceeding wild-type levels. Pathway enrichment analyses identified significant up-regulation of Rab-mediated vesicle trafficking, synaptic vesicle cycling, and neurotransmitter transport/secretion pathways, alongside a partial reduction in RNA splicing and proteasomal subunits that were elevated in untreated ALS animals. Cross-comparison with the ALS-associated proteomic signature revealed that most carnosine-responsive proteins followed, rather than reversed, the direction of disease-associated change, indicating that carnosine predominantly potentiates an endogenous compensatory program rather than restoring a wild-type-like proteome. Collectively, these findings show that carnosine drives systems-level remodeling of mitochondrial and synaptic networks in the ALS cerebellum, identifying candidate compensatory pathways and supporting further functional validation of carnosine as a component of multimodal therapeutic strategies in ALS.
    Keywords:  SOD1G93A; amyotrophic lateral sclerosis; carnosine; cerebellum; proteomics
    DOI:  https://doi.org/10.3390/antiox15091117
  5. Mini Rev Med Chem. 2026 Sep 17.
      Neurodegenerative disorders (NDs), including Alzheimer's disease, Parkinson's disease (PD), Amyotrophic Lateral Sclerosis (ALS), Huntington's disease (HD) and Multiple Sclerosis (MS), pose a major global health threat due to complex pathology, increased prevalence, and lack of effective therapies. Numerous findings have indicated that oxidative stress (OS) is a central and unifying pathological mechanism driving neuronal dysfunction and degeneration across these disorders. Excessive reactive oxygen species (ROS) and nitrogen species (RNS) generation, coupled with impaired endogenous antioxidant defenses, leads to lipid peroxidation, protein misfolding, nucleic acid damage, mitochondrial dysfunction, neuroinflammation, metal dyshomeostasis, and disruption of the blood-brain barrier (BBB). These interconnected processes form self-perpetuating pathogenic cycles that accelerate synaptic failure and neuronal loss. This review is a compilation of thoroughly searched literature from the last 20 years (2006-2026) on OS-mediated neurodegeneration and emerging antioxidant-based therapeutic strategies for neurodegenerative disorders, sourced from PubMed, Scopus, ScienceDirect, Google Scholar, and Web of Science. Relevant articles were selected using specific keywords "Neurodegenerative Disorders", Neurodegenerative disorders and antioxidants", "Alzheimer's Disease and Oxidative Stress", "Parkinson's Disease and Oxidative Stress", "Alzheimer's Disease and Multi-functional Antioxidants", "Parkinson's Disease and Multifunctional Antioxidants", "Neurodegenerative Disorders and Antioxidant therapies". Despite strong mechanistic support, conventional antioxidant-based therapies have demonstrated limited clinical success, largely due to poor bioavailability, inadequate BBB penetration, and failure to address the multifactorial nature of neurodegeneration. Consequently, there is a paradigm shift toward the development of multi-functional antioxidants capable of simultaneously targeting multiple redoxdriven pathways. Such agents are designed to combine free-radical scavenging, metal chelation, mitochondrial protection, modulation of redox-sensitive signaling pathways, and regulation of neuroinflammatory responses within a single therapeutic framework. By restoring redox homeostasis while preserving physiological redox signaling, multi-functional antioxidants offer a rational and promising disease-modifying strategy. This review critically examines OS-mediated mechanisms underlying major NDs and emphasizes the therapeutic potential of designed multi-functional antioxidants as next-generation neuroprotective agents.
    Keywords:  Antioxidants; alzheimer’s disease; blood-brain barrier; multifunctional antioxidants; neurodegenerative disorders; oxidative stress; parkinson’s disease
    DOI:  https://doi.org/10.2174/0113895575494157260901095536
  6. Neurodegener Dis Manag. 2026 Sep 19. 1-9
       INTRODUCTION: ERBB4 variants were reported to cause amyotrophic lateral sclerosis (ALS). However, gene burden analyses did not find an enrichment of rare variants in patients, leaving the pathogenic role of ERBB4 in ALS unclear. Therefore, this study aimed to reassess the association of ERBB4 variants with ALS.
    METHODS: Next-generation sequencing was performed in 250 ALS and 714 non-ALS patients. Low-frequency, deleterious non-synonymous ERBB4 variants were filtered, and their allele frequencies were compared between groups.
    RESULTS: In total, 42 low-frequency and deleterious ERBB4 variants were identified in patients and normal controls, with three variants in all groups. There was no significant difference in allele frequencies between ALS and non-ALS groups. Additionally, four reported pathogenic variants (c.158A > G, c.284G > A, c.965T > A, and c.1624G > A) were observed in patients with neuromuscular disease or leukoencephalopathy, as well as normal controls. Based on the evidence from this study, c.284G > A was reclassified as a likely benign variant, while the others were reclassified as uncertain significance according to the American College of Medical Genetics and Genomics Guidelines.
    DISCUSSION: These results suggest a modest association between ERBB4 variants and ALS, underscoring the need for clinicians to conduct more careful molecular diagnosis and genetic consultations for ALS patients with ERBB4 variants.
    Keywords:  Amyotrophic lateral sclerosis; ERBB4; causative gene; genetic analysis; variant
    DOI:  https://doi.org/10.1080/17582024.2026.2736021
  7. JCI Insight. 2026 Sep 22. pii: e200761. [Epub ahead of print]11(18):
      Amyotrophic lateral sclerosis (ALS) is a fatal neurodegenerative disease that urgently requires effective treatment. Mitochondrial dysfunction underlies ALS pathology and represents a potential therapeutic target. Here, we demonstrated the therapeutic potential of mitochonic acid 5 (MA-5), a novel mitochondria-targeted compound that ameliorated ALS phenotypes by enhancing mitochondrial function. In a Drosophila ALS model expressing a mutant human SOD1 (G85R), MA-5 significantly improved locomotor activity, with a trend toward restoration of mitochondrial integrity. In skin fibroblasts derived from ALS patients and motor neurons derived from induced pluripotent stem cells, MA-5 restored ATP production and increased mitochondrial motility. Multiomics analyses suggested that MA-5 modulated mitochondria-linked gene expression and downregulated the glycerophosphate shuttle, contributing to mitochondrial reactive oxygen species production. Transcriptomic analysis identified C7orf31 as a potential marker for monitoring the therapeutic effects of MA-5 and diagnosing ALS subtypes. These findings support MA-5 as a promising therapeutic candidate for ALS and propose C7orf31 as a potential biomarker for treatment monitoring and for disease subtyping.
    Keywords:  ALS; Biomarkers; Drug therapy; Metabolism; Neuroscience
    DOI:  https://doi.org/10.1172/jci.insight.200761
  8. Curr Med Chem. 2026 Sep 18.
       INTRODUCTION: Central nervous system disorders include various neurodegenerative and psychiatric conditions characterized by progressive neuronal damage, synaptic dysfunction, and chronic neuroinflammation, affecting millions worldwide. This group includes Alzheimer's Disease (AD), Parkinson's Disease (PD), Amyotrophic Lateral Sclerosis (ALS), schizophrenia, Multiple Sclerosis (MS), Major Depressive Disorder (MDD), and epilepsy, among others. Recent studies have emphasized the significant role of Cyclooxygenase-2 (COX-2), an inducible enzyme in the arachidonic acid pathway, in maintaining neuroinflammatory cascades that worsen these conditions.
    METHODS: For this review, we gathered and carefully analyzed published literature related to COX-2 signaling in CNS disorders. We reviewed preclinical studies, animal models, and clinical trials to understand how COX-2 contributes to disease mechanisms and whether selective inhibitors show real therapeutic promise.
    RESULTS: Inflammatory cytokines or excitotoxic insults upregulate COX-2 and promote the formation of prostaglandins, including PGE2. These mediators subsequently trigger the activation of microglia and astrocytes, cytokine release, oxidative stress, disruption of the blood-brain barrier, and neuronal apoptosis. Despite variations in disease-specific features, the mechanisms dependent on COX-2 are generally consistent across these disorders.
    DISCUSSION: The consistent involvement of COX-2-driven neuroinflammation across multiple CNS disorders suggests it could be a promising therapeutic target. However, failures in some clinical trials highlight the complexity of translating preclinical findings into patient care. This may be due to the stage-dependent expression of COX-2, the multifunctional roles of the enzyme in normal brain function, and the cardiovascular risks associated with long-term COX-2 inhibition. These factors must be carefully considered in future research and drug development.
    CONCLUSION: COX-2 plays a central role in driving neuroinflammation and disease progression in AD, PD, ALS, schizophrenia, MS, MDD, and epilepsy. Selective COX-2 inhibitors show promising neuroprotective potential, especially in early stages or in combination therapies, but inconsistent efficacy and cardiovascular risks necessitate safer next- generation inhibitors.
    Keywords:  Neuroinflammation; alzheimer’s disease; amyotrophic lateral sclerosis; cyclooxygenase-2 (COX-2); epilepsy; major depressive disorder; multiple sclerosis; neurodegenerative; parkinson’s disease; schizophrenia
    DOI:  https://doi.org/10.2174/0109298673496586260831110156
  9. J Gen Fam Med. 2026 Sep;27(5): e70182
      Amyotrophic lateral sclerosis (ALS) can cause autonomic storms characterized by blood pressure fluctuations, particularly in the advanced stages of the disease and among ventilator-dependent patients. Although benzodiazepines are used to manage these symptoms, the optimal agent is unclear. We present the case of a 78-year-old home-care patient with ventilator-dependent ALS who developed autonomic storms. Clotiazepam did not adequately control the episodes; however, diazepam was associated with resolution of the episodes, followed by improved sleep and nutritional intake. This report highlights the importance of recognizing an autonomic storm in advanced ALS patients and the potential benefit of diazepam in home-care settings.
    Keywords:  amyotrophic lateral sclerosis; autonomic storm; benzodiazepines; home‐care setting; quality of life
    DOI:  https://doi.org/10.1002/jgf2.70182
  10. Transl Neurodegener. 2026 Sep 20. pii: 49. [Epub ahead of print]15(1):
      The degenerating motor neurons of amyotrophic lateral sclerosis (ALS) patients are characterized by the accumulation of cytoplasmic aggregates, specifically enriched in ubiquitinated TDP-43. Expressed mainly in the nucleus and partially in the cytoplasm to execute its role in RNA metabolism, the exact mechanisms that bring TDP-43 to aggregate in disease have yet to be described. Unfolding these processes could bring us closer to effective drug development that is drastically lacking in the ALS research field. Induced pluripotent stem cells (iPSCs) offer a promising platform for studying ALS pathogenesis directly in the relevant human genetic backgrounds of ALS patients. Since 2012, more than 30 published studies have investigated altered cellular and subcellular features in iPSC-derived motor neurons from ALS patients harbouring mutations in the TARDBP gene (encoding for TDP-43 protein). However, there are discrepancies in the obtained results, which call into question the relevance of this model for ALS disease modelling and its use for drug development efforts. Thus, there is a need in the field for a clear and detailed layout and summary of all the published data on ALS modelling using TARDBP mutant iPSC-derived motor neurons. In this systematic review, we analyse all phenotypic assessments that have been done on iPSC-derived motor neurons derived from TARDBP ALS patients on the morphology, functionality and the viability of these cells. We also analyse if this model recapitulates ALS pathology in vitro by comparing studies that looked at TDP-43 and neurofilament aggregation, as well as stress granule dynamics. Importantly, we compare the technical details of all the discussed studies, such as differentiation protocol, age and purity of the used motor neurons and quantification method, in order to discuss how all of these parameters affect the observed phenotypes. Lastly, we also expand our review to all other different cell types that have been differentiated from TARDBP iPSCs, highlighting non-cell autonomous mechanisms of TDP-43-ALS pathophysiology. By integrating findings across studies, this review identifies commonalities and discrepancies, discusses methodological advancements and limitations, and highlights potential therapeutic targets revealed through TARDBP iPSC-derived models.
    Keywords:  ALS; Disease modelling; Drug screening; Motor neuron; Phenotype; TARDBP; TDP-43; iPSC
    DOI:  https://doi.org/10.1186/s40035-026-00580-2
  11. R I Med J (2013). 2026 Oct 01. 109(10): 11-14
      Amyotrophic lateral sclerosis (ALS) and multiple sclerosis (MS) are neurological disorders with different underlying pathophysiology but can share similar clinical features. Co-occurrence of both diseases is extremely rare with only 46 documented cases in literature to our knowledge. This case report relays the diagnosis of ALS in a patient with a decades'-long history of MS, and illustrates the importance of expanding the differential diagnosis and pursuing additional workup in a patient with overlapping progressive symptoms that can be caused by an alternate neurological etiology.
    Keywords:  Amyotrophic lateral sclerosis; co-morbidities; multiple sclerosis
  12. Front Med (Lausanne). 2026 ;13 1940826
      Amyotrophic lateral sclerosis (ALS) is a neurodegenerative disease characterized by progressive motor neuron loss, and no established treatment restores impaired motor function. In mouse models of ALS, bone marrow mononuclear cell (BM-MNC) injection improved motor function. In patients with ALS, direct spinal cord injection of BM-MNCs has also been reported to improve motor function. Here, we report the case of a 52-year-old male patient with ALS who underwent intravenous autologous BM-MNC transplantation and demonstrated improved motor function. His revised ALS Functional Rating Scale score increased from 17 before treatment to 18 at 24 weeks after transplantation. The score of Manual Muscle Testing of fifth finger metacarpophalangeal joint flexion improved from 0 before treatment to 2(-) at 24 weeks after transplantation. No serious adverse events were observed. As this is a single case report, additional case series and subsequent randomized clinical trials are essential to clarify the effect of BM-MNC transplantation on ALS outcomes. This case suggests, however, that motor dysfunction in patients with ALS might be reversible. These findings encourage future studies investigating motor function improvement, rather than disease progression slowing, by elucidating the mechanisms underlying BM-MNC transplantation and optimizing treatment.
