bims-mitdis Biomed News
on Mitochondrial disorders
Issue of 2026–10–11
fifty-six papers selected by
Catalina Vasilescu, Helmholz Munich



  1. EMBO Mol Med. 2026 Oct 06.
      POLGA, the catalytic subunit of the mitochondrial DNA polymerase, is essential for mitochondrial DNA (mtDNA) replication and maintenance. Mutations in POLGA cause progressive external ophthalmoplegia (PEO), but the underlying pathogenic mechanisms remain unclear. Here, we show that the mitochondrial E3 ligase MITOL hyperubiquitylates PEO-associated POLGA mutants at lysine 1060, triggering conformational changes and formation of insoluble aggregates that impair their mitochondrial import and consequently compromise mtDNA replication and mitochondrial homeostasis. To identify compounds that disrupt POLGA aggregates and restore mutant POLGA function, we screened an FDA/EMA/PMDA-approved drug library using a split-GFP system. We identified two clinically approved compounds, diltiazem hydrochloride (C1) and sulbactam (C4), that disrupted POLGA aggregates, prevented aberrant MITOL recognition, restored mitochondrial import, and rescued mtDNA replication and mitochondrial function. Importantly, treatment with either compound significantly improved motor performance in a knock-in mouse model carrying the disease-relevant A467T-equivalent POLGA mutation. These findings establish pathogenic aggregation as a previously underrecognized disease mechanism and demonstrate that disrupting POLGA aggregates with repurposed drugs can restore mitochondrial function in vivo, providing a potential therapeutic strategy for POLGA-associated mitochondrial disease.
    DOI:  https://doi.org/10.1038/s44321-026-00532-3
  2. EMBO Mol Med. 2026 Oct 05.
      Despite major advances in the genetic diagnosis of mitochondrial disorders, effective disease-modifying therapies remain scarce. Here, we identify ebselen (EBS) as a promising therapeutic candidate through a phenotypic drug screen in a yeast model of Barth syndrome, a cardiomyopathy caused by defective cardiolipin maturation. EBS improved oxidative phosphorylation-dependent growth across diverse fungal models of mitochondrial diseases, including defects in complex I, complex IV, mitochondrial DNA maintenance, mitochondrial translation, and ATP synthase. Therapeutic efficacy was further validated in patient-derived fibroblasts, iPSC-derived cardiomyocytes, and a cardiolipin-deficient mouse model. Mechanistically, EBS acts independently of its established antioxidant activity by engaging a conserved metabolic program that suppresses cytosolic translation while stimulating pyruvate dehydrogenase-dependent tricarboxylic acid cycle activity, thereby improving proteostasis and mitochondrial bioenergetic function. These effects are likely coordinated through lysosome-associated mTOR signaling, consistent with the localization of EBS to lysosomes and its colocalization with mTOR. Together, our findings identify a conserved mechanism for enhancing mitochondrial function and establish ebselen as a strong candidate for therapeutic repurposing in Barth syndrome and a broad spectrum of inherited mitochondrial disorders.
    DOI:  https://doi.org/10.1038/s44321-026-00518-1
  3. Proc Natl Acad Sci U S A. 2026 Oct 13. 123(41): e2617216123
      Epithelial tissues undergo dynamic transitions between fluid-like collective motion and mechanically jammed states during development, injury repair, and disease progression. However, the cellular programs that drive these transitions and regulate collective behavior remain unclear. Using a controlled crowding model integrated with live-cell imaging and time-resolved multiomics, we demonstrate that epithelial crowding triggers early metabolic changes characterized by increased mitochondrial pyruvate anaplerosis that precedes the jamming transition. Restricting mitochondrial pyruvate import increased collective cell motility and delayed jamming in crowded monolayers. This unjammed state is driven by enhanced cytoskeletal remodeling and requires RhoA-myosin II activity. Mechanistically, we show that elevated cytoskeletal signaling promotes macropinocytic uptake, which serves as a required feedback loop to maintain motility. These findings identify mitochondrial pyruvate utilization as an important regulatory input linking metabolic remodeling to the endocytic control of epithelial fluidity.
