bims-proned Biomed News
on Proteostasis in neurodegeneration
Issue of 2026–06–21
ten papers selected by
Verena Kohler, Umeå University



  1. Adv Sci (Weinh). 2026 Jun 15. e76119
      TAR DNA-binding protein 43 (TDP-43) is a ubiquitously expressed RNA-binding protein that plays essential roles in RNA metabolism, including transcription, splicing, transport, and stability. Pathological TDP-43 aggregates have become a defining hallmark of neurodegenerative diseases such as amyotrophic lateral sclerosis (ALS) and a large subset of frontotemporal lobar degeneration (FTLD). In the last decade, increasing evidence has challenged the initial thought of TDP-43 condensates as a purely pathological event, highlighting instead the physiological relevance of reversible self-association, polymerization and liquid-liquid phase separation (LLPS) in regulating TDP-43 functions. In this review, we provide an integrated overview of the structural determinants governing TDP-43 two-faced polymerization, with a particular focus on the prion-like domain and its parallelism with prion proteins. Indeed, while physiological assemblies support normal RNA processing, the dysregulation of LLPS by either disease-associated mutations, altered RNA-binding, aberrant post-translational modifications, or proteolytic cleavage can promote the transition toward irreversible, pathogenic aggregates. Finally, we summarize strategies aimed at eliminating TDP-43 aggregates or modulating its phase-separation behavior. Altogether, this review frames TDP-43 polymerization in both healthy and pathological conditions, offering a prion-like centered view of TDP-43 proteinopathies.
    Keywords:  LLPS; TDP‐43; neurodegeneration; prion‐like domain; protein aggregation; therapeutic strategies
    DOI:  https://doi.org/10.1002/advs.76119
  2. CNS Neurol Disord Drug Targets. 2026 Apr 01.
      Amyotrophic Lateral Sclerosis (ALS) is a fatal neurodegenerative disease characterized by the progressive degeneration of motor neurons, with protein aggregation as a central pathological hallmark. Key pathogenic proteins, including TDP-43, SOD1, FUS, and dipeptide repeat proteins (DPRs) from C9orf72 expansions, drive disease progression through diverse but converging mechanisms. TDP-43 proteinopathy, present in nearly all ALS cases, involves cytoplasmic mislocalization, misfolding, and aggregation, disrupting RNA processing, protein transport, and DNA repair. Similarly, SOD1 and FUS mutations promote toxic protein aggregation, impairing cellular homeostasis and contributing to neuronal dysfunction. C9orf72-derived DPRs exert toxicity by interfering with nucleocytoplasmic transport. The propagation of these pathogenic proteins between neurons and glia, often via prion-like mechanisms, underlies the characteristic spread of ALS pathology throughout the nervous system. Cellular protective responses, such as molecular chaperones and the ubiquitin-proteasome system, attempt to mitigate aggregation but are often overwhelmed in disease states. Mitochondrial dysfunction, oxidative stress, and disturbances in calcium homeostasis are also implicated, with evidence showing that SOD1 mutations can alter redox balance and mitochondrial function in both neurons and non-neuronal cells. Impaired DNA repair mechanisms, involving proteins such as TDP-43, FUS, NEK1, and VCP, have emerged as important contributors to ALS pathogenesis, linking protein aggregation to genomic instability. Recent therapeutic strategies focus on directly targeting misfolded proteins using small molecules, peptides, or antisense oligonucleotides to inhibit aggregation or enhance clearance, offering hope for disease modification. Understanding the interplay between protein aggregation, impaired RNA metabolism, and cellular stress responses is crucial for developing effective translational therapies for ALS.
    Keywords:  Amyotrophic lateral sclerosis; C9orf72; FUS; TDP-43; mitochondrial dysfunction; pathogenic proteins.