    Keywords:  amyotrophic lateral sclerosis; bone marrow; cell-based therapy; hematopoietic stem cell; motor function; neutrophil-to-lymphocyte ratio
    DOI:  https://doi.org/10.3389/fmed.2026.1940826
  13. Curr Neurovasc Res. 2026 Sep 17.
       INTRODUCTION: Neurodegenerative Diseases (NDDs), including Alzheimer's Disease (AD), Parkinson's Disease (PD), Amyotrophic Lateral Sclerosis (ALS), Huntington's Disease (HD), and Multiple Sclerosis (MS), are increasingly associated with ferroptosis, a regulated irondependent form of cell death characterised by the excessive accumulation of lipid peroxides.
    METHODS: This review examines the molecular underpinnings of ferroptosis, focusing on dysregulation in iron homeostasis, increased vulnerability of polyunsaturated fatty acids in neuronal membranes, and impairment of antioxidant defence systems, particularly the Glutathione-GPX4 and FSP1-CoQ10-NADPH pathways. Relevant literature was critically analysed to explore mechanistic insights and therapeutic implications.
    RESULTS: Pathological hallmarks such as amyloid-β, tau, and α-synuclein were found to disrupt iron metabolism, thereby exacerbating oxidative stress and mitochondrial dysfunction across various NDDs. These alterations significantly contribute to neuronal damage and disease progression through ferroptosis-related mechanisms.
    DISCUSSION: Emerging therapeutic strategies, including radical-trapping antioxidants, iron chelators, and nanotechnology-based delivery systems, show potential in targeting ferroptosis. However, challenges in clinical translation persist. Artificial intelligence and personalised medicine approaches may address these issues by enabling patient stratification, biomarker discovery, and optimisation of therapeutic interventions.
    CONCLUSION: Ferroptosis represents a promising therapeutic target for mitigating oxidative and metal-induced neurotoxicity in neurodegenerative disorders. Future research integrating multiomics profiling, longitudinal clinical data, and advanced computational modelling is essential to validate the efficacy of ferroptosis-targeted interventions and facilitate their successful translation into precision neurotherapeutics.
    Keywords:  Alzheimer’s disease; Neurodegenerative diseases; amyotrophic lateral sclerosis; ferroptosis; huntington's disease; iron homeostasis; multiple sclerosis; parkinson’s disease
    DOI:  https://doi.org/10.2174/0115672026502165260904054005
  14. Int J Mol Sci. 2026 Sep 16. pii: 8236. [Epub ahead of print]27(18):
      Amyotrophic lateral sclerosis (ALS) is a neurodegenerative disease characterised by the death of motor neurons leading to paralysis and death generally 3-5 years post-symptom onset. ALS is a cell- and non-cell-autonomous disease, with glia such as astrocytes influencing disease pathology and progression. Our laboratory has previously identified purine metabolism dysfunction in induced neural progenitor cell-derived astrocytes (iAstrocytes) from sporadic ALS (SALS) cases, driven by loss of the enzyme adenosine deaminase (ADA). Here, we have demonstrated that loss of ADA, along with changes to ecto-5'-nucleotidase and hypoxanthine-guanine phosphoribosyl transferase led to disruption in purine metabolite levels, linked to the level of the ADA enzyme. These alterations were recapitulated in SALS CSF and post-mortem tissue, with ageing and sex affecting purine metabolite levels downstream of ADA and positively correlating with disease progression. Loss of ADA led to reduced 53BP1-mediated DNA repair and increased P16 levels, which was recapitulated in control iAstrocytes via ADA inhibition. Our findings indicate that TDP43 dysfunction drives impairment of ADA-mediated purine metabolism in vitro, leading to downstream effects that include DNA damage, likely through inhibition of DNA repair mechanisms, and the induction of cellular senescence. Furthermore, these results suggest that therapeutic targeting of the ADA pathway may help slow ALS disease progression.
    Keywords:  ADA; ALS; MND; astrocyte; metabolomics; purine metabolism
    DOI:  https://doi.org/10.3390/ijms27188236
  15. J Biochem Mol Toxicol. 2026 Oct;40(10): e71070
      Microplastics (MPs) and nanoplastics (NPs) have emerged as ubiquitous environmental contaminants with profound implications for human neurological health. Recent landmark findings confirm the bioaccumulation of MPs/NPs in human brain tissue-with concentrations reaching 4917 μg/g in 2024 autopsy samples and up to 10-fold higher levels in individuals with dementia-underscoring the urgent need for mechanistic understanding. This review synthesizes current evidence on the routes by which MPs/NPs traverse the blood-brain barrier (BBB) and the olfactory pathway, their cellular effects within the central nervous system (CNS), and the molecular cascades that link plastic particle exposure to neuroinflammation and neurodegeneration. Key mechanisms include: disruption of tight junction proteins and BBB integrity; activation of microglia and the NLRP3 inflammasome; induction of oxidative stress via reactive oxygen species (ROS); mitochondrial dysfunction through impairment of the electron transport chain; synaptic toxicity and neurotransmitter dysregulation; and direct promotion of pathological protein aggregation-including amyloid-beta (Aβ), tau hyperphosphorylation, and α-synuclein fibrillation-implicated in Alzheimer's disease (AD) and Parkinson's disease (PD). Indirect neurotoxicity via the gut-brain axis is also addressed. Finally, critical research gaps and future directions are proposed, including standardized exposure models, longitudinal human cohort studies, and evaluation of therapeutic targets. This review positions MPs/NPs as a novel environmental risk factor for neurodegenerative diseases warranting priority attention in neuroscience and public health research.
    Keywords:  blood‐ brain barrier; microplastics; nanoplastics; neurodegeneration; neuroinflammation; neurotoxicity
    DOI:  https://doi.org/10.1002/jbt.71070
  16. J Transl Med. 2026 Sep 09. pii: 1210. [Epub ahead of print]24(1):
       BACKGROUND: Neurodegenerative diseases are characterized by the gradual deterioration and impaired functionality of neuronal cells, which in turn results in the progressive decline of both cognitive capabilities and motor performance. Over the past few years, accumulating evidence has demonstrated that neurogenesis participates in pathogenesis of various neurodegenerative conditions. In the adult brain, neurogenesis involves the proliferation and differentiation of neural stem cells into functional neurons, a process that serves a critical function in sustaining neuroplasticity and repairing neural damage. Additionally, studies conducted recently show that lactate and the protein lactylation modification it induces can regulate neurogenesis and influence the progression of neurodegenerative diseases.
    MAIN BODY: We elaborate on how lactate, as an energy substrate and signaling molecule, supports neuronal survival and synaptic plasticity, and discuss the mechanisms by which histone lactylation regulates neural stem cell proliferation and differentiation via epigenetic pathways, as well as the regulation of specific protein functions by non‑histone lactylation. We further integrate the dual effects of lactate and lactylation in diseases such as Alzheimer's disease (AD), Parkinson's disease (PD), Huntington's disease (HD), and amyotrophic lateral sclerosis (ALS). They can be neuroprotective by improving energy metabolism, promoting neurotrophic signals, and reducing inflammation, but they can also be neurotoxic via inflammation, oxidative damage, and protein aggregation under certain conditions. Key factors that determine this switch include concentration, cell type, pathological context, and lactylation site. We also evaluate therapeutic strategies targeting lactate metabolism and lactylation, and the challenges for clinical translation.
    CONCLUSIONS: Lactate and protein lactylation exhibit a regulatory duality in neurogenesis and neurodegenerative diseases, encompassing both neuroprotective and neurotoxic effects. This finding provides a new perspective for understanding disease mechanisms and reveals potential intervention targets.
    Keywords:  Epigenetics; Lactate; Metabolism; Neurodegenerative disease; Neurogenesis; Protein lactylation
    DOI:  https://doi.org/10.1186/s12967-026-08940-2
  17. Folia Phoniatr Logop. 2026 Sep 22. 1
      This study aimed to characterize lingual motor function in patients with amyotrophic lateral sclerosis (ALS) by analyzing static acoustic indices obtained from sustained vowels and dynamic indices derived from sentence reading. The following aspects were examined: (1) the independence of static and dynamic indices, (2) the relationship between F2 transition duration and F2 excursion, (3) differences in vowel formant frequencies across ALS phenotypes, (4) associations between static indices and speech intelligibility, and (5) acoustic elements contributing to static indices. Sixty-eight patients with ALS were enrolled (42 men and 26 women). The main analyses focused on the men (n = 42), categorized as spinal-onset (n = 21), spinal onset with bulbar involvement (spinal + bulbar) (n = 9), and bulbar-onset (n = 12). From sustained vowels (/a/-/o/), F1 and F2 values were extracted. The triangular vowel space area (tVSA) and formant centralization ratio (FCR) were calculated using F1 and F2 of /a/, /i/, and /u/. Dynamic measures were obtained from the diphthong /ai/ within /taiyo/ during sentence reading, yielding F2 transition duration and excursion. Static indices (tVSA and FCR) correlated with F2 excursion only in the spinal-onset group (r = 0.458, p = 0.049), whereas no associations were observed in the other phenotypes or in the overall sample. This finding suggests that static and dynamic indices may reflect partially distinct aspects of lingual motor control. tVSA and FCR showed a negative correlation across all phenotypes, confirming that they are complementary indicators of vowel space expansion and centralization. Regarding time-space control, bulbar-onset ALS showed no relationship between F2 transition duration and excursion, suggesting that spatial limitations of tongue movement may not necessarily parallel changes in articulatory speed. Phenotype comparisons revealed significant differences in F1 of /e/ and F2 of /a/, /i/, /u/, and /o/. These findings indicate phenotype-related differences in vertical and anterior-posterior tongue movement characteristics. In bulbar-onset ALS, tVSA correlated with speech intelligibility (visual analogue scale: VAS), and FCR showed a trend-level association (p=0.075). Acoustic element analysis indicated that tVSA was primarily associated with F1 of /a/ and F2 of /i/, whereas FCR was closely associated with F2 of /i/. These findings suggest that combining static (articulatory position) and dynamic (articulatory transition) acoustic indices enables multifaceted evaluation of phenotype-related characteristics of lingual motor dysfunction in ALS. Bulbar-onset ALS is characterized by restricted anterior-posterior movement and impaired vertical tongue adjustment, both of which may contribute to reduced intelligibility.
    DOI:  https://doi.org/10.1159/fpl/acvag012
  18. bioRxiv. 2026 Sep 18. pii: 2026.09.11.751082. [Epub ahead of print]
      Dysfunction of TAR DNA-binding protein 43kDa (TDP-43) underlies amyotrophic lateral sclerosis (ALS), a neurodegenerative disorder with limited therapeutic options. While current therapeutic approaches are designed to individually target unique cryptic exons of TDP-43 such as UNC13A , the sufficiency of such a strategy to mitigate motor neuron disease remains unclear. Using a mouse model lacking TDP-43 in spinal motor neurons which mimics early stages of ALS, we show that the exclusion of Unc13a cryptic exon fails to mitigate motor neuron disease. In contrast, the restoration of multiple TDP-43 cryptic targets, including Unc13a , attenuated motor neuron loss, and rescued motor neuron disease. Additionally, compared to brain neurons, spinal motor neurons accumulate markedly lower amounts of Unc13a cryptic exons in mice and humans, suggesting that the contribution of this TDP-43 cryptic target to spinal motor neuron loss may be limited. Together, these results strongly support ALS therapeutic strategies designed to simultaneously restore multiple TDP-43 cryptic targets to attenuate spinal motor neuron loss.
    DOI:  https://doi.org/10.64898/2026.09.11.751082
  19. Front Aging Neurosci. 2026 ;18 1831375
      Neurodegenerative diseases, including Alzheimer's disease (AD), Parkinson's disease (PD), and amyotrophic lateral sclerosis (ALS), are characterized by pronounced clinical and molecular heterogeneity, as well as highly interconnected pathogenic pathways. This biological complexity has long hindered efforts to systematically define disease mechanisms and to develop effective, targeted therapies. In recent years, clustered regularly interspaced short palindromic repeats (CRISPR) based functional genomic screening technologies have emerged as powerful tools for large-scale genetic perturbation in cellular, organoid, and in vivo models, enabling unbiased interrogation of disease relevant genetic networks and the identification of potential therapeutic targets. In this review, we summarize CRISPR knockout, CRISPR interference, CRISPR activation, and in vivo screening studies in AD, PD, and ALS, with emphasis on pathological phenotypes, experimental models, cell types, validation strategies, and evidence strength. In AD, these screens have identified regulators of amyloid-β (Aβ) production, Tau homeostasis and propagation, microglial states, neuronal aging, and stress responses. In PD, they have provided insights into α-synuclein (α-syn) homeostasis, mitochondrial quality control, lysosomal trafficking, and transplanted dopaminergic neuron survival. In ALS, they have identified modifiers of C9orf72-associated toxicity, repeat-associated non-AUG translation, TAR DNA-binding protein 43 (TDP-43) inclusion formation, and ATXN2 homeostasis. Cross-disease comparison indicates recurring involvement of proteostasis, endolysosomal function, mitochondrial regulation, and cellular stress responses, although individual screening hits show limited overlap and remain strongly influenced by experimental context. Overall, CRISPR-based screening provides a useful framework for identifying candidate disease modifiers, but further validation across complementary human-relevant and in vivo models is required before therapeutic translation.