    Keywords:  collective cell migration; epithelial jamming transition; mechanobiology
    DOI:  https://doi.org/10.1073/pnas.2617216123
  4. BMB Rep. 2026 Oct 07. pii: 6949. [Epub ahead of print]
      Mitochondria are essential organelles that support cellular energy metabolism and contribute broadly to tissue homeostasis, stress responses, and disease pathophysiology. As the mitochondrial genome encodes core components of oxidative phosphorylation, genetic alterations in mitochondrial DNA (mtDNA) can profoundly affect cellular and tissue function. Nevertheless, compared with the nuclear genome, mtDNA remains difficult to interrogate and manipulate because of longstanding technical barriers to mitochondrial genome engineering. Consequently, many fundamental questions surrounding mtDNA biology remain unresolved, including the mechanisms governing heteroplasmy, mutationspecific disease phenotypes, tissue-dependent pathogenic thresholds, and long-term mtDNA population dynamics. These limitations are particularly evident in mitochondrial genetic diseases, which can cause severe neurological, muscular, cardiac, and visual phenotypes but for which only a limited number of genetically defined disease models are available. Recent advances in mitochondrial genome editing are beginning to overcome these barriers. In this review, we organize the field according to therapeutic strategy, from selective depletion of mutant genomes to direct base correction and emerging precision-editing architectures. Mitochondria-targeted zinc-finger nucleases, mitoTALENs, and mitoARCUS can selectively eliminate mutant mtDNA and shift heteroplasmy toward wild-type genomes, whereas DddAderived cytosine base editors, TALE-linked deaminases, strandselective mitochondrial base editors, and their engineered derivatives enable direct C·G-to-T·A or A·T-to-G·C conversion without programmed double-strand breaks. We evaluate these platforms in relation to mutation class, heteroplasmy level, sequence context, bystander and off-target editing, target tissue, delivery format, durability, and functional rescue. Beyond therapeutic correction, mitochondrial genome editors are opening new opportunities for disease modeling by enabling defined pathogenic variants to be introduced into cells, organoids, and animal models. Validated applications include human cell and organoid systems and genetically defined mouse rat models. Extension to larger animals and nonhuman primates remains a future direction for the disease-modeling framework discussed here. Clinical translation, however, remains constrained by cargo size, co-delivery requirements, unintended nuclear exposure, long-term mtDNA dynamics, and the need for efficient and tissue-specific delivery to clinically relevant organs and cell types. Finally, we propose a framework linking genotype, heteroplasmy, and tissue context to editor selection, with the goal of moving the field from measurements of editing efficiency toward mechanistic understanding and therapeutic relevance.
  5. Adv Sci (Weinh). 2026 Oct 06. e78137
      Mitochondrial transfer and transplantation (mitoTT) has emerged as an experimental and potentially transformative therapeutic strategy, drawing attention for its ability to modulate cellular bioenergetics, stress responses, and tissue repair. Endogenous mitochondrial transfer can occur through tunneling nanotubes, extracellular vesicles, cell fusion, gap junction-associated communication, and phagocytosis-like internalization. These routes differ substantially in distance, directionality, cargo integrity, regulatory control, and physiological relevance. Preclinical studies indicate that exogenous mitochondria may transiently improve bioenergetic function, attenuate oxidative stress, and support recovery in models of cardiac, skeletal muscle, and nervous system injury, whereas clinical evidence remains limited and heterogeneous. Broad clinical implementation remains constrained by unresolved biological and translational barriers. These include inefficient or poorly controlled uptake of extracellular mitochondria, uncertain long-term persistence, incomplete functional integration, donor-recipient incompatibility, mitochondrial-nuclear mismatch, heteroplasmy-related risks, immunogenicity, and the lack of standardized potency and delivery assays. Here, we critically synthesize the cellular mechanisms enabling mitoTT, emphasizing the checkpoints that determine whether transferred mitochondria are integrated, remodeled, immunologically sensed, or eliminated. We further discuss cristae biology and the mitochondrial contact site and cristae organizing system, mitochondrial nucleoid maintenance, mitochondrial DNA replication, organelle contact sites, and emerging bioengineering strategies required to move mitoTT from experimental rescue toward reproducible therapeutic application.
    Keywords:  cell metabolism; inter‐organelle contact sites; mitoTT; mitochondria; mitochondrial DNA; mitochondrial transfer; mitochondrial transplantation
    DOI:  https://doi.org/10.1002/advs.78137
  6. Front Immunol. 2026 ;17 1935135
      Leber hereditary optic neuropathy (LHON) is a mitochondrial disease caused primarily by pathogenic mitochondrial DNA (mtDNA) variants that impair respiratory chain complex I function. Although bioenergetic failure, oxidative stress, and retinal ganglion cell degeneration are central features of disease pathogenesis, these mechanisms do not fully explain the incomplete penetrance, male predominance, and marked clinical heterogeneity observed in LHON. Emerging evidence suggests that mitochondrial dysfunction can also trigger sterile inflammatory responses through the release of mitochondrial damage-associated molecular patterns (DAMPs), including mtDNA and reactive oxygen species, and through impaired mitophagic clearance. These signals activate innate immune pathways, including cGAS-STING, TLR9, and the NLRP3 inflammasome, potentially contributing to neuroinflammation, glial activation, and secondary neuronal injury. The relevance of immune signaling has gained further attention with the development of AAV-based gene therapies for LHON, where treatment-associated ocular inflammation has emerged as a clinically important challenge. In this review, we examine the evidence linking mitochondrial dysfunction to innate immune activation in LHON, discuss the immunological mechanisms underlying disease progression and gene therapy-associated inflammation, and highlight emerging opportunities for biomarker development, immunomodulatory intervention, and improved therapeutic design. We propose that LHON should be viewed not only as a disorder of mitochondrial bioenergetics but also as a neuroinflammatory disease shaped by the interplay between mitochondrial stress and immune signaling.