    DOI:  https://doi.org/10.2174/0118715273440191260226063811
  3. Biochem Biophys Res Commun. 2026 Jun 16. pii: S0006-291X(26)00904-6. [Epub ahead of print]829 154140
      Tau aggregation in neurons is a pathological hallmark of Alzheimer's disease (AD). The development of therapeutic drugs that inhibit tau aggregation in tauopathies, including AD, remains challenging. Herein, we developed a tau self-interaction reporter system using split Nanoluciferase (Tau-NLuc) in which luciferase activity is restored by the self-assembly of split Nanoluciferases following self-interaction between tau proteins. Curcumin (CCM), a phenolic organic compound, significantly reduced luciferase activity in the Tau-NLuc system, including mutant tau forms such as S396/404E and P301L, which are known aggregation-prone tau forms, suggesting that CCM may act as a potential inhibitor of tau aggregation. CCM did not alter the protein levels of phosphorylated tau as well as total tau, indicating that the reduction in luciferase activity by CCM did not originate from tau degradation, but rather from tau aggregation inhibition. Of note, CCM significantly increased heat shock protein (HSP) 90 dimer. The reduced luciferase activity in the Tau-NLuc system by CCM was recovered by knockdown of the HSP90 gene using a siRNA specific for HSP90 or treatment of an inhibitor of HSP90 NCT-58, supporting the involvement of HSP90. Intriguingly, hexahydrocurcumin (HHC), a derivative of CCM, did not reduce luciferase activity, nor did it induce the formation of the HSP90 dimer, suggesting that HSP90 dimer formation may contribute to the CCM-mediated inhibition of tau aggregation. Taken together, the results demonstrate that CCM inhibits tau aggregation with the involvement of HSP90, providing novel insights into the development of therapeutic strategies for AD.
    Keywords:  Alzheimer's disease; Curcumin; HSP90; Nanoluciferase; Tau
    DOI:  https://doi.org/10.1016/j.bbrc.2026.154140
  4. CNS Neurol Disord Drug Targets. 2026 Apr 01.
      Amyloids are β-sheet-rich protein aggregates with various implications in biology. Beyond their functional contributions, such as biofilm formation, amyloids are best known for their involvement in a number of human pathologies, including Alzheimer's Disease, Parkinson's Disease, and Type-two Diabetes (T2D), where they accumulate as toxic aggregates. Mounting lines of research investigations aimed at inhibiting amyloids encompass various strategies targeting different stages of amyloid formation and toxicity. Recent studies have unveiled a previously unrecognized function of the Helicobacter pylori virulence protein CagA as a potent inhibitor of amyloid formation. Herein, we highlight these findings, summarizing the current evidence suggesting that the N-terminal region of CagA interferes with multiple stages of fibril formation across a wide range of substrates, including bacterial amyloids and human disease-associated proteins. Further, depending on the protein, CagA appears to block primary nucleation, elongation, or secondary nucleation, and its activity has been mapped in part to Domain II. Together, these findings suggest that CagA functions beyond its canonical role in host signaling as a versatile regulator of protein aggregation. By highlighting this promising finding, we briefly discuss the broader implications in the context of host microbe interactions, the potential for microbial proteins to influence key molecular processes in mediating neurodegeneration, and the therapeutic potential of bacterial factors as amyloid inhibitors.
    Keywords:  Alzheimer's disease; Neurodegeneration; Parkinson’s disease; amyloid; bacterial factors.; protein aggregation
    DOI:  https://doi.org/10.2174/0118715273445389260303041529
  5. Chem Sci. 2026 Jun 05.
      Amyloidogenesis is a central pathological process in neurodegenerative disorders, yet general chemical principles that enable its predictive control are still insufficiently understood. Synthetic polymers offer a versatile and chemically tunable platform for modulating amyloid assembly; however, quantitative relationships linking polymer physicochemical properties to amyloidogenic pathways and biological outcomes remain poorly established. Here we present a systematic and quantitative framework that connects polymer composition to amyloid reactivity. By precisely tuning hydrophobicity, hydrophilicity, and net charge, and integrating polymer synthesis with computational, biochemical, and cellular analyses, we uncover clear structure-activity relationships governing interactions with amyloidogenic peptides and proteins, such as amyloid-β and α-synuclein. We show that balanced amphiphilic architectures, particularly hydrophobic-zwitterionic compositions, suppress fibrillization, redirect aggregation pathways, and reduce cellular membrane association, thereby attenuating cytotoxicity. In contrast, cationic-rich polymers promote aggregation via electrostatically driven mechanisms, while hydrophobic-dominant polymers exhibit minimal regulatory effects. Importantly, these composition-dependent behaviors are conserved across distinct amyloid systems, establishing a generalizable physicochemical framework in which the interplay between amphiphilicity and charge dictates amyloid reactivity and cellular responses. Overall, this work provides design principles for polymer-based chemical modulators and a broadly applicable strategy for controlling protein aggregation in neurodegenerative disease contexts.