    Keywords:  Alzheimer's disease; CRISPR-based screening; Parkinson's disease; amyotrophic lateral sclerosis; neurodegeneration
    DOI:  https://doi.org/10.3389/fnagi.2026.1831375
  20. Neurobiol Dis. 2026 Sep 19. pii: S0969-9961(26)00356-6. [Epub ahead of print]229 107611
      Missense mutations in UBQLN2 are linked to dominant inheritance of amyotrophic lateral sclerosis (ALS) which is frequently accompanied by frontotemporal dementia (FTD). The encoded UBQLN2 protein functions to maintain proteostasis, collapse of which is increasingly being realized as the cause of many neurodegenerative diseases. During investigations of our UBQLN2 mouse models of ALS/FTD, we observed a significant decline in Tank-binding kinase 1 (TBK1) protein in end-stage mice. The decline could be significant, as haploinsufficiency of TBK1 expression is linked to ALS/FTD. To determine whether the reduction in TBK1 levels is responsible for driving pathogenesis, we crossed P497S UBQLN2 transgenic (Tg) mice with BacTBK1 Tg mice that overexpress TBK1 and analyzed the progeny for signs of pathology. The analysis revealed that double transgenic mice had a significant reduction in neurodegeneration in both the brain and spinal cord (SC) compared to P497S single-Tg mice. Double immunofluorescence staining of P497S mouse tissue revealed TBK1 colocalizes with UBQLN2 aggregates in spinal motor neurons. Biochemical extraction studies of mouse brain tissue revealed increased enrichment of TBK1 along with wild type and mutant UBQLN2 proteins in detergent-insoluble material, suggesting TBK1 gets sequestered by UBQLN2 aggregates. GST-pulldown assays revealed that UBQLN2 binds directly with TBK1, but paradoxically the P497S mutation was found to reduce TBK1 binding. Turnover studies indicated that loss of UBQLN2 destabilizes TBK1, providing another route for its reduction. These findings lead us to propose that efforts directed toward increasing TBK1 expression may provide a therapeutic approach for treating ALS/FTD caused by UBQLN2 mutations.
    Keywords:  Amyotrophic lateral sclerosis; Motor neuron disease; Proteostasis; TBK1; UBQLN2
    DOI:  https://doi.org/10.1016/j.nbd.2026.107611
  21. Health Psychol Behav Med. 2026 ;14(1): 2709184
       Background: Amyotrophic lateral sclerosis (ALS) is a rare neurodegenerative disease affecting about 6,000 people in Italy. Caring for ALS impacts the quality of life and mental health of formal and informal caregivers, but few studies have explored this.
    Methods: This research analyzes experiences of 9 formal caregivers (FC; 8 women) with an average age of 49.29 years (SD = 3.861) and 6.58 years of average length of service (SD = 5.975), and 11 informal caregivers (iFC; 9 women) with an average age of 48.30 years (SD = 13.500) and who have been caring for relatives for 3.29 years (SD = 2.500). All participants were recruited from an Italian healthcare residence. We assessed psychological well-being, burnout (for FC), and burden (for iFC), and included testimonies retrieved from online sources. Data were analyzed using mixed-methods analysis, including nonparametric tests, Emotional Text Mining, and discourse analysis.
    Results: The results showed both groups had high psychological well-being (Mfc = 85.86; SDfc = 9.026; Mifc = 83.10; SDifc = 11.435). FC had low emotional exhaustion (M = 16.67; SD = 10.087) and depersonalization (M = 2.56; SD = 2.186), and a moderate level of personal gratification (M = 29.11; SD = 11.667; M = 27.43; SD = 11.238). iFC experienced a higher burden when the patient is in a healthcare residence than when he/she was at home. FC discussed patient and family challenges, emphasizing the necessity of research and new therapies; iFC focused on social and emotional needs, seeing themselves as adaptors out of necessity.
    Conclusions: The study highlights the psychological impact of caregiving and preliminary qualitative differences between paid and family caregivers. Further analysis could explore these distinctions, aiding the development of targeted interventions to promote caregivers' well-being.
    Keywords:  Formal and informal caregivers; amyotrophic lateral sclerosis; mixed-method research; paid or family care; psychological well-being
    DOI:  https://doi.org/10.1080/21642850.2026.2709184
  22. Molecules. 2026 Sep 08. pii: 3139. [Epub ahead of print]31(18):
      Neurodegenerative diseases such as Alzheimer's disease (AD) and Parkinson's disease (PD) are characterized by the progressive loss of specific neuronal cell populations and are associated with protein aggregates. Current therapeutic approaches are still limited due to the complexity and heterogeneity of these diseases, which points toward an urgent need to discover and develop new therapeutic agents. Natural compounds are a promising source of novel bioactive agents targeting multiple mechanisms of action implicated in neurodegeneration. Andrographolide (ANDRO) is a natural compound extracted from Andrographis paniculata, a traditional Chinese herb known for its anti-inflammatory and antioxidant properties, which has emerged as a potential neuroprotective agent due to its ability to cross the blood-brain barrier (BBB). ANDRO can exert neuroprotective effects by modulating numerous transcription factors and signaling pathways across different cell types in the central nervous system (CNS). It has been described that ANDRO reverses cognitive and/or motor impairments in AD and PD study models. However, the cellular and molecular mechanisms behind these protective effects are still being elucidated. In this review, we analyze the most recent findings on ANDRO, a neuroprotective agent with multiple biological targets that could reduce the progression of the most prevalent neurodegenerative diseases, AD and PD.
    Keywords:  GSK-3β; Wnt/β-Catenin signaling; andrographolide; cognition; memory; natural compounds; neurodegenerative diseases; proteostasis
    DOI:  https://doi.org/10.3390/molecules31183139
  23. Eur J Pharm Sci. 2026 Sep 21. pii: S0928-0987(26)00241-1. [Epub ahead of print] 107667
       BACKGROUND: Predicting blood-brain barrier (BBB) permeability remains a central problem in central nervous system (CNS) drug design. Conventional rules such as Lipinski's rule of five and related CNS guidelines describe physicochemical boundaries but do not guarantee permeability.
    OBJECTIVE: We examined how a set of molecular descriptors-including membrane cross-sectional area, collision cross-section, P-glycoprotein (P-gp) net flux, desolvation cost, chameleonicity, 3D polar surface area, dipole moment/polarizability, LUMO energy, substructural synergy, and lateral bilayer pressure-can be integrated into a single probabilistic framework.
    METHODS: A curated set of 24 drugs (17 BBB-permeable, 7 BBB-poor) was compiled from the published literature. Descriptor values were estimated from public structural data, published binding/efflux data, and validated biophysical relationships; the relative membrane-partition term was calculated from the lateral bilayer pressure model.
    RESULTS: Membrane cross-sectional area (A_D) and P-gp net flux discriminated BBB-positive from BBB-negative compounds most clearly. Desolation cost distinguished morphine from heroin and codeine, and lateral bilayer pressure provided a physical rationale for the exponential size dependence of membrane partitioning. Caffeine, ethanol, and nicotine, all with molecular weight below 200 Da, are examples of small molecules that can cross by paracellular or small-molecule diffusion, so their permeability does not rely solely on lipid-membrane partitioning.
    CONCLUSIONS: BBB permeability can be framed as the product of three gated probabilities: desolation, membrane partition, and net transmembrane flux. The model is a heuristic synthesis intended to guide hypothesis generation; the small, literature-derived dataset and the illustrative nature of the calculations mean that all therapeutic suggestions are strictly indicative.
    Keywords:  P-glycoprotein; blood–brain barrier; chameleonicity; local anesthetics; membrane cross-sectional area; molecular descriptors
    DOI:  https://doi.org/10.1016/j.ejps.2026.107667
  24. Neurol Sci. 2026 Sep 26. pii: 813. [Epub ahead of print]47(10):
      
    Keywords:  Amyotrophic lateral sclerosis; Bulbar-onset; C9orf72; Concurrent neurodegenerative disorders; Conjugal ALS; Multiple sclerosis
    DOI:  https://doi.org/10.1007/s10072-026-09425-2
  25. Mol Biol Rep. 2026 Sep 22. pii: 1602. [Epub ahead of print]53(1):
      Polyamines (PAs), principally putrescine (Put), spermidine (Spd), and spermine (Spm), are ubiquitous aliphatic polycations that regulate nucleic-acid interactions, ion-channel activity, autophagy, redox balance, proteostasis, and immune signaling. Growing genetic, multi-omics, and experimental evidence indicates that disruption of PA biosynthesis, catabolism, acetylation, and transport contributes to neurological disease. In Alzheimer's disease (AD), altered PA flux intersects with Tau and amyloid-β (Aβ) pathology, methylation imbalance, oxidative stress, and impaired autophagic clearance. In Parkinson's disease (PD), PA transport and interconversion are linked to lysosomal dysfunction, mitochondrial stress, and α-synuclein toxicity; ATP13A2-associated Kufor-Rakeb syndrome further illustrates the neurological consequences of defective lysosomal PA transport. PA dysregulation is also implicated in amyotrophic lateral sclerosis (ALS), diabetic retinopathy, Snyder-Robinson syndrome, epilepsy, Bachmann-Bupp syndrome, and cerebral ischemia. This review integrates disease-specific evidence with four interconnected mechanisms-autophagy, oxidative stress, proteostasis, and neuroinflammation-and discusses therapeutic approaches including direct Spd administration, modulation of PA-metabolic enzymes and transporters, and combination strategies. Because PAs can exert both protective and toxic effects depending on concentration, cellular compartment, and disease context, translation will require CNS-relevant biomarkers, dose and route optimization, and explicit consideration of blood-brain barrier constraints.
    Keywords:  Autophagy; Neurodegeneration; Oxidative stress; Polyamine metabolism; Tauopathy; Therapeutic targets
    DOI:  https://doi.org/10.1007/s11033-026-12774-y
  26. Front Immunol. 2026 ;17 1955233
      Alzheimer's disease (AD) is traditionally defined by amyloid-β deposition, tau pathology, synaptic failure, and progressive cognitive decline. However, growing evidence indicates that neurovascular dysfunction and systemic immune activation are not merely secondary consequences but active contributors to disease progression. The blood-brain barrier (BBB), as a dynamic immunovascular interface, regulates the communication between the central nervous system and the peripheral immune system. In AD, aging, amyloid-β toxicity, tau-related stress, vascular senescence, endothelial inflammatory signaling, pericyte injury, and gliovascular remodeling can weaken BBB integrity. Barrier disruption may then permit peripheral cytokines, chemokines, plasma-derived factors, monocytes, and T-cell-related signals to influence microglial activation, astrocyte reactivity, oxidative stress, synaptic dysfunction, and neuronal injury. Recent studies further suggest that peripheral monocytes may participate in amyloid-β clearance and transport, whereas chronic monocyte activation, adaptive immune remodeling, and T-cell exhaustion may amplify neuroinflammation. This review summarizes recent experimental and clinical evidence linking BBB dysfunction, peripheral immune activation, and AD progression. We propose an inflammation-centered model in which BBB breakdown and peripheral immune dysregulation form a pathogenic loop that accelerates neurodegeneration. Targeting this BBB-peripheral immune axis may provide new opportunities for biomarker development, patient stratification, and combination therapy beyond classical amyloid- and tau-directed strategies.
    Keywords:  Alzheimer’s disease; blood–brain barrier; monocytes; neuroinflammation; peripheral immunity
    DOI:  https://doi.org/10.3389/fimmu.2026.1955233
  27. AAPS PharmSciTech. 2026 Jun 04. pii: 225. [Epub ahead of print]27(5):
      Amyotrophic lateral sclerosis (ALS) is a relentlessly progressive and fatal neurodegenerative disorder characterized by degeneration of upper and lower motor neurons, resulting in severe muscle weakness, respiratory failure, and death. Despite several pharmacological therapies having been approved, their clinical benefit remains limited due to poor central nervous system penetration, rapid metabolic clearance, and low patient compliance. Overcoming these pharmacokinetic and pharmacodynamic limitations remains a major challenge in ALS management. Recent advances in drug delivery have focused on brain-targeted strategies, improved bioavailability, and sustained or controlled-release systems. Nanocarriers, including lipid and polymeric nanoparticles, dendrimers, and mesoporous silica systems, facilitate blood-brain barrier traversal, protect labile drugs, and enable surface functionalization for receptor-mediated targeting. Biologically derived carriers such as exosomes and extracellular vesicles further enhance targeted delivery while minimizing immunogenicity. In parallel, noninvasive approaches such as mucoadhesive polymers, intranasal, and nose-to-brain delivery systems, including microneedle-based platforms, offer promising alternatives to bypass first-pass metabolism and improve patient adherence. Additionally, emerging therapeutic modalities, including gene therapy, stem cell-based interventions, and neuromodulation, are increasingly integrated with advanced delivery technologies. This article critically analyzes current ALS therapies, highlights recent breakthroughs in advanced drug delivery systems, and discusses future perspectives for achieving meaningful clinical outcomes.