    Keywords:  Leber hereditary optic neuropathy; adeno-associated virus; gene therapy; innate immunity; mitochondrial DNA; mitochondrial stress; sterile inflammation
    DOI:  https://doi.org/10.3389/fimmu.2026.1935135
  7. BMC Genomics. 2026 Oct 08. pii: 831. [Epub ahead of print]27(1):
       BACKGROUND: Low-frequency heteroplasmic mitochondrial DNA (mtDNA) variants are associated with aging and neurological diseases, including Parkinson's disease (PD). Targeted deep mtDNA sequencing using PacBio HiFi long reads has the potential to resolve heteroplasmy across the full mitochondrial genome with high accuracy.
    METHODS: To validate Vega PacBio sequencing for detecting mtDNA heteroplasmy, we analyzed four predefined mixtures of two mtDNA haplotypes. We generated a single long-range PCR amplicon covering the entire mitochondrial genome. These amplicons were mixed at predefined ratios (minor mixture haplotype component: 5%, 2%, 1%, and 0.1%). Variant calling was performed using Mutserve2, and accuracy was assessed by calculating the F1 score from comparisons between expected and detected variants. Full-length mtDNA PacBio sequencing was applied to explore heteroplasmy across fibroblast passages derived from five LRRK2 p.Gly2019Ser variant carriers (n = 3 affected with PD and n = 2 unaffected carriers). Changes in mtDNA heteroplasmy level and variant load were assessed longitudinally using a linear mixed model as a proof-of-principle.
    RESULTS: The single-amplicon approach enabled full-length haplotype resolution without amplification bias associated with overlapping PCR strategies. The F1 score of the predefined mixtures was 1.0 for heteroplasmy levels between 5% and 1% and remained high (0.91) at 0.1%. At the specifically lowered calling threshold applied to the 0.1% mixture, n = 10/62 additional variants discordant with the Illumina reference were observed, but sensitivity remained very high at 1.00 in that mixture. Detected minor variants closely matched expected heteroplasmy levels, with average variant levels of 0.057 (5%), 0.022 (2%), 0.011 (1%), and 0.001 (0.1%). Across twelve fibroblast passages, we observed fewer mtDNA heteroplasmic variants. In this small proof-of-principle experiment, heteroplasmic variant load was higher in affected (n = 3) than in unaffected (n = 2) LRRK2 variant carriers and with older age. Notably, we observed distinct patterns of heteroplasmic variants that either increased or decreased in heteroplasmy level across passages.
    CONCLUSION: PacBio HiFi sequencing, combined with a single-amplicon strategy, enables accurate full-length mtDNA heteroplasmy detection and longitudinal analysis, providing a valuable tool for studying mitochondrial variation and dynamics in disease.
    Keywords:  Benchmarking; Heteroplasmy; LRRK2; Long-read; Low-frequency variant; Mixtures; PacBio sequencing; Parkinson''s disease; mtDNA
    DOI:  https://doi.org/10.1186/s12864-026-13426-y
  8. bioRxiv. 2026 Aug 11. pii: 2026.08.10.743968. [Epub ahead of print]
      Mitochondria are cellular energy hubs best known for ATP production via oxidative phosphorylation; however, they also serve as biosynthetic centers for phospholipids. Mitochondrial phospholipids are critical for various cellular processes, and their loss underlies myriad mitochondrial diseases. The critical enzymes underlying these biosynthetic cascades are encoded in the nucleus, translated in the cytosol, and imported into mitochondria. Understanding of mechanisms and factors that ensure precise targeting of proteins to mitochondria has been long overlooked but remains critical. Recently, the J-protein/Hsp40 cochaperone Djp1 has emerged as a key player in mitochondrial protein targeting by promoting the transfer of precursors from the endoplasmic reticulum (ER) surface to mitochondria in a pathway termed ER-SURF. Molecular details regarding how Djp1 recognizes clients and more broadly supports mitochondrial function remain unknown. Using biochemical approaches, proteomics, and thin layer chromatography, we demonstrate that Djp1 is a regulator of Phosphatidylserine decarboxylase 1 (Psd1), an inner mitochondrial membrane resident responsible for mitochondrial phosphatidylethanolamine (PE) production. This regulation of Psd1 biogenesis is dependent on its mitochondrial targeting signal and is specific to Djp1 compared to other members of the Hsp40 family or ER targeting factors. Intriguingly, the combined loss of Djp1 and Psd1 results in a synthetic sick phenotype that unexpectedly reflects a role(s) for Djp1 in proper mitochondrial phospholipid metabolism independent of Psd1. Taken together, these findings expand our understanding of Djp1-dependent mitochondrial protein regulation and unveil Djp1 as important for mitochondrial phospholipid metabolism by multiple mechanisms.