    DOI:  https://doi.org/10.1039/d6sc03446b
  6. Mol Neurodegener Adv. 2026 ;2(1): 27
       Background: The accumulation of alpha-synuclein (a-Syn) as toxic oligomers, and subsequently in Lewy bodies, is a pathological hallmark of Parkinson's disease (PD) and other synucleinopathies. Molecular chaperones and cochaperones are expected to act in concert to maintain physiological activities of proteins, including a-Syn, but in neurodegeneration this process can become mal-adaptive. Transcript levels of Stress inducible phosphoprotein 1 (STIP1), a co-chaperone of Hsp90/Hsp70, are elevated in brain samples from PD patients. In synucleinopathy mouse models, STIP1 has unexpected bidirectional effects on a-Syn, with overexpression of STIP1 aggravating a-Syn toxicity, whereas knockdown of STIP1 improves toxicity and behavioural phenotypes. However, it is unclear how STIP1 enhances the toxicity of a-Syn.
    Methods: Here we investigate the direct impact of the interaction between STIP1 and a-Syn on the aggregation kinetics of a-Syn using a diverse and integrated set of techniques, including Nuclear Magnetic Resonance (NMR), molecular dynamics simulation, aggregation kinetics assays, electron microscopy, atomic force microscopy, and dynamic light scattering. The toxicity of a-Syn aggregates formed in the presence of STIP1 was assessed using yeast models and SH-SY5Y cell assays.
    Results: We unravel the mechanisms by which STIP1/HOP regulates the neurotoxicity of a-Syn. Specifically, two binding motifs in the C-terminus of a-Syn directly interact with the TPR2A domain of STIP1/HOP in a dynamic manner, competing for a shared interface on TPR2A. Binding of STIP1/HOP to a-Syn attenuates the formation of a-Syn fibrils while promoting the accumulation of high molecular weight amorphous a-Syn species. Samples of a-Syn aggregated in the presence of STIP1/HOP contain significantly more A11-positive oligomeric species and cause a greater reduction in cell viability than a-Syn aggregated in the absence of STIP1/HOP in neuronal cells.
    Conclusions: Our results provide a mechanism by which the direct interaction between STIP1/HOP and the C-terminus of a-Syn promotes the formation of cytotoxic, non-amyloidogenic, high molecular weight a-Syn species. Our model offers an explanation for the unexpected pathological link between STIP1 and a-Syn toxicity, thus opening new therapeutic avenues for the treatment of synucleinopathies. Classification: Biological Sciences - Biochemistry.
    Supplementary Information: The online version contains supplementary material available at 10.1186/s44477-026-00030-3.
    Keywords:  Alpha-synuclein; Chaperones; Hsp-organizing protein; Neurotoxicity; Protein aggregation; Protein fibril; Protein homeostasis; Protein misfolding; Stress inducible phosphoprotein 1; Synucleinopathy
    DOI:  https://doi.org/10.1186/s44477-026-00030-3
  7. Front Dement. 2026 ;5 1834737
      Tau is an intrinsically disordered microtubule-associated protein that performs diverse roles in neuronal physiology, including regulation of microtubule stability, intracellular transport, and synaptic signaling. These functions are dynamically regulated by an extensive array of post-translational modifications (PTMs) that collectively shape tau conformation, interactions, localization, and turnover. Under physiological conditions, PTMs act as a regulatory system that enables tau to transition between functional states in response to cellular cues. In neurodegenerative diseases collectively known as tauopathies, however, this finely balanced modification landscape becomes disrupted, leading to tau mislocalization, impaired clearance, and assembly into toxic oligomers and fibrillar aggregates. Although phosphorylation has historically dominated the tau field, growing evidence indicates that multiple PTMs, including acetylation, ubiquitination, truncation, oxidation, nitration, methylation, and glycosylation, cooperatively influence tau structure and pathogenic potential. Recent proteomic studies reveal that tau can harbor dozens of modifications simultaneously, highlighting the importance of understanding PTMs as an integrated regulatory network rather than independent events. Crosstalk between modifications can generate synergistic or antagonistic effects that influence tau aggregation, proteostasis, and propagation. In this review, we synthesize current knowledge of major tau PTMs and highlight emerging principles governing their interactions. We discuss how dysregulation of PTM networks contributes to tau state transitions during aging and neurodegeneration and consider how targeting PTM-regulating enzymes may provide therapeutic strategies for Alzheimer's disease and related tauopathies.