    Keywords:  amyotrophic lateral sclerosis; blood-brain barrier; central nervous system; drug delivery; neurodegenerative disorder
    DOI:  https://doi.org/10.1208/s12249-026-03469-5
  28. Eur J Neurol. 2026 Sep;33(9): e70755
       BACKGROUND: The onset of amyotrophic lateral sclerosis (ALS) is preceded by non-motor signs detectable many years before motor symptom onset. We recently showed that early ALS patients and presymptomatic carriers of ALS-associated gene mutations display altered sleep macroarchitecture, characterised by increased wakefulness and decreased non-REM sleep, together with altered microarchitecture, particularly reduced slow oscillations and sleep spindles. Here we aimed at determining whether sleep alterations are progressive in premanifest carriers of ALS-associated gene mutations.
    METHODS: This longitudinal observational cohort study included presymptomatic first-degree relatives of ALS patients carrying pathogenic gene mutations (n = 18) and noncarrier family members (n = 3). Sleep macroarchitecture and sleep microarchitecture were assessed using standardised polysomnography and electroencephalographic analyses at baseline and in a follow-up examination after 2.3 ± 1.5 years.
    RESULTS: In all carriers, sleep alterations were more severe at follow-up compared to the initial examination, for both macro- and microarchitecture. The progression of sleep alterations was seemingly independent of proximity to motor onset, whether evaluated by increased neurofilament levels or phenoconversion during the study period.
    CONCLUSIONS: Sleep macro- and microarchitectural abnormalities progressively worsen during the premanifest phase of ALS. These findings suggest that polysomnography-derived sleep measures and their neurochemical correlates may serve as sensitive, noninvasive surrogate biomarkers of disease progression in clinically silent ALS. This could support disease prevention, for example, by the antisense oligonucleotide tofersen in patients carrying SOD1 mutations.
    Keywords:   C9orf72 ; SOD1 ; electroencephalography; polysomnography
    DOI:  https://doi.org/10.1111/ene.70755
  29. bioRxiv. 2026 Sep 20. pii: 2026.09.17.752169. [Epub ahead of print]
      TAR DNA-binding protein 43 (TDP-43) is a key pathological hallmark of amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD) and a critical regulator of RNA splicing. While loss of TDP-43 induces aberrant splicing in linear transcripts, its impact on circular RNA (circRNA) biogenesis remains unexplored. Here, we show that TDP-43 depletion in human neurons induces widespread circRNA changes, especially upregulation of a distinct class of cryptic circRNAs that arise specifically upon loss of TDP-43. Some of these cryptic circRNAs incorporate cryptic exons derived from intronic sequences. Notably, these cryptic circRNAs exhibit greater stability than their corresponding linear RNA isoforms and accumulate progressively in neurons. Moreover, cryptic circRNAs are elevated in postmortem brain tissues from ALS, FTD and Alzheimer's disease (AD) patients. These findings reveal a previously unrecognized role for TDP-43 in repressing cryptic circRNA formation and establish these circRNAs as stable molecular signatures of TDP-43 dysfunction.
    DOI:  https://doi.org/10.64898/2026.09.17.752169
  30. Neurodegener Dis. 2026 Sep 22. 1
       BACKGROUND: Gait impairment in amyotrophic lateral sclerosis (ALS) substantially increases fall risk and accelerates functional decline. However, prospective data linking quantitative gait parameters to fall outcomes remain scarce. We aimed to identify gait parameters associated with falls and functional decline in ALS.
    METHODS: In this single-center prospective cohort study, we enrolled 256 ALS patients and 256 matched healthy controls. Nineteen spatiotemporal gait parameters were captured using a 3D vision-based system at baseline. Falls, time to wheelchair use, and ALSFRS-R decline were recorded over 12 months. Multivariable logistic regression was used to identify independent fall predictors.
    RESULTS: During follow-up, 129 of 224 patients (57.6%) experienced at least one fall. Prolonged Timed Up and Go (TUG) time (OR=1.083 per second, 95%CI 1.036-1.133, p<0.001), younger age (OR=0.968 per year, 95%CI 0.940-0.996, p=0.024), and lower MRC sum score (OR=0.976 per point, 95%CI 0.954-0.998, p=0.035) independently predicted falls. The model showed moderate discrimination (AUC=0.665, 95%CI 0.594-0.736). Gait speed (rₛ=0.366) and TUG time (rₛ=-0.381) correlated most strongly with time to wheelchair use (both p<0.001), whereas no gait parameters correlated with ALSFRS-R decline rate.
    CONCLUSIONS: TUG time, younger age, and lower MRC score independently predict falls in ALS, though with modest predictive accuracy. The modest model performance underscores the multifactorial nature of falls and the need for multi-domain risk assessment. Gait speed and TUG time may warrant further investigation as candidate surrogate markers for functional decline. Future studies integrating cognitive evaluation, continuous monitoring, and attention to psychosocial factors may improve prediction and fall prevention strategies.
    DOI:  https://doi.org/10.1159/ndd/aduag003
  31. Cell Death Differ. 2026 Sep 21.
      Amyotrophic lateral sclerosis (ALS) is a fatal neurodegenerative disease characterized by progressive loss of upper and lower motor neurons, yet it is unknown whether diverse genetic risks converge on a shared pathogenic pathway. Here we identify a common mechanism linking TBK1 insufficiency to inflammatory cell death across distinct ALS genotypes. Whole-exome sequencing of 8 familial ALS patients revealed that 3 of them carried pathogenic variants, namely TBK1 (R573H), TDP-43 (G298V)/GARS (I44M)/SETX (L1304W), or SOD1 (G94R)/SQSTM1 (G262R). Motor neurons differentiated from patient iPSCs, despite their different mutations, consistently exhibited axonal and neurite shortening, reduced TBK1 activity, increased phosphorylated TDP-43 with cytoplasmic aggregation, and co-assembly of caspase-8/7 with the pyroptosis executor gasdermin E (GSDME). Neuroinflammatory stimulation further enhanced caspase-8/7 and GSDME cleavage, increased RIPK1 phosphorylation and suppressed TBK1 activation in patient-derived motor neurons, whereas TBK1 knockdown in SH-SY5Y cells recapitulated these phenotypes. Furthermore, a generated humanized TBK1 R573H knock-in mouse developed progressive motor deficits accompanied by spinal motor-neuron loss, neuroinflammation, and TDP-43 pathology. In these mice, LPS challenge produced increased cleavage of GSDME and caspase-7, along with a marked upregulation of p-TDP-43 expression in vulnerable neurons. Together, these data identify TBK1 loss of function as an upstream driver of a caspase-8/7-GSDME pyroptotic program in motor neurons and provide a mechanistic bridge between neuroinflammation, TDP-43 proteinopathy, and neurodegeneration. Targeting the TBK1-caspase-GSDME axis may offer a tractable strategy for disease modification in ALS.
    DOI:  https://doi.org/10.1038/s41418-026-01874-8
  32. Curr Drug Deliv. 2026 Sep 11.
      The blood-brain barrier (BBB) is critical in CNS pharmacotherapy; it blocks the entry of 98 per cent of small-molecule compounds and almost all macromolecules into the brain parenchyma via tight junction complexes, efflux transporter action, and enzymatic breakdown. This review focuses on the mechanistic basis of BBB resistance and analyses the current landscape of new drug delivery systems developed to overcome this barrier. We elaborate on polymeric nanocarriers, lipid-based nanocarriers, exosomes, dendrimers, and metallic nanoparticles, including surface engineering, the possibility of receptor-mediated transcytosis via transferrin, LRP1, and glucose transporter receptors, and known preclinical efficacy in glioblastoma, Alzheimer's disease, and Parkinson's disease. Non-invasive delivery through the nose is evaluated as intranasal delivery because it utilises olfactory and trigeminal receptors to circumvent systemic delivery. BBB modulation mediated by focused ultrasound is mentioned as one of the physical adjuncts to enhance CNS penetration. Clinical translation is poor, even where the preclinical data are positive. Most late-stage failures can be attributed to protein corona formation, anti-PEG immunogenicity, interpatient heterogeneity in the BBB, and manufacturing scalability. These obstacles are critically evaluated with the help of recent clinical trial evidence, where preclinical models cannot be used as predictors of human outcomes. In the future, AI-based nanocarrier design, machine-learning-driven prediction of BBB permeability, and patient-centred nanomedicine platforms will provide a viable pathway to customised CNS therapeutic approaches. Multimodal strategies integrating RMT, stimuli-responsive carriers, and CRISPRbased gene delivery may collectively overcome the translational gap that single-platform approaches have consistently failed to bridge.
    Keywords:  Blood-brain barrier; artificial intelligence; focused ultrasound; intranasal delivery; nanocarriers; personalised nanomedicine.; receptor-mediated transcytosis
    DOI:  https://doi.org/10.2174/0115672018474663260907142216
  33. Brain Res. 2026 Sep 24. pii: S0006-8993(26)00425-7. [Epub ahead of print] 150563
      Stroke is the second leading cause of death worldwide covering two major types: Hemorrhagic and ischemic stroke, with the latter being the most prevalent. The pathogenesis of ischemic stroke is complex including e.g. disruption of the blood-brain barrier (BBB) function of the brain capillaries. Moreover, women are disproportionately more affected by ischemic stroke in terms of mortality rates and disease burden. However, potential sex-dependent differences in the disease pathogenesis remains to be investigated. With this study, we aimed to investigate potential sex differences in infarct size and BBB permeability in a pre-clinical photothrombotic stroke model. Following, the induction of photothrombotic stroke in 9-10-week-old female and male mice, infarct size and BBB permeability were assessed in a temporal manner using magnetic resonance imaging (MRI). Over a time course spanning 2, 6, 24, 48, 72, and 96 h as well as 7 and 14days after photothrombotic stroke, no differences in infarct size between the sexes were observed. However, at 2 and 6 h after stroke, female mice appeared to have a more permeable BBB in the border regions of the infarct compared to the male mice using dynamic contrast enhanced MRI and T1 mapping. At remaining time points, sex-dependent differences in BBB permeability were more inconsistent when assessed by dynamic contrast enhanced MRI and T1 mapping thus challenging definitive conclusions. These findings indicate that BBB permeability, but not infarct size, is influenced by sex in the photothrombotic stroke model. It is the first study of its kind to examine these potential sex-dependent differences following photothrombotic stroke with MRI covering both acute and chronic time points. Therefore, it warrants further investigations into potential sex differences in BBB permeability as well as other potential consequences of stroke, both in additional preclinical ischemic stroke models and in a clinical setting.
    Keywords:  Blood-brain barrier; Females; Magnetic resonance imaging; Permeability infarct; Photothrombotic stroke; Sex differences
    DOI:  https://doi.org/10.1016/j.brainres.2026.150563
  34. Acta Neuropathol. 2026 Sep 25. pii: 41. [Epub ahead of print]152(1):
      Frontotemporal dementia (FTD) and amyotrophic lateral sclerosis (ALS) are linked neurodegenerative diseases characterized by both synaptic dysfunction and TDP-43 pathology. A hexanucleotide repeat expansion (HRE) in the C9ORF72 (C9) gene represents the most common genetic cause of FTD and ALS, yet the synapse-specific mechanisms underlying disease pathogenesis remain poorly understood. Here, we performed integrated multi-omic profiling of synaptosomes enriched from postmortem frontal cortex and patient-derived induced pluripotent stem cell (iPSC)-cortical neurons to define molecular alterations associated with C9-FTD-mediated synaptic dysfunction. Proteomic profiling of frontal cortex-derived synaptosomes identified 1,324 differentially abundant proteins (p<0.05) enriched in pathways regulating synaptic vesicle transport and synapse organization, while synaptosomal RNA sequencing revealed 2,835 differentially expressed protein-coding genes. C9-FTD iPSC-cortical neurons exhibited reductions in excitatory and inhibitory postsynaptic markers, accompanied by progressive impairment of neuronal network activity, supporting both structural and functional deficits. iPSC-derived synaptosomes recapitulated key molecular pathways observed in patient brain, revealing convergent dysregulation of synaptic signaling pathways. Comparative analyses revealed divergence between protein and RNA alterations, consistent with the disruption of regulatory processes that link RNA and protein abundance in diseased synapses. Consistent with TDP-43 loss-of-function pathology we identified cryptic exon (CE)-containing transcripts within C9-FTD frontal cortex-derived synaptosomes, including KALRN and STMN2, providing evidence that aberrantly spliced RNAs localize to synaptic compartments. Together, these findings define convergent molecular pathways underlying synapse vulnerability in both C9-FTD model systems and identify synaptic localization of CE-containing transcripts as a previously unrecognized feature of TDP-43 proteinopathy.