    DOI:  https://doi.org/10.64898/2026.08.10.743968
  9. Brain. 2026 Oct 07. pii: awag348. [Epub ahead of print]
      In Parkinson's disease, cholinergic neurons of the pedunculopontine nucleus, located in the upper pons, undergo extensive degeneration, contributing to severe hypokinetic-motor and non-motor symptoms. We previously demonstrated that loss of these neurons is associated with mitochondrial dysfunction, driven by high mitochondrial DNA deletion burden. Increased mitochondrial DNA replication was also observed in these neurons, contrasting with reduced mitochondrial DNA copy number previously reported in Parkinson's-affected surviving nigral-dopaminergic neurons. Here, ultra-deep whole-genome sequencing combined with stringent quality control was used to characterise mitochondrial DNA alterations within single-cell pedunculopontine-cholinergic neurons isolated from Parkinson's-affected and neurologically-normal post-mortem specimens. Analyses included mitochondrial DNA deletion spectrum, -size distribution, genomic location, heteroplasmy levels, breakpoint classification, and point-mutation frequency. Thermodynamic modelling was used to investigate whether the stability of mitochondrial DNA secondary structures surrounding deletion breakpoints could provide insight into the mechanisms underlying mitochondrial DNA deletion formation in Parkinson's disease. In parallel, nuclear-encoded mitochondrial pathway responses were assessed using a customised single-cell multiplexed multi-target gene expression assay, comparing Parkinson's and control post-mortem neurons. Parkinson's-affected neurons exhibited substantial mitochondrial DNA damage, characterised by large-scale mitochondrial DNA deletions predominantly locating within mitochondrial DNA's major arc. Mitochondrial DNA deletions ranged ∼50-5,500 base-pairs, with most exceeding 1,000 base-pairs. Clonal expansion of large-scale mitochondrial DNA deletions, likely arising from replication-associated errors, represented the dominant mutant species. Small mitochondrial DNA deletions (<50bp) were rare, suggesting that free radical-induced strand breakage was not the primary driver of somatic mitochondrial DNA damage. Point-mutation frequency was similar between Parkinson's and control neurons but showed greater functional impact on electron transport chain complex-I subunits in Parkinsonian neurons. Thermodynamic modelling revealed reduced stability of mitochondrial DNA secondary structures flanking mitochondrial DNA deletion breakpoints in Parkinsonian post-mortem neurons, with an average decrease of ∼2 kJ/mol across two major mitochondrial DNA deletions formation models. The increased mitochondrial DNA damage was accompanied by marked upregulation of the nuclear-encoded mitophagy regulator PINK1, specifically in PD patients with extended survival, suggesting activation of a compensatory cytoprotective response. Together, these findings provide comprehensive single-cell resolution profiling of mitochondrial genomic alterations in pedunculopontine-cholinergic neurons in Parkinson's, displaying extensive mitochondrial DNA structural disruption dominated by large-scale mitochondrial DNA deletions. Our results further suggest that upregulation of mitophagy-related pathways may represent an adaptive mechanism to mitigate progressive mitochondrial genomic instability and preserve neuronal energy homeostasis.