    Keywords:  Alzheimer’s disease; acetylation; phosphorylation; post-translational modification; tau; ubiquitination
    DOI:  https://doi.org/10.3389/frdem.2026.1834737
  8. ACS Chem Biol. 2026 Jun 18.
      Glycation of α-synuclein (αSyn) by methylglyoxal (MGO) has been implicated as a pathologic mechanism in Parkinson's disease. However, mechanistic understanding has been limited so far by the heterogeneity of chemically MGO-modified αSyn. We developed and applied two complementary semisynthetic strategies based on native chemical ligation for site-specific incorporation of Nε-carboxyethyllysine (CEL), a major advanced glycation endproduct formed by MGO. Using this approach, we generated a panel of 11 αSyn variants bearing CEL modifications at defined positions in the N-terminal region. Single CEL modifications did not alter the intrinsically disordered nature of αSyn, but significantly reduced membrane-induced folding upon interaction with anionic phospholipid vesicles. Aggregation analyses using dynamic light scattering, thioflavin T fluorescence, and sedimentation assays revealed stabilization of small αSyn oligomers and attenuation of fibril formation. Moreover, distinct changes in aggregate morphology were induced by specific CEL modifications. Consistent with these effects, several CEL-modified αSyn variants exhibited a site-dependent reduction in seeding capacity compared to wild-type aggregates, with K10CEL as a notable exception that retained seeding activity. In summary, our results demonstrate that single CEL modifications efficiently modulate αSyn function and aggregation. The semisynthetic platform established here enables elucidation of glycation effects on αSyn and provides a general framework for studying the effects of AGEs in synucleinopathies.
    DOI:  https://doi.org/10.1021/acschembio.6c00322
  9. Methods. 2026 Jun 15. pii: S1046-2023(26)00152-0. [Epub ahead of print]254 29-41
      Parkinson's disease (PD) is a neurodegenerative disorder characterized by alpha-synuclein (α-syn) aggregates termed Lewy bodies. To model PD pathology in vitro, preformed fibrils of α-syn (PFFs), which can be taken up by cells, provide a seed that drives misfolding and aggregation of endogenous α-syn, with new aggregates amplifying this process. External application of PFFs to dopaminergic neurons (DNs) increases aggregate formation, marked by α-syn phosphorylation at serine 129 (pS129-syn), a pathological PD marker. Building on this, we developed an automated synuclein seeding assay to quantify new α-syn aggregates in iPSC-derived DNs. Using pS129-syn as a readout, we show that PFFs elicit a time- and dose-dependent increase in pS129-syn aggregates. Our automated seeding assay further revealed that aggregate formation depends on endogenous α-syn levels. Treatment with PFFs produced a greater increase in pS129-syn aggregates in iPSC DNs derived from a PD patient with a triplication in the SNCA gene, which encodes the α-syn protein and which elevates total α-syn levels, relative to DNs from an isogenic iPSC line from the same individual, in which the SNCA gene mutation had been corrected by CRISPR/Cas9. In contrast, no pS129-syn signal was detected in neurons in which all copies of the SNCA gene had been knocked out (KO). This proof-of-principle automated high-content imaging workflow for synuclein seeding has been validated using isogenic cell lines with defined SNCA copy number variants and it offers a platform for assessing compounds and therapeutics that may impede α-syn aggregate formation.
    Keywords:  DA NPCs: dopaminergic neural progenitor cells; DNs: dopaminergic neurons; PD: Parkinson’s disease; PFFs: preformed fibrils; iPSCs: induced pluripotent stem cells; pS129-syn: phosphorylated alpha-synuclein at serine 129; α-syn: alpha-synuclein
    DOI:  https://doi.org/10.1016/j.ymeth.2026.06.005
  10. iScience. 2026 Jun 19. 29(6): 116233
      Aberrant aggregation of α-synuclein (α-syn) represents a key pathological hallmark of Parkinson's disease (PD), with oxidative stress and defective autophagy driving disease progression. In this study, the neuroprotective effects of pyran compound 7r (NP7r) were evaluated in Caenorhabditis elegans models of PD. Treatment with 10 μM NP7r significantly decreased mitochondrial reactive oxygen species levels in the NL5901 strain and alleviated 6-hydroxydopamine-induced dopaminergic neuronal degeneration in the BZ555 strain. Mechanistically, NP7r mitigated oxidative stress by upregulating skn-1 and antioxidant genes, including gst-4 and gcs-1. Furthermore, NP7r reduced α-syn aggregation by enhancing autophagy-related genes unc-51 and lgg-1, thereby promoting aggrephagy. This effect was accompanied by prominent upregulation of CCT family genes, among which cct-6 exhibited the most significant induction. Collectively, these results demonstrate that NP7r confers neuroprotection in C. elegans PD models via modulating oxidative stress and autophagy pathways, highlighting its potential as a promising lead compound for PD therapy.
    Keywords:  Genetics; Molecular biology; Neuroscience; Pharmacology
    DOI:  https://doi.org/10.1016/j.isci.2026.116233