    Keywords:  Cryptic Exon (CE); Frontotemporal Dementia (FTD); Proteomics; Synaptosome; TAR DNA-binding protein 43 (TDP-43); Transcriptomics
    DOI:  https://doi.org/10.1007/s00401-026-03084-5
  35. Pathogens. 2026 Aug 25. pii: 890. [Epub ahead of print]15(9):
      TDP-43 proteinopathies, encompassing amyotrophic lateral sclerosis (ALS), frontotemporal lobar degeneration (FTLD), and limbic-predominant age-related TDP-43 encephalopathy (LATE), represent a heterogeneous spectrum of devastating neurodegenerative disorders. For decades, the diverse clinical presentations of these diseases have complicated antemortem diagnosis and hindered the development of disease-modifying therapies. However, recent breakthroughs in basic science are beginning to address these clinical barriers, although substantial hurdles to practical clinical application remain. Structural elucidation via cryo-electron microscopy (Cryo-EM) has shattered the single-protein amyloid dogma by revealing that TDP-43 can form hetero-amyloid filaments with ANXA11, thereby providing a molecular basis for pathological strain diversity. Concurrently, the pathogenic focus has shifted toward nuclear loss of function, which triggers a systemic "RNA crisis" characterized by aberrant alternative polyadenylation (APA) and cryptic exon inclusion (e.g., STMN2, UNC13A). Crucially, this metabolic collapse is profoundly exacerbated by patient-specific genetic risk factors, acting synergistically in a "two-hit" model of neurodegeneration. To translate these findings to the clinic, next-generation diagnostic tools are emerging. Integrating neuron-derived extracellular vesicle (EV) isolation with Seed Amplification Assays (SAAs) holds promise to help overcome the structural camouflage that limits current PET imaging, potentially offering ultra-sensitive, functional strain identification in biofluids. While these structural and diagnostic milestones provide a strong foundation for precision medicine, major challenges in assay standardization and clinical validation must be addressed. Advanced therapeutic strategies-namely, splice-switching antisense oligonucleotides (ASOs) that directly restore RNA metabolism, combined with the targeted suppression of neuronal hyperexcitability-are now entering clinical trials. This review synthesizes how decoding the structural and RNA-metabolic complexities of TDP-43 is paving a promising pathway from bench to bedside, while critically discussing current translational limitations.
    Keywords:  TDP-43; amyotrophic lateral sclerosis (ALS); cryo-electron microscopy (Cryo-EM); frontotemporal lobar degeneration (FTLD); precision medicine; prion-like propagation; seed amplification assay (SAA)
    DOI:  https://doi.org/10.3390/pathogens15090890
  36. Enzymes. 2026 ;pii: S1874-6047(26)00034-X. [Epub ahead of print]60 209-241
      Neurodegenerative diseases, including Alzheimer's disease, Parkinson's disease, amyotrophic lateral sclerosis and Huntington's disease, pose an increasing threat to global health due to ageing populations and the lack of effective treatments. Matrix metalloproteinases (MMPs), which are proteases that belong to the metzincin superfamily, are critical regulators of neuroinflammation, blood-brain barrier integrity, protein misfolding, synaptic dysfunction and neuronal death. This chapter provides a comprehensive overview of the roles of MMPs at the intersection of the molecular and cellular mechanisms that underpin neurodegenerative processes. The focus is on their pathophysiological mechanisms, therapeutic potential, and recent advances. We highlight novel mechanistic insights in Alzheimer's disease, such as the roles of MT1-MMP and MT5-MMP in amyloid-beta peptide production and the dual functions of MMPs in both neuroprotection and neurotoxicity. This review emphasizes the need for further mechanistic research into the different MMPs involved in neurodegenerative diseases.
    Keywords:  Alzheimer’s disease; Amyotrophic lateral sclerosis; Huntington’s disease; MMPs; Parkinson’s disease
    DOI:  https://doi.org/10.1016/bs.enz.2026.07.004
  37. Cells. 2026 Sep 09. pii: 1631. [Epub ahead of print]15(18):
      Neurodegenerative diseases share features of neuronal loss, neuroinflammation, and protein aggregation. The cGAS-STING pathway, a key DNA sensor, mediates neuroinflammation via TBK1-IRF3 and IKK-NF-κB axes, inducing type I interferons and pro-inflammatory cytokines. This pathway upregulates ZBP1, promotes PANoptosome assembly, and triggers PANoptosis, releasing DAMPs and creating a self-amplifying "inflammation-death" cycle. In Alzheimer's, Parkinson's, and amyotrophic lateral sclerosis, pathological proteins (Aβ, Tau, α-synuclein, TDP-43) or genetic defects (e.g., C9orf72 repeats) cause mitochondrial DNA leakage or genomic instability, activating this axis. This review highlights the cGAS-STING-PANoptotic cascade as a shared pathogenic mechanism and discusses the current evidence and remaining challenges in confirming this hypothesis.
    Keywords:  PANoptosis; cGAS-STING; cell death; neurodegenerative diseases; neuroinflammation
    DOI:  https://doi.org/10.3390/cells15181631
  38. Trends Pharmacol Sci. 2026 Sep 22. pii: S0165-6147(26)00201-4. [Epub ahead of print]
      Lipid droplet (LD) accumulation in neurons and glia is a feature of Alzheimer's disease (AD), Parkinson's disease (PD), and amyotrophic lateral sclerosis (ALS) and is associated with oxidative stress and neuroinflammation. Although protein-targeted monotherapies have achieved partial clinical success, continued disease progression in many patients suggests that additional cellular mechanisms contribute to pathogenesis. Lipophagy, the selective autophagic degradation of LDs, provides a potential clearance route but has been studied primarily in hepatocytes under nutrient deprivation. Recent studies have begun to map noncanonical regulatory mechanisms of lipophagy, identify disease-associated points of failure in AD, PD, and ALS, and report compounds that enhance LD clearance through mechanisms distinct from canonical nutrient sensing. In this article, we review these advances and discuss the emerging rationale for exploring neuron- and context-specific approaches to modulate lipophagy as a complementary strategy in neurodegeneration.
    Keywords:  drug discovery; lipid droplets; lipophagy; lipophagy receptors; neurodegeneration; neuroinflammation
    DOI:  https://doi.org/10.1016/j.tips.2026.08.004
  39. Antioxidants (Basel). 2026 Sep 18. pii: 1194. [Epub ahead of print]15(9):
      The revised ALS Functional Rating Scale (ALSFRS-R) and the blood plasma accumulation of neurofilament light chain (NfL) are key markers for tracking amyotrophic lateral sclerosis (ALS) progression. Based on recent studies indicating that dietary supplementation with conjugated linoleic acid (CLA) may boost antioxidant enzyme activity in ALS patients, in this study, ALSFRS-R scores (and subscores), NfL and thiol-bound protein (P-SH) levels, and intracellular activity of antioxidant enzymes (G6PD and GSR) were measured in ALS patients after 6 months (T6) of treatment with riluzole (R) or riluzole + CLA (R + CLA); we also investigated the correlations between these markers. At baseline (T0), G6PD activity in the R group was positively correlated with ALSFRS-R score (p < 0.001), whereas plasma P-SH levels in the R + CLA group were inversely correlated with ALSFRS-R score (p = 0.033). No significant baseline association was found between NfL levels and total ALSFRS-R score in the R group. At six months (T6), GSR and G6PD activities in the R + CLA group were significantly higher than in the R group (p < 0.05). Furthermore, a significant inverse correlation between plasma NfL levels and ALSFRS-R total score emerged at T6 exclusively in the R group (p = 0.002). Subscore analysis at T6 showed that plasma NfL levels negatively correlated with bulbar function in both groups (R: p = 0.010; R + CLA: p = 0.020) and with fine motor function in the R group (p = 0.031); whereas no significant correlation was observed for the respiratory subscore in either treatment group. These findings are consistent with an enhanced antioxidant activity associated with CLA supplementation. Overall, these preliminary exploratory results suggest that systemic redox biomarkers and plasma NfL may provide complementary, non-redundant information on distinct aspects of ALS pathobiology, though their precise temporal and mechanistic interactions require confirmation by dedicated longitudinal studies. The need for the combined use of neurodegeneration and oxidative-stress biomarkers for monitoring the progression of ALS is highlighted.
    Keywords:  ALSFRS-R; Nrf2-mediated redox homeostasis; amyotrophic lateral sclerosis; conjugated linoleic acid; neurodegeneration; neurofilament light chain; systemic redox biomarkers
    DOI:  https://doi.org/10.3390/antiox15091194
  40. Neurol Sci. 2026 Sep 24. pii: 807. [Epub ahead of print]47(10):
       BACKGROUND: Amyotrophic lateral sclerosis (ALS) is a progressive neurodegenerative disorder characterized by motor neuron (MN) degeneration. Mutations in the FUS gene, particularly the aggressive P525L variant, disrupt nuclear localization of the FUS RNA-binding protein, resulting in cytoplasmic accumulation, altered RNA metabolism, and toxic aggregation. Astrocytes also contribute to disease progression through non-cell-autonomous mechanisms.
    OBJECTIVE: To identify shared and cell-type-specific molecular mechanisms underlying FUS-associated ALS through integrated transcriptomic analysis of human induced pluripotent stem cell (hiPSC)-derived motor neurons and astrocytes.
    METHODS: Five publicly available RNA-sequencing datasets from hiPSC-derived motor neurons and astrocytes carrying FUS mutations were analyzed. Differential gene expression and Gene Ontology enrichment analyses were performed to identify dysregulated genes and pathways.
    RESULTS: Both cell types showed convergent dysregulation of mitochondrial/bioenergetic pathways (oxidative phosphorylation, ATP metabolism, translation, membrane potential). Pathway analysis across motor neuron datasets identified largely MN-specific enrichment in cell-cycle regulation, intracellular trafficking, and stimulus response, while only four pathways were shared with astrocytes, most notably NADH dehydrogenase complex assembly, enriched across all datasets and both cell types, marking mitochondrial complex I as the strongest convergent signature. RNA processing/splicing pathways were also enriched, consistent with FUS function. Shared DEGs included upregulated COMT, TXNRD2, and PCDHGB4, and downregulated PCDH17 and C11orf87, implicating neurotransmitter metabolism, antioxidant defenses, and adhesion. Stress pathways (oxidative stress, autophagy, heat-shock, ER stress/UPR) were broadly altered, with UPR genes mainly upregulated and inflammatory genes downregulated.
    CONCLUSION: FUS-ALS involves shared mitochondrial complex I and stress-response disturbances layered onto MN-intrinsic cell-cycle and trafficking dysregulation, reflecting convergent and cell-type-specific mechanisms.
    Keywords:  Amyotrophic lateral sclerosis; Astrocytes; ER stress/UPR; FUS; Motor neurons; iPSC
    DOI:  https://doi.org/10.1007/s10072-026-09412-7
  41. Eur J Med Chem. 2026 Sep 23. pii: S0223-5234(26)00805-6. [Epub ahead of print]320 119360
      Cannabidiol (CBD) is a non-intoxicating phytocannabinoid that has attracted interest as a multi-target neurotherapeutic candidate for neurodegenerative diseases. CBD is a lipophilic terpenophenolic chemotype whose phenolic redox chemistry, membrane partitioning, cytochrome P450-mediated metabolism, and formulation-dependent exposure are central to its biological activity and translational limitations. In addition, CBD engages a broad target network relevant to neurodegeneration. Major components include cannabinoid receptors, transient receptor potential channels, peroxisome proliferator-activated receptor-γ, adenosine and serotonin signaling systems, voltage-gated calcium channels, and redox-regulatory pathways. These mechanisms converge on neuroinflammation, excitotoxicity, mitochondrial dysfunction, impaired proteostasis, and synaptic injury. Preclinical studies across models of Alzheimer's disease, Parkinson's disease, multiple sclerosis, Huntington's disease, and amyotrophic lateral sclerosis consistently support CBD's anti-inflammatory, antioxidant, mitochondria-protective, and neuroprotective pharmacology. The magnitude of these effects depends on dose, treatment timing, model system, and route of administration. Clinical evidence remains preliminary and is mainly symptomatic, with signals in agitation, sleep disturbance, spasticity, quality of life, and neuropsychiatric symptoms rather than proven disease modification. Key barriers to development include low and variable oral bioavailability, incomplete brain exposure data, uncertain active metabolite contributions, limited target-engagement biomarkers, and insufficient exposure-response definition. Future development of CBD and optimized cannabinoid-derived analogues will require medicinal chemistry strategies to improve potency, selectivity, metabolic stability, CNS exposure, and formulation performance. Parallel biomarker-driven clinical trials are needed to define pharmacokinetic-pharmacodynamic relationships and evaluate disease-modifying potential.
    Keywords:  Cannabidiol (CBD); Clinical trials; Drug development; Endocannabinoid system; Neurodegenerative diseases; Neuroinflammation
    DOI:  https://doi.org/10.1016/j.ejmech.2026.119360
  42. J Inflamm Res. 2026 ;19 622530
       Objective: Amyotrophic lateral sclerosis (ALS) is increasingly viewed as a multisystem disorder in which central-peripheral immune communication may modify neuroinflammation. Exosomes, an endosome-derived subset of extracellular vesicles (EVs), have been proposed as mediators of this communication, but the strength and disease specificity of the evidence require critical evaluation.
    Methods: PubMed/MEDLINE, Web of Science Core Collection, and Scopus were searched from database inception to July 20, 2026, with supplementary citation tracking through Google Scholar and reference lists. Evidence was categorized as human ALS evidence, ALS-specific cellular or animal evidence, evidence from non-ALS neuroinflammatory models, or review-level background evidence.
    Results: Human studies have identified ALS-associated proteins and altered miRNA profiles in circulating EV-containing preparations, but their cellular origin, direction of transfer, and causal relevance remain uncertain. ALS-specific cellular and animal models support the possibility that EVs participate in intercellular protein transfer and modify glial inflammatory, phagocytic, antioxidant, and trophic responses. Some proposed mechanisms, including miR-216a-5p-mediated microglial regulation, are derived mainly from other neurological injury models and should be considered hypothesis-generating. Single-cell studies further indicate that ALS microglia occupy heterogeneous and overlapping states; therefore, M1/M2 terminology is used only as a simplified descriptive framework. Circulating EV cargo remains under investigation as a biomarker source, whereas the additional value of EV-associated neurofilament light chain and the diagnostic utility of TDP-43, SOD1, or miRNAs require independent validation. Therapeutic evidence remains predominantly preclinical, with only small, early, non-confirmatory human studies.