    Keywords:  Parkinson’s disease; brainstem; cholinergic neurons; mitochondrial DNA; mitophagy; pedunculopontine nucleus
    DOI:  https://doi.org/10.1093/brain/awag348
  10. bioRxiv. 2026 Aug 12. pii: 2026.08.10.743872. [Epub ahead of print]
      Successful oogenesis requires the precise coordination of nutrient uptake, storage, and utilization to meet the high metabolic demands of egg production. In mammals, fatty acid (FA) metabolism has emerged as a key driver of oocyte maturation; however, the mechanisms by which follicles regulate FA trafficking and utilization remain poorly understood across all systems. To address these issues, we leverage the genetic tractability of Drosophila melanogaster oogenesis. We found that nurse cell mitochondria are metabolically active and catabolize FA in a stage-dependent manner, with fatty acid oxidation (FAO) peaking during mid-oogenesis. By exposing explanted follicles to fluorescently labeled FAs, we monitored FA trafficking and found massive enrichment in lipid droplets. Mutants for the triglyceride lipase ATGL exhibited a reduction in both mitochondrial membrane potential and FAO, suggesting that mitochondria utilize FA from triglycerides stored in LDs. To determine the significance of this transient FA storage in LDs, we prevented the formation of nurse cell LDs with mutations in the triglyceride synthase DGAT1. The DGAT1 mutant follicles display excess accumulation of FAs in mitochondria, mitochondrial stress, and developmental arrest. We find that this mitochondrial dysfunction and follicle arrest are consequences of FA toxicity to mitochondria: limiting FA influx into follicles or FA import into mitochondria alleviates these defects. Our findings demonstrate that LD-derived FAs are actively mobilized to fuel the energy demands of oogenesis while LDs buffer against lipotoxicity, revealing a critical balance between FA storage and oxidation. These findings highlight LDs as central hubs regulating energy homeostasis and developmental progression in the follicle.
    Author Summary: Oogenesis places extraordinary metabolic demands on the follicle, yet the energy source for follicle development is not well understood. In fruit flies, follicles take in large amounts of lipids from the hemolymph, the insect blood, and accumulate massive fat stores in the form of lipid droplets. Whether these stores are reserved for the embryo or already power oogenesis was unclear. Using mutants and fluorescent probes for metabolic activity, we found that some fatty acids are released from the lipid droplets and power energy production in mitochondria; this energy source is important for successful oogenesis. We then fed flies fluorescently labeled fatty acids and determined how these fatty acids travel when lipid droplet formation can occur versus when it is abolished. In the former case, fatty acids accumulate in lipid droplets; in the latter, they flood into mitochondria, causing mitochondrial dysfunction, reduced ATP levels, and follicle death. We can correct all these defects by limiting lipid influx specifically into mitochondria. Our findings reveal an important role for lipid droplets during oogenesis. They act as a metabolic buffer, supplying sufficient amounts of fatty acids to mitochondria for energy production while shielding the mitochondria from toxic lipid levels.
    DOI:  https://doi.org/10.64898/2026.08.10.743872
  11. Science. 2026 Oct 08. 394(6820): eadx9628
      Mitochondria are dynamic organelles that remodel their shape to regulate cell fate. Mitochondrial division involves interactions with the endoplasmic reticulum (ER), lysosomes, and trans-Golgi network-derived vesicles to facilitate membrane scission. How interorganelle contacts regulate mitochondrial membrane fusion remains largely unknown. Here, we identified a role for Golgi-derived vesicles enriched in phosphatidylinositol 3,4-bisphosphate [PI(3,4)P2] in regulating mitochondrial fusion. We found that these vesicles were recruited to ER- and mitofusin-marked fusion sites. Accordingly, loss of class II PI3-kinase isoforms α and β (PI3K-C2α and PI3K-C2β), which generate PI(3,4)P2, led to mitochondrial fragmentation resulting from impaired fusion. Furthermore, cardiomyocyte-specific PI3K-C2α and PI3K-C2β double-deletion mice exhibited mitochondrial fragmentation and heart failure. Thus, subpopulations of Golgi-derived vesicles carrying different phosphoinositides control mitochondrial membrane remodeling and homeostasis.
    DOI:  https://doi.org/10.1126/science.adx9628
  12. bioRxiv. 2026 Aug 13. pii: 2026.08.12.744280. [Epub ahead of print]
      Mutations in mitochondrial DNA (mtDNA) compromise ETC activity and impair oxidative phosphorylation. Since eukaryotic cells contain multiple copies of mtDNA, the resulting phenotype depends on the proportion of mutant mitochondrial genomes (the heteroplasmy level). Using isogenic cell lines carrying similar mtDNA deletions, a linear decline in cellular respiration was observed as mitochondrial DNA heteroplasmy increased. Despite this, cellular redox imbalance did not change until heteroplasmy exceeded 50%. As heteroplasmy increased past 70%, cells also exhibited an integrated stress response (ISR) and impaired translation was observed. These defects were reversed by either addition of asparagine or overexpression of pyruvate carboxylase (PC). The dependence on exogenous asparagine in other respiration-deficient cells was found to correlate inversely with the PC expression level. For example, patient-derived thyroid tumor cells, harboring high heteroplasmy for a Complex I mtDNA mutation and low levels of PC, exhibited asparagine auxotrophy, and L-asparaginase treatment suppressed tumor growth. Together, these findings demonstrate a role for mitochondrial pyruvate carboxylase in cellular asparagine synthesis under conditions of compromised respiratory activity.