    Conclusion: EVs may participate in central-peripheral immune communication in ALS, but their causal role, cellular origin, in vivo trafficking, and clinical utility remain incompletely established. Standardized methods and rigorous mechanistic and clinical validation are required before EV-based biomarkers or therapies can be translated into practice.
    Keywords:  ALS; amyotrophic lateral sclerosis; central-peripheral immune communication; exosomes; microglia; neuroinflammation
    DOI:  https://doi.org/10.2147/JIR.S622530
  43. Int Rev Neurobiol. 2026 ;pii: S0074-7742(26)00077-2. [Epub ahead of print]191 509-536
      Neurodegenerative disorders are the progressive loss of function of the nervous system, in which the brain or CNS gradually die. The study related to neurodegeneration has several limitations, including the difficulty of obtaining brain tissue for pathophysiological analysis and the lack of prominent biomarkers. Similarly, the blood-brain barrier makes it more difficult to treat brain-related disorders by limiting the effectiveness of the drugs. Exosomes, a key intercellular signalling nanovesicle, transmit crucial genetic information between cells. Moreover, its ability to cross the blood-brain barrier makes it a more prominent biomarker and can even be used as a therapeutic carrier in the CNS. Exosomes also serve as excellent biomarkers for different cancer types by carrying tumor specific molecules, and might enable quick and efficient detection for a broad range of cancers. Exosomes are also involved in promoting metastasis, drug resistance, and manipulation of the immune system to facilitate tumor growth. In this study, we highlight recent studies that have demonstrated the utility of exosome-based biomarkers for the diagnosis of neurodegenerative disorders (Alzheimer's Disease, Parkinson's Disease, and Huntington's Disease) and different types of cancers (Breast Cancer, Lung Cancer, and Brain Cancer).
    Keywords:  Alzheimer’s disease; Cancer; Diagnostics; Exosome; Parkinson’s disease
    DOI:  https://doi.org/10.1016/bs.irn.2026.07.001
  44. JAMA Netw Open. 2026 Sep 01. 9(9): e2634809
    HEALEY ALS Platform Trial Study Group
       Importance: DNL343 is a brain-penetrant small molecule that acts as an activator of eukaryotic translation initiation factor 2B (eIF2b), designed to inhibit the integrated stress response. A prior phase 1B trial of DNL343 in amyotrophic lateral sclerosis (ALS) provided evidence of a favorable safety profile, central nervous system penetrance, and target engagement based on integrated stress response biomarkers in blood and cerebrospinal fluid.
    Objectives: To evaluate the safety and efficacy of a 200-mg formulation of DNL343 given once daily in individuals living with ALS.
    Design, Setting, and Participants: DNL343 was evaluated as a regimen of the HEALEY ALS Platform Trial, a double-blind, multiregimen, placebo-controlled randomized clinical trial conducted at 74 centers in the US between May 24, 2023, and May 22, 2025. Eligible participants were randomized in a 3:1 ratio to receive DNL343 or matching placebo, with both groups enrolling concurrently. The analysis included shared randomized participants receiving placebo from an additional regimen.
    Intervention: The study drug was administered for a placebo-controlled duration of 24 weeks.
    Main Outcomes and Measures: The primary analysis was a bayesian shared parameter model of function and survival that provided an integrated estimate of the relative rate of disease progression among participants receiving DNL343 relative to placebo. The model had components for function and survival linked through an integrated estimate of disease slowing in treatment relative to controls across the 2 outcomes (denoted as the disease rate ratio [DRR]). Several safety, secondary, and exploratory end points were also evaluated.
    Results: A total of 259 screenings were completed in this regimen; 249 participants met eligibility and were randomized to DNL343 (n = 186) and regimen-specific placebo (n = 63), with an additional 76 participants from a concurrent regimen receiving placebo included for a total of 139 shared placebo participants (325 participants, with 196 (60.3%) male and mean [SD] age of 59.3 [11.5] years). The estimated median DRR common to the ALS Functional Rating Scale-Revised and survival was 1.04 (95% credible interval, 0.83-1.32; probability of DRR <1, 0.37). Secondary outcome measures were not statistically different between the DNL343 and placebo groups. Overall, the incidence rates of adverse events were similar in participants receiving DNL343 and placebo.
    Conclusions and Relevance: In this randomized clinical trial, despite the relevance of the eIF2b activation pathway in ALS disease biology and supporting evidence of proof of mechanism and optimal dose selection in a prior phase 1B ALS clinical trial, 200-mg/d DNL343 did not show evidence of slowing disease progression in ALS, highlighting the need for alternative therapeutic approaches.
    Trial Registration: ClinicalTrials.gov Identifier: NCT05842941.
    DOI:  https://doi.org/10.1001/jamanetworkopen.2026.34809
  45. Pharmaceuticals (Basel). 2026 Sep 06. pii: 1405. [Epub ahead of print]19(9):
      Background and Objectives: The main neurodegenerative diseases (NDs)-Alzheimer's disease (AD), Parkinson's disease (PD), multiple sclerosis (MS), and amyotrophic lateral sclerosis (ALS)-represent a growing global health burden with no available disease-modifying therapies. Curcumin, a polyphenol from Curcuma longa, is a promising candidate owing to its pleiotropic antioxidant, anti-inflammatory, and neuroprotective profile observed mainly in preclinical models, but the poor oral bioavailability (<1%) and negligible BBB penetration (<0.1%) have substantially limited curcumin's clinical translation. The objective of this work was to critically examine the therapeutic potential of curcumin in NDs, focusing on advanced drug delivery systems (DDSs) designed to overcome its pharmacokinetic barriers. Methods: This is a narrative, non-systematic review of PubMed/MEDLINE, Scopus, and Web of Science. The review is organized around five complementary thematic areas selected to span the full translational pipeline of curcumin in neurodegeneration, from mechanistic rationale to clinical applicability: (1) molecular mechanisms, addressing the pleiotropic activities that justify therapeutic interest; (2) pharmacokinetic barriers, the principal obstacle to clinical translation; (3) the evolution of drug delivery systems (DDSs), documenting the technological strategies developed to overcome these barriers; (4) disease-specific applications, evaluating the available evidence across the four main NDs; and (5) translational limitations, identifying the methodological and regulatory gaps that must be closed to enable clinical implementation. Results: Curcumin exhibits neuroprotective activity in preclinical models of the four NDs analysed, acting on six interconnected mechanisms and the gut-brain axis. Four generations of DDSs have been developed, from phytosomes and clinically used lipid dispersions (Meriva®, BCM-95®, Longvida®, and Theracurmin®) to fourth-generation systems (biomimetic nanoparticles, MOFs, microneedles, 3D scaffolds, hydrogels, and carbon dots) that substantially increase the bioavailability in preclinical studies. Combination strategies, such as curcumin with resveratrol and dutasteride, show preliminary clinical signals in ALS. However, clinical translation remains limited: over 80% of positive animal findings have not been replicated in humans, formulation characterization is frequently incomplete, and most trials lack CNS-exposure biomarkers. Importantly, most of the reported bioavailability claims are based on total curcumin measurements (parent aglycone plus its inactive Phase II conjugates) rather than the active aglycone alone, a methodological limitation that should be considered when interpreting the magnitude of the bioavailability improvements reported for novel formulations. Conclusions: Curcumin exhibits pleiotropic neuroprotective activity in preclinical models of AD, PD, MS, and ALS, mediated by interconnected antioxidant, anti-inflammatory, anti-amyloidogenic, mitochondrial, and gut-brain axis mechanisms. However, its poor systemic bioavailability (<1%), minimal blood-brain barrier penetration, and extensive first-pass metabolism have limited clinical translation. Advanced drug delivery systems (including lipid-based carriers (liposomes, solid lipid nanoparticles, and nanostructured lipid carriers), polymeric nanoparticles (PLGA and chitosan), and bioinspired vesicles (exosomes)) are essential in order to overcome these barriers. Nevertheless, the formulation heterogeneity, limited long-term safety data, and reliance on preclinical models remain major obstacles; a definitive clinical translation will therefore require well-characterized formulations validated in phase II/III trials with cerebrospinal fluid exposure biomarkers, the pharmacokinetic monitoring of active aglycone (rather than total curcumin including inactive conjugates), and adaptive trial designs in neurological populations.
    Keywords:  bioavailability; blood–brain barrier; curcumin; drug delivery systems; exosomes; liposomes; nanoparticles; neurodegenerative disease
    DOI:  https://doi.org/10.3390/ph19091405
  46. Pharmaceutics. 2026 Sep 01. pii: 1099. [Epub ahead of print]18(9):
      Background/Objectives: Intranasal delivery is a promising noninvasive approach to enhance central nervous system drug delivery in Parkinson's disease (PD), potentially bypassing the blood-brain barrier and minimizing gastrointestinal side effects. This review summarizes clinical trials and translational evidence for intranasal PD therapies by treatment options and intent, highlighting key challenges in efficacy, pharmacokinetics, and safety. Methods: We reviewed human clinical trials, preclinical and pilot studies, and pharmacokinetic investigations of intranasal therapies for PD. Comparisons to established treatments were included in context. Only PD-specific clinical studies were analyzed. Therapies were grouped by rescue, antioxidant/metabolic/hormonal, and biologic or cell-based approaches, with continuous-delivery systems reviewed separately. Results: Intranasal rescue therapies, such as apomorphine, provide rapid improvement during OFF episodes (periods when the effects of PD medications fade and symptoms reappear), but tolerability issues and nasal irritation limit usage. Early-phase studies suggest intranasal delivery enables quick symptom relief and favorable pharmacokinetics, though most trials are small and focus on feasibility. New approaches include antioxidants, neurotrophic factors, gene therapy, and cell-based methods, with advanced formulations enhancing nasal retention and brain uptake. However, more translational evidence and long-term safety data are needed. Conclusions: Intranasal therapies for PD offer rapid rescue and expand options beyond standard drugs. Large, well-designed trials are needed to confirm efficacy, long-term safety, and optimal formulations. Intranasal delivery remains an emerging but potentially transformative strategy requiring further clinical research.
    Keywords:  Parkinson’s disease; apomorphine; clinical trials; intranasal therapy; nanocarriers; neurotrophic factors; nose-to-brain delivery; pharmacokinetics; rescue therapy; translational research
    DOI:  https://doi.org/10.3390/pharmaceutics18091099
  47. Curr Drug Targets. 2026 Sep 11.
      Although significant progress has been made in nanotechnology, the clinical translation of central nervous system (CNS) therapeutics has been limited. While engineered nanocarriers have greatly enhanced blood-brain barrier (BBB) transport, there is now growing evidence that enhanced brain delivery is not sufficient for therapeutic success. Based on this, it is suggested that the key obstacle to translation is now the poor engagement of the molecule at the BBB, its intracellular pharmacology, and its pharmacodynamic response. This perspective underscores the evolving paradigm shift from delivery-based nanomedicine to target-based precision pharmacology where therapeutic engagement is quantified by target occupancy, pathway modulation in the context of disease, and translational relevance to the human condition. This integration of validated disease biology and intelligent delivery design can now be achieved through the advent of new technologies such as artificial intelligence (AI), systems pharmacology, receptor-guided engineering of nanocarriers, spatial multi-omics, brain organoids, and BBB-on-chip technologies. This target-oriented approach is expected to facilitate clinical reproducibility and accelerate the development of safer, more effective, and individualized nanotherapeutics for CNS diseases.
    Keywords:  Central nervous system; artificial intelligence.; blood-brain barrier; nanomedicine; precision pharmacology; target engagement
    DOI:  https://doi.org/10.2174/0113894501515112260901061515
  48. J Imaging Inform Med. 2026 Sep 25.
      This study aimed to investigate whether three-dimensional (3D) hippocampal magnetic resonance imaging (MRI) radiomic features could differentiate multiple sclerosis (MS) subtypes using machine learning models, while establishing a reproducible workflow potentially adaptable to other neuroanatomical and neurodegenerative imaging studies. Brain MRI examinations from 267 patients with MS were included: 99 with relapsing-remitting MS (RRMS), 81 with primary progressive MS (PPMS), and 87 with secondary progressive MS (SPMS). The right and left hippocampi were analyzed in separate hemisphere-specific datasets, each containing 534 hippocampal regions of interest. Hippocampal segmentation was performed from 3D T1-weighted MRI using FreeSurfer/SynthSeg, and radiomic features were extracted using 3D Slicer/SlicerRadiomics. The machine learning algorithms were developed with Orange Data Mining. Random forest achieved the highest area under curve (AUC) values in the right and left hippocampal datasets, with AUCs of 0.790 and 0.786. Gradient boosting demonstrated comparable performance, with AUCs of 0.770 and 0.763 for the right and left hippocampi, respectively, and no significant differences from random forest across the evaluated metrics. Support vector machine showed lower discrimination, with corresponding AUCs of 0.693 and 0.725. Twelve of the 15 highest-ranked radiomic features were common to both hippocampi. T1-weighted MRI-derived three-dimensional hippocampal radiomic features demonstrated moderate internal discrimination among RRMS, PPMS, and SPMS. The integration of automated segmentation with 3D radiomic analysis provides an exploratory imaging-informatics framework that may also be adapted to investigate in other neurological and neurodegenerative disorders, although disease specific and multicenter validation is required.
    Keywords:  Hippocampus; Machine learning; Multiple sclerosis; Neuroimaging; Neuroradiology; Radiomics
    DOI:  https://doi.org/10.1007/s10278-026-02336-w
  49. Curr Neuropharmacol. 2026 Sep 23.
      Amyotrophic lateral sclerosis (ALS) is a fatal neurodegenerative disease characterized by progressive motor neuron loss, resulting in paralysis and limited survival. Multiple regulated cell death pathways, including apoptosis, necroptosis, ferroptosis, pyroptosis, lysosomal cell death, autophagy-dependent cell death, NETosis, and other emerging cell death modalities, have been implicated in ALS, but their mechanistic interactions and relative contributions remain poorly understood. This knowledge gap has hindered the development of effective therapies. Better experimental models are needed to dissect these pathways. This review summarizes current knowledge on the roles of cell death pathways in ALS. A tiered framework (M1-M4) is applied to critically evaluate data from human postmortem tissue, patient-derived cells, and animal models, ranking studies according to their relevance to human disease. Potential crosstalk among these pathways is further examined. It is also proposed that the relative contribution of specific cell death pathways may shift with disease progression, although this hypothesis requires longitudinal validation. To integrate this dynamic perspective, cell death pathway activities are hypothetically aligned with the King's clinical staging system. This stage-informed framework is presented as a conceptual model intended to generate hypotheses rather than to serve as a validated clinical algorithm. The model distinguishes established therapies from preclinical and exploratory strategies. Future research should prioritize the development of human-relevant model systems, the identification of longitudinal biomarkers of cell death, and the implementation of rigorously designed combination trials. These efforts may ultimately enable more precise, stage-appropriate therapeutic strategies for ALS.
    Keywords:  Amyotrophic lateral sclerosis; King’s clinical staging; conceptual framework; evidence appraisal; regulated cell death; stage-informed treatments
    DOI:  https://doi.org/10.2174/011570159X500937260908042834
  50. Antioxidants (Basel). 2026 Aug 22. pii: 1051. [Epub ahead of print]15(9):
      Amyotrophic Lateral Sclerosis (ALS) is a progressive neurodegenerative disorder strongly associated with mitochondrial dysfunction and impaired proteostasis. Mutations in TARDBP, encoding TAR DNA-binding protein 43 (TDP-43), contribute to disease pathogenesis through cytoplasmic mislocalization and aggregation. Among these, the ALS-linked TDP-43G376D mutation has been previously associated with oxidative stress, mitochondrial fragmentation, and impaired oxidative phosphorylation. Here, we investigated the impact of TDP-43G376D on Mitochondrial Quality Control (MQC) pathways using patient-derived dermal fibroblasts carrying the mutation at early and advanced disease stages, complemented by HEK293T and Neuro2a cellular models expressing mutant TDP-43. We show that TDP-43G376D impairs mitophagic flux, as evidenced by reduced delivery of damaged mitochondria to lysosomes. This was accompanied by pronounced disruption of mitochondrial cristae architecture and accumulation of mitochondrial DNA damage, indicating compromised mitochondrial genome integrity. Furthermore, TDP-43G376D induces sustained activation of the mitochondrial Unfolded Protein Response (UPRmt), consistent with persistent mitochondrial stress, while selectively impairing the sirtuin-dependent antioxidant branch. In parallel, activation of the Endoplasmic Reticulum UPR (UPRER) was observed, indicating a coordinated engagement of cellular stress pathways. Collectively, our findings identify coordinated alterations in multiple MQC pathways associated with TDP-43G376D rather than isolated mitochondrial defects, supporting further investigation of these pathways in larger and disease-relevant ALS models.
    Keywords:  Amyotrophic Lateral Sclerosis (ALS); Endoplasmic Reticulum stress; Mitochondrial Quality Control (MQC); TDP-43; mitochondrial Unfolded Protein Response (UPRmt); mitochondrial dysfunction; mitophagy; oxidative stress
    DOI:  https://doi.org/10.3390/antiox15091051
  51. Front Neurosci. 2026 ;20 1907826
       Introduction: Speech is organized into discrete utterances and pauses in accordance with underlying linguistic structure, temporal coordination, prosodic organization, and respiratory demands. Temporal speech characteristics, including rhythmic and pausing patterns, are governed by multiple neurophysiological mechanisms and provide valuable insights for the assessment and management of motor speech disorders. This study employed a mechanistically informed analytic framework of hierarchical temporal speech organization to derive interpretable, objective measures for assessing rhythmic and pausing disturbances in neurodegenerative diseases.
    Methods: Orofacial kinematic and acoustic recordings were obtained from two neurodegenerative disease groups-amyotrophic lateral sclerosis (ALS) and Parkinson's disease (PD)-along with a neurologically healthy control (HC) group, during a passage reading task. Using automated analytic procedures, kinematic rhythm measures (movement-based) and acoustic rhythm measures (sound-based) were derived to characterize hierarchical rhythmic modulation of articulatory movements and critical-band acoustic modulation envelopes at prosodic, syllabic, and sub-syllabic levels. Pause measures were derived to characterize within- and between-sentence pausing patterns. Rhythmic and pausing patterns were compared across groups. The acoustically derived rhythm and pause measures were subsequently subjected to (1) discriminant analyses for multiclass classification among the ALS, PD, and HC groups, and (2) regularized regression models to evaluate their associations with functional outcomes.
    Results: Both neurodegenerative disease cohorts exhibited a reorganization of hierarchical rhythmic modulation characterized by reduced prosodic-level modulation and increased syllabic-level modulation. Such changes were, however, driven primarily by articulatory impairment in ALS and by respiratory-laryngeal impairment in PD. In addition, both cohorts showed reduced regularity of intra-syllabic temporal organization and altered within-sentence pausing patterns, whereas the ALS cohort exhibited additional changes in between-sentence pausing. Measures capturing these rhythmic and pausing disturbances demonstrated promising classification performance (mean accuracy = 0.77; mean area under the curve [AUC] = 0.84) and meaningful associations with functional speech decline across diseases.
    Discussion: The rhythm and pause measures captured disease-specific subclinical changes in the physiological substrates underlying rhythmic and pausing disturbances in ALS and PD, demonstrating potential as clinically applicable, objective markers to enable more accurate differential diagnosis, targeted intervention, and measurement-based care for neurodegenerative motor speech disorders.
    Keywords:  acoustics; articulatory kinematics; differential assessment; motor speech disorder; neurodegenerative disease; objective marker; pause; rhythm
    DOI:  https://doi.org/10.3389/fnins.2026.1907826
  52. medRxiv. 2026 Sep 20. pii: 2026.09.17.26363319. [Epub ahead of print]
      Amyotrophic lateral sclerosis (ALS) is a fatal neurodegenerative disorder whose genetic architecture and underlying molecular mechanisms remain incompletely understood, particularly in sporadic disease. To investigate whether genetically regulated DNA methylation may help interpret ALS susceptibility, we conducted a methylome-wide association study (MWAS) of genetically predicted blood DNA methylation using the PrediXcan framework. CpG-specific prediction models developed in the ARIES and Understanding Society cohorts were applied to ALS genome-wide association study (GWAS) summary statistics from 27,205 cases and 110,881 controls of European ancestry. In total, genetically predicted methylation at 192,378 unique CpG sites was evaluated using S-PrediXcan. At a nominal threshold of p < 0.05, 3,741 CpGs were associated with ALS risk using ARIES models and 13,127 using Understanding Society models. After Bonferroni correction, 25 CpGs across eight genomic regions remained significantly associated with ALS risk. These included signals near established ALS and ALS-frontotemporal dementia genes and loci, including C9orf72, TBK1, SCFD1, and MOB3B, as well as three CpGs mapping to WHAMM at 15q25.2, a region not previously implicated in ALS by GWAS. Predicted methylation was positively associated with ALS risk at 18 CpGs and inversely associated at seven. Complementary transcriptome-wide association analyses using GTEx v8 whole-blood gene-expression prediction models identified 11 genes associated with ALS risk after Bonferroni correction, including convergent methylation and expression signals at C9orf72. These findings add a regulatory dimension to ALS genetic studies by prioritizing CpG sites, genes, and genomic regions through which inherited variation may influence disease susceptibility. PrediXcan-based MWAS therefore provides a complementary strategy for refining genetic association signals into biologically testable candidates and identifying regulatory mechanisms for further functional investigation.
    DOI:  https://doi.org/10.64898/2026.09.17.26363319
  53. Brain Res Bull. 2026 Sep 23. pii: S0361-9230(26)00423-5. [Epub ahead of print]245 112136
       INTRODUCTION: Wearing-off (WO) is the most common medicine-related complication that develops in later stage of Parkinson's disease (PD), whereas the underlying mechanism still remains unknown. Here, we aimed to decipher the mechanism underlying the WO in PD patients.
    METHODS: Twenty-six PDWO (PD with WO), 26 PDnW (PD without WO) and 34 healthy controls were included and functional and structural magnetic resonance imaging (MRI) were employed. Functional network was constructed based on the matrix of each subject's functional images and attributes of functional topology (e.g., global and local metrics) were calculated. Intergroup differences in white matter and grey matter were compared to potentially explore the structural abnormalities. Partial correlation analysis was performed to demonstrate the relationships between the altered imaging findings and clinical variables.
    RESULTS: Wearing-off in PD patients was independently associated with levodopa equivalent daily dose (LEDD) /weight. Functional degree centrality (DC) having negative correlation with WO severity was significantly decreased in supramarginal gyrus in PDWO. Functional DC in precentral gyrus was significantly lower in PDnW compared with healthy controls, which was correlated with dopaminergic medication profiles. No apparent evidence about structural abnormality was found in PDWO and PDnW patients.
    CONCLUSIONS: The occurrence of wearing-off in PD patients was independently associated with LEDD/weight. The functional disruption in supramarginal gyrus might reflect the development of wearing-off, and we speculated the attenuation of levodopa related plasticity in precentral gyrus had an association with the susceptibility of wearing-off in PD patients. Further research are needed to validate and extend these preliminary findings.
    Keywords:  Diffusion tensor imaging; Functional magnetic resonance imaging; Parkinson’s disease (PD); Wearing-off
    DOI:  https://doi.org/10.1016/j.brainresbull.2026.112136
  54. Pharmaceuticals (Basel). 2026 Sep 17. pii: 1483. [Epub ahead of print]19(9):
      The blood-brain barrier (BBB) is a unique neurovascular interface essential for central nervous system homeostasis. Beyond its classical protective role, accumulating evidence points to the BBB as a dynamic structure actively involved in brain function in health and disease. The present review synthesizes clinical, molecular, and neuroimaging evidence implicating BBB dysfunction in major depressive disorder (MDD), bipolar disorder (BD), and schizophrenia. The paper was prepared in accordance with the recommendations of the Scale for the Assessment of Narrative Review Articles and was based on a PubMed search of publications published between 2000 and 2026. We summarize BBB architecture and regulation within the neurovascular unit and examine how neuroinflammation, oxidative stress, mitochondrial dysfunction, vascular-metabolic disturbances, and glucocorticoid signaling compromise tight junction, endothelial, pericyte, and astrocytic function, thereby facilitating peripheral immune signaling and sustaining central inflammation. Disorder-specific findings highlight shared and distinct mechanisms: In MDD, EZH2-mediated downregulation of claudin-5 and VEGF-driven barrier disruption are associated with increased permeability in the prefrontal cortex and hippocampus; in BD, elevated cerebrospinal fluid/serum albumin ratios and levels of S100B and matrix metalloproteinase-9-mediated tight junction degradation are associated with illness duration and neuroprogression; and in schizophrenia, reduced expression of claudin-5 and claudin-11, diminished pericyte coverage, and dysregulation of transforming growth factor-α/platelet-derived growth factor signaling are associated with neuroinflammation and treatment resistance. Therapeutic implications are discussed, including anti-inflammatory and antioxidant strategies, endothelial stabilization, and BBB-targeted delivery, as well as methodological limitations and future directions for biomarker development and neurovascular modeling.
    Keywords:  endothelial dysfunction; neuroinflammation; neurovascular unit; oxidative stress; permeability; psychiatric disorders
    DOI:  https://doi.org/10.3390/ph19091483
  55. Paediatr Drugs. 2026 Sep 21.
       BACKGROUND AND OBJECTIVE: Ocrelizumab and ofatumumab are highly effective disease-modifying therapies (DMTs) for adult-onset multiple sclerosis and are increasingly used in pediatric-onset multiple sclerosis. However, there is a paucity of data on their safety and efficacy in pediatric-onset multiple sclerosis. We aimed to describe real-world outcomes of ocrelizumab and ofatumumab in a single center cohort of patients with pediatric-onset multiple sclerosis.
    METHODS: A retrospective cohort study of pediatric patients evaluated at Children's National Hospital between 2015 and 2026 who fulfilled 2017 McDonald criteria for relapsing-remitting multiple sclerosis and were treated with either ocrelizumab or ofatumumab. Patients were included regardless of whether they were treatment naïve or switching from a prior DMT. Primary outcomes were clinical relapse or radiologic worsening with new/enlarging T2 or gadolinium-enhancing lesions on magnetic resonance imaging. Secondary outcomes included safety and tolerability outcomes characterized by frequency and severity of infections, medication side effects, and hypogammaglobulinemia. Statistical analysis included descriptive statistics and an exploratory Kaplan-Meier survival analysis.