    DOI:  https://doi.org/10.64898/2026.08.12.744280
  13. Geroscience. 2026 Oct 09.
      Ageing is characterized by a progressive decline in mitochondrial integrity that extends beyond impaired energy production to include redox imbalance, defective quality control, altered organelle dynamics, and persistent inflammatory signalling. This review examines mitochondrial dysfunction as a mechanistic bridge linking bioenergetic failure to cellular senescence and inflammaging, two central features of biological ageing. We discuss how impaired oxidative phosphorylation, loss of mitochondrial membrane potential, increased electron leak, and excessive reactive oxygen species progressively damage mitochondrial DNA, proteins, and lipids, thereby amplifying organelle dysfunction and compromising cellular homeostasis. Particular emphasis is placed on the threshold effect of mitochondrial DNA mutations, whose age-dependent clonal expansion can drive respiratory chain deficiency in vulnerable tissues. We further analyze mitochondria as signalling platforms that integrate regulated cell death, including apoptosis, necroptosis, pyroptosis, and ferroptosis, and as sources of mitochondrial damage-associated molecular patterns promoting sterile inflammation. Finally, we highlight mitochondrial dysfunction-associated senescence as a central process through which persistent mitochondrial stress reshapes the senescence-associated secretory phenotype and reinforces inflammaging. Overall, the evidence supports a model in which dysfunctional mitochondria act as both initiators and amplifiers of senescence and inflammation, contributing to tissue degeneration and age-related functional decline. Understanding these interconnected mechanisms may help identify therapeutic strategies targeting mitochondrial bioenergetics, inflammatory signalling, and senescent cell burden in ageing.
    Keywords:  Ageing; Cell death; DAMPs; Inflammation; Mitochondria
    DOI:  https://doi.org/10.1007/s11357-026-02588-y
  14. Circ Res. 2026 Oct 09. 139(9): e329604
      
    Keywords:  Editorials; cardiomyopathies; hypertrophy; metabolism; mitochondria; sarcomeres
    DOI:  https://doi.org/10.1161/CIRCRESAHA.126.329604
  15. Proc Natl Acad Sci U S A. 2026 Oct 13. 123(41): e2618654123
      A growing body of preclinical research is demonstrating the therapeutic potential of chronic, continuous hypoxia (11% FIO2) for rare and common diseases. However, the chronic delivery of hypoxic gas poses both practical challenges and long-term safety concerns. We previously introduced a small-molecule, "hypoxia-in-a-pill" combining a hemoglobin affinity enhancer (GBT440) to limit oxygen delivery with a HIF-2α inhibitor (PT2399) to prevent detrimental compensatory erythropoiesis. Although this small-molecule regimen extended the lifespan of the Ndufs4 knockout (KO) mouse model of mitochondrial complex I deficiency and Leigh syndrome, its efficacy did not match chronic 11% FIO2. Here we optimize this regimen using GBT601, a second-generation hemoglobin affinity enhancer with longer half-life and greater hemoglobin occupancy, and show it rescues key neurodegenerative phenotypes in multiple models. When we initiate therapy in 50 d old Ndufs4 KO mice with advanced disease, GBT601 monotherapy alleviated neurological disease phenotypes and extended median lifespan from 62 to 105 d, while dual therapy with the GBT601/PT2399 combination extended median lifespan to 158 d. When initiated after onset of advanced disease in a mouse model of Friedreich's ataxia, the combination halted further progression of motor phenotypes. In a mouse model of Parkinson's disease due to α-synuclein toxicity, initiating the GBT601/PT2399 combination after onset of motor dysfunction attenuates brain hyperoxia and lipid peroxidation and reverses motor phenotypes. Importantly, the combination maintained body weight without inducing any signs of pulmonary hypertension. Our findings motivate further preclinical and clinical evaluation of our "hypoxia in a pill" approach for diseases with high unmet need.
    Keywords:  HIF-2α; hemoglobin; hyperoxia; hypoxia; neurodegeneration
    DOI:  https://doi.org/10.1073/pnas.2618654123
  16. J Inherit Metab Dis. 2026 Nov;49(6): e70257
      Pyruvate dehydrogenase complex (PDHc) deficiency (PDCD) is a primary mitochondrial disorder characterized by neurodevelopmental disability, altered intermediary metabolism, and early mortality. Dichloroacetate (DCA), a pyruvate analog, activates PDHc and remains under clinical investigation for treatment of PDCD. Here, we studied the in vivo efficacy of a five-point log concentration range of DCA on animal health and metabolism in C. elegans with feeding RNA interference (RNAi) expression knockdown of either PDHA-1 or DLD-1 homologs at graded degrees to model variable disease severity. These worm models recapitulate phenotypic features of PDCD observed in human patients, including reduced survival, delayed growth, locomotor impairment, and elevated lactate and/or pyruvate tissue levels. DCA treatment appeared well-tolerated, with no gross morphologic toxicity seen at doses up to 25 mM. Significantly improved health, survival, tissue lactate levels, and mitochondrial physiology were observed at 25 mM in pdha-1(RNAi) knockdown animals. DCA treatment in dld-1(RNAi) C. elegans models (undiluted, 1:20 dilution, and 1:100 dilution) significantly improved survival, neuromuscular function, and metabolic phenotypes primarily in the moderate (1:20) and/or mild (1:100) dld-1(RNAi) deficiency strains, but not in full-dose dld-1(RNAi). Importantly, linear growth, neuromuscular activity, and mitochondrial physiology were significantly improved with DCA treatment even in the most severe dld-1(RNAi) undiluted model. Overall, preclinical modeling provides objective evidence of DCA therapeutic efficacy in C. elegans knockdown strains for two well-conserved homologs of PDHA1 and DLD representing distinct genetic etiologies of PDCD, with demonstrated beneficial effects on survival, healthspan, tissue lactate, and mitochondrial physiology. These data further confirm that DCA's therapeutic effect correlates with PDHc disease phenotype severity in dld-1(RNAi) animals.
    Keywords:   DLD ; PDHA1 ; RNA interference; dichloroacetate (DCA); growth; mitochondria; neuromuscular activity; pyruvate dehydrogenase complex
    DOI:  https://doi.org/10.1002/jimd.70257
  17. Neurol Neurochir Pol. 2026 Oct 05.
       AIM OF THE STUDY: To evaluate the contribution of mitochondrial DNA (mtDNA) variation and four POLG mutations to disease susceptibility and course in Polish patients with relapsing-remitting multiple sclerosis (RRMS).
    CLINICAL RATIONALE FOR THE STUDY: Mitochondrial dysfunction is increasingly implicated in the pathogenesis of multiple sclerosis (MS), yet its precise role remains unclear. Determining the impact of mtDNA variation and POLG mutations may improve understanding of factors influencing disease onset and progression.
    MATERIAL AND METHODS: Whole mtDNA was sequenced in 100 RRMS patients using next-generation sequencing and compared with previously generated mtDNA data from 212 Polish individuals without MS. The presence of pathogenic variants, distribution of haplogroups, rare variants, and heteroplasmy were assessed. Absolute mtDNA copy number was measured by real-time PCR. Additionally, RRMS patients were screened for four common POLG mutations (p.Gly268Ala, p.Ala467Thr, p.Pro587Leu, and p.Trp748Ser).
    RESULTS: No pathogenic mtDNA variants or any of the four screened POLG variants were detected. No significant associations were found between major mtDNA haplogroups, copy number, heteroplasmy, or rare variants and MS risk or progression. Exploratory analyses identified nominal associations between several mtDNA variants and relapse occurrence, disability level, age at symptom onset, and sex in the RRMS cohort.
    CONCLUSIONS AND CLINICAL IMPLICATIONS: Pathogenic mtDNA variants, major haplogroups, mtDNA copy number, rare variant burden, and the four screened POLG variants do not appear to play a major role in RRMS susceptibility or clinical course in the analyzed cohort. Several associations involving individual mtDNA variants were identified, but these findings are exploratory and require independent replication in larger cohorts before their biological or clinical relevance can be established.
    Keywords:  EDSS; POLG gene; genetic variation; mitochondrial DNA; mitochondrial disorders; multiple sclerosis; relapses
    DOI:  https://doi.org/10.5603/pjnns.113007
  18. Postepy Biochem. 2026 10 06. 72(3): 187-200
      Mitochondrial calcium homeostasis is an important regulator of bioenergetics, redox balance and cell survival. This review discusses the structure, regulation and pathophysiological significance of the mitochondrial Na⁺/Ca²⁺ exchanger NCLX, encoded by the SLC8B1 gene. Particular attention is paid to the role of NCLX in Ca²⁺ efflux from the mitochondrial matrix, integration of Na⁺–Ca²⁺–ROS signaling, and cellular responses to metabolic stress, hypoxia and mitochondrial injury. The available data indicate that NCLX dysfunction contributes to the pathophysiology of neurodegenerative, cardiovascular, metabolic, inflammatory and neoplastic diseases. However, the function of this transporter strongly depends on cell type, duration of stress and the degree of mitochondrial Ca²⁺ overload. Therefore, NCLX should be considered a regulator of mitochondrial function whose diagnostic, prognostic and therapeutic relevance requires further validation in experimental and clinical studies.
    DOI:  https://doi.org/10.18388/kyvc2c25
  19. bioRxiv. 2026 Aug 10. pii: 2026.07.29.741503. [Epub ahead of print]
      Several Parkinson's Disease (PD) linked mutations are known to drive deficits in a pathway that relies on an adequate supply of guanosine nucleotide triphosphate (GTP) to drive cellular neuronal processes. Similarly, there is strong evidence that a deficit in bioenergetic support for neuron function is also a major genetic driver of PD. We show here that the reliance on these two purine-based metabolites intersect at another PD susceptibility gene that encodes nucleoside diphosphate kinase (NDK) which converts ATP into GTP. We show that overexpression of NDK is strongly protective both in-vivo and in-vitro to metabolic lesions and identify mutations in NDK in humans associated both with increased risk and protection from PD. We discovered that NDK lies at the intersection of proper ATP production, de novo synthesis of guanosine diphosphate and the activity of GTP cyclohydrolase I, a consumptive pathway needed to produce the bioactive metabolite tetrahydrobiopterin (BH 4 ) required for mitochondrial function. Loss of NDK and impairment in guanosine nucleotide synthesis exacerbate synaptic dysfunction, while boosting the GTP consuming pathway promotes bioenergetics. Additionally, analysis of genetic data taken from over 64,000 PD affected individuals and 38,000 controls from diverse ancestries reveal that several genes lying at the intersection of guanosine nucleotide metabolism and bioenergetics pose a significant risk burden for PD.
    DOI:  https://doi.org/10.64898/2026.07.29.741503
  20. Sultan Qaboos Univ Med J. 2026 ;26(1): 522-528
      NAXE encephalopathy, also known as early-onset progressive encephalopathy with brain oedema and/or leukoencephalopathy-1 (PEBEL-1), is a rare and often lethal autosomal recessive mitochondrial disorder. Typical presentation includes psychomotor regression, ataxia, respiratory insufficiency and seizures triggered by febrile illness. This report describes three siblings from a consanguineous family who presented to a tertiary care hospital in Muscat, Oman, in 2022 and were found to have a homozygous pathogenic variant in the NAXE: NM_144772.2:c.827del, p.(Pro276Hisfs*43). Beyond the classic neuroradiological and clinical features of PEBEL-1, these patients exhibited novel phenotypic manifestations, including axonal polyneuropathy, Bull's eye maculopathy and a late-onset presentation of skin lesions. The identification of these features expands the known clinical spectrum of NAXE mutations and highlights the importance of considering this diagnosis in patients presenting with unexplained multisystemic mitochondrial symptoms involving the peripheral nerves and retina.
    Keywords:  Macular Degeneration; Mitochondrial Diseases; NAXE; Niacin; Oman; Polyneuropathies
    DOI:  https://doi.org/10.18295/2075-0528.3012
  21. Mol Genet Metab. 2026 Sep 26. pii: S1096-7192(26)00561-5. [Epub ahead of print]149(3): 110278
       INTRODUCTION: Primary mitochondrial diseases (PMtD) are increasingly recognized to involve clinically meaningful immune dysregulation in addition to bioenergetic failure. Hyperinflammatory syndromes, including secondary hemophagocytic lymphohistiocytosis (HLH) and related cytokine-mediated inflammatory states, remain underrecognized complications of PMtD, and the mechanisms linking mitochondrial dysfunction to pathologic inflammation are incompletely understood.
    METHODS: We report three individuals with genetically confirmed PMtD evaluated at three academic medical centers who developed severe hyperinflammatory syndromes. Clinical, laboratory, treatment, and outcome data were retrospectively abstracted from the medical record using a standardized framework. We also performed a focused narrative review of the literature on hyperinflammation in mitochondrial disease.
    RESULTS: Individual 1 had pyruvate dehydrogenase complex deficiency (PDCD), due to a PDHA1 variant and developed infection-associated HLH at age 9 years, with ferritin 17,203 ng/mL and bone marrow hemophagocytosis. He met 6 of 8 HLH-2004 criteria and had an HScore of 303 (>99% probability of HLH). He survived the index episode with corticosteroid-based therapy but experienced recurrent inflammatory