    RESULTS: Forty-one patients were included, with mean age at diagnosis of 15 years (range 8-17 years). There were 32/41 (78%) patients treated with ocrelizumab and 9/41 (22%) treated with ofatumumab; 22/41 (54%) received these agents as first-line DMTs. There were 19/41 (46%) patients prescribed a previous DMT, and radiologic worsening/clinical relapse was the most common reason for switching (9/19, 47%). Only 1/41 (2%) experienced a clinical relapse occurring > 3 months after ocrelizumab initiation, with an annualized relapse rate of 0.012. There were 3/41 (7%) patients who had new or enlarged T2 hyperintense lesions after re-baseline magnetic resonance imaging. There were 5/41 (12%) patients who experienced an infusion or injection-site reaction, which were all mild and managed conservatively. No patients discontinued ocrelizumab or ofatumumab because of adverse events.
    CONCLUSIONS: These results provide descriptive real-word data on the use of ocrelizumab and ofatumumab, especially when used as a first-line DMT in pediatric-onset multiple sclerosis. Although limited by a short follow-up period, our real-world findings provide safety and effectiveness data to inform DMT selection and shared decision making with families.
    DOI:  https://doi.org/10.1007/s40272-026-00778-x
  56. Front Neurosci. 2026 ;20 1927448
      The enteric nervous system (ENS), a central component of the gut-brain axis, is increasingly recognized as an important site in the pathogenesis of neurodegenerative diseases. In Parkinson's disease (PD) in particular, gastrointestinal dysfunction and pathological changes within the ENS often precede symptoms in the central nervous system (CNS). According to the Braak hypothesis, disease-associated pathology may originate in the gastrointestinal tract and spread to the brain via neural pathways such as the 10 th cranial nerve, the vagus nerve. Consequently, the ENS is considered a potential early site of neurodegenerative processes. Despite this growing interest, most studies investigating ENS pathology rely on fluorescence-based approaches that primarily provide information on protein expression and cellular distribution. While these techniques have advanced our understanding of enteric neuronal networks, they offer limited insight into subcellular organization. Ultrastructural analysis of the CNS has already identified characteristic changes at the subcellular level, including morphological alterations of synapses, changes in the endolysosomal system, and mitochondrial dysfunction. Mitochondrial dysfunction represents a key mechanism in PD, as demonstrated in toxin models such as rotenone exposure and in genetic forms involving mutations in PINK1 or PRKN. However, comparable ultrastructural investigations of the ENS remain scarce. This review highlights the importance of ultrastructural investigations of the ENS for understanding early neurodegenerative processes and discusses how electron microscopy (EM) may reveal previously underappreciated cellular and subcellular alterations in enteric neurons. Particular attention is given to mitochondrial pathology and the need for systematic ultrastructural analyses of the ENS in models and human studies of PD.
    Keywords:  ENS; Parkinson’s disease; electron microscopy; mitochondria; ultrastructure
    DOI:  https://doi.org/10.3389/fnins.2026.1927448
  57. Brain Behav. 2026 Sep;16(9): e71771
       BACKGROUND: Hypothesis-driven studies have linked numerous risk factors to amyotrophic lateral sclerosis (ALS). However, the full extent of their diversity and co-occurrence has not been adequately appreciated. This study aims to comprehensively explore the modifiable risk factors for ALS and to evaluate the potential benefit of controlling these factors.
    METHODS: This prospective cohort study utilized data from UK Biobank participants enrolled between 2006 and 2010 for whom complete data were available. An exposome-wide association study (EWAS) was employed to screen for modifiable risk factors, adjusted for sex and age. The main outcome was the first recorded diagnosis of ALS. The associations of modifiable risk factors with ALS risk were assessed using hazard ratios and 95% confidence intervals. The population attributable fraction (PAF) was used to estimate the joint effects of modifiable factors.
    RESULTS: This study included a total of 326,050 participants and assessed 184 modifiable risk factors. During follow-up, 744 participants were diagnosed with ALS for the first time. EWAS, adjusted for sex and age, identified 45 modifiable factors associated with ALS incidence across six domains (excluding early life), including varicella, lower education, and peak expiratory flow. Analysis using the PAF indicated that 25.94%-87.40% of ALS cases could potentially be prevented.
    CONCLUSIONS: In this study, newly identified risk factors for ALS through the EWAS may serve as targets for future studies. Interventions targeting modifiable risk factors, particularly those related to lifestyle and socioeconomic status, may help reduce the incidence of ALS.
    Keywords:  amyotrophic lateral sclerosis; exposome‐wide association study; modifiable factors
    DOI:  https://doi.org/10.1002/brb3.71771
  58. J Pain Symptom Manage. 2026 Sep 24. pii: S0885-3924(26)01008-0. [Epub ahead of print]
       CONTEXT: Amyotrophic lateral sclerosis (ALS) is a terminal neurodegenerative disease with an illness trajectory requiring repeated, high-stakes decisions and ongoing serious illness communication (SIC). While multidisciplinary team care is best practice in ALS, how interprofessional teams operationalize SIC, and how team culture shapes this work, remain poorly understood.
    OBJECTIVE: To examine how team culture influences SIC delivery within an interprofessional ALS clinic.
    METHODS: We conducted a qualitative study using semi-structured interviews and a focus group with interprofessional clinicians from a multidisciplinary ALS clinic at an academic medical center. Data explored clinicians' perceptions of interprofessional roles, team culture, facilitators, and barriers related to SIC. Transcripts were analyzed using thematic analysis with a combined deductive-inductive approach.
    RESULTS: Analysis identified interpersonal facilitators, systems-level facilitators, and structural barriers shaping team-based SIC. Clinicians described shared responsibility for SIC, with conversations unfolding cumulatively over time across roles and clinical encounters. Interpersonal facilitators included mutual respect, psychological safety, role flexibility, and a shared commitment to reducing patient harm. Systems-level facilitators included frequent multimodal communication, structured documentation, leadership support, and use of adverse outcomes as opportunities for practice improvement. Structural barriers included time constraints, care transitions, regulatory limitations, and variability in comfort with SIC language.
    CONCLUSIONS: In this multidisciplinary ALS clinic, strong team culture enabled SIC to function as a longitudinal, interprofessional process rather than a single clinician-led event. Findings highlight the importance of psychological safety, teamwork, and supportive systems in delivering high-quality SIC and inform future clinical practice, training, and research.
    Keywords:  ALS; Serious Illness Communication; interprofessional teamwork; neurodegenerative disease; team culture
    DOI:  https://doi.org/10.1016/j.jpainsymman.2026.09.025
  59. Medicine (Baltimore). 2026 Sep 25. 105(39): e50883
      This study aimed to compare the substantia nigra of patients with Parkinson's disease (PD) and healthy controls using magnetic resonance imaging texture analysis findings. Texture analysis was performed on the pixels within each region of interest in the substantia nigra for all participants. The entire imaging analysis workflow was implemented using an in-house algorithm developed using Matrix Laboratory. This study included 76 participants (37 patients and 39 controls). There were no significant differences between the groups in terms of age or sex (P > .05). In the unadjusted analysis, kurtosis, skewness, and uniformity differed significantly between patients and controls (P < .05); however, after correction for multiple comparisons, only kurtosis remained statistically significant. Receiver operating characteristic curve analysis demonstrated moderate discriminative performance, with kurtosis showing the most robust results. These findings suggest a potential supportive role of susceptibility-weighted imaging-based texture analysis in PD; however, given the exploratory design and the absence of external validation, the results should be interpreted with caution. The findings of this study suggest that texture analysis applied to imaging data of patients with PD may have a potential supportive role in the diagnostic evaluation of the disease.
    Keywords:  Parkinson’s disease; computer-assisted; image processing; magnetic resonance imaging; pars compacta; pars reticulata
    DOI:  https://doi.org/10.1097/MD.0000000000050883
  60. Cells. 2026 Sep 20. pii: 1710. [Epub ahead of print]15(18):
      The hypothalamic-pituitary-adrenal (HPA) axis is the central neuroendocrine system that controls physiological stress responses and maintains homeostasis through the coordinated interactions among the hypothalamus, pituitary gland, and adrenal cortex. Dysregulation of the HPA axis is associated with stress-related psychiatric conditions and neurodegenerative diseases, including Alzheimer's disease, Parkinson's disease, and amyotrophic lateral sclerosis. Chronic stress creates a detrimental environment in the brain, inducing structural changes and accelerating brain aging and the loss of neurons. Receptor tyrosine-protein kinase ERBB4 (ERBB4), a member of the epidermal growth factor receptor (EGFR) family, is activated primarily by neuregulin ligands and plays an essential role in neuronal development, synaptic plasticity, and cell survival. Emerging evidence suggests that ERBB4 signaling influences neuroendocrine regulation and stress responsivity. While further studies are needed to provide direct mechanistic evidence linking ERBB4-mediated HPA axis dysregulation to neurodegenerative cell death, this manuscript critically evaluated the preclinical models and proposes a possible feed-forward framework wherein ERBB4 served as a permissive homeostatic modulator at the intersection of stress endocrinology and neuroinflammation. Furthermore, the impact of ERBB4 dysregulation and its mutations on neurodegenerative diseases has been presented, focusing on potential mechanisms of oxidative stress, synaptic dysfunction, and neuronal apoptosis. Taken together, ERBB4 represents an important molecular interface between stress signaling and neurodegenerative pathology. Understanding the regulation of ERBB4 in the HPA axis has provided new insights into the mechanisms underlying neurodegenerative diseases and could identify novel therapeutic targets for stress-associated neurological disorders.
    Keywords:  ERBB4; HPA axis; mutation; neureulin-1; neurodegenerative diseases
    DOI:  https://doi.org/10.3390/cells15181710
  61. Cells. 2026 Sep 19. pii: 1701. [Epub ahead of print]15(18):
      A hexanucleotide repeat expansion in C9ORF72 is the most common genetic cause of amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD). Bidirectional transcription of the repeat expansion generates sense and antisense RNAs that are translated into dipeptide repeat (DPR) proteins, but the mechanisms of translation initiation remain incompletely understood. Here, we used CRISPR-Cas9 genome editing and steric-blocking antisense oligonucleotides (ASOs) to investigate the role of AUG codons within the antisense repeat RNA. Deletion of an AUG-containing region upstream of the antisense repeats markedly reduced poly(GP) production without affecting antisense RNA levels, demonstrating that this sequence is required for efficient poly(GP) synthesis. We further found that unspliced sense transcripts containing the repeat expansion likely serve as templates for poly(GA) and poly(GR) production in motor neurons. Finally, ASOs targeting the antisense AUG-containing region reduced poly(PR) and poly(GP) levels without altering repeat RNA abundance, supporting a role for AUG-dependent translation of the antisense repeat RNA. These findings provide new insights into the mechanisms of DPR production and suggest that translation-blocking ASOs may represent a therapeutic strategy for C9ORF72-associated ALS/FTD.
    Keywords:  ALS; ASO; FTD; dipeptide repeat protein; iPSC-derived neurons; repeat RNA translation
    DOI:  https://doi.org/10.3390/cells15181701
  62. Mol Neurobiol. 2026 Sep 21. pii: 914. [Epub ahead of print]63(1):
      Parkinson's disease (PD) is a progressive neurodegenerative disorder, which causes the loss of dopaminergic neurons in the substantia nigra, resulting in both motor and non-motor impairments. Although crucial advancements in therapeutic strategies, the existing treatments primarily focus on symptom management and fail to address the underlying cause of the disease. Recent advancements in nanotechnology, particularly those that utilize phytogenic approaches, give promising strategies for managing and treating PD. In this review, the term phytogenic nanoparticles (NPs) refer broadly to nanoformulations in which plant-derived materials contribute either to nanoparticle synthesis or therapeutic functionality including plant extract-mediated green-synthesized nanoparticles, nanoparticles loaded or coated with purified phytochemicals and plant-derived exosome-like vesicles. Because these categories differ in composition, mechanism of action, reproducibility, safety and translational maturity, they are critically evaluated as distinct platforms throughout the review. These nanocarriers have shown the ability to improve drug stability, enhance bioavailability and increase brain exposure in experimental models, although the extent and mechanisms of blood-brain barrier (BBB) transport vary among formulations. Phytochemical-loaded nanoparticles demonstrated neuroprotective effects in preclinical models via modulation of oxidative stress and inflammation, inhibiting α-synuclein aggregation, and promoting autophagy, thereby offering a promising therapeutic avenue for neurodegenerative disorders. Phytogenic nanotechnology offers a promising approach for PD therapy through the improvement of drug stability, bioavailability and blood-brain barrier permeation. These NPs exhibit antioxidative, anti-inflammatory and neuroprotective effects, targeting important PD pathologies. Non-invasive delivery strategies, including intranasal drugs and microneedle patches, enhance therapeutic efficacy. This narrative review discusses the efficient management approach for PD via nanotechnological advancements.
    Keywords:  Blood-brain barrier; Drug delivery; Green synthesis; Nanotechnology; Neuroprotection; Parkinson’s disease; Phytogenic nanoparticles
    DOI:  https://doi.org/10.1007/s12035-026-06218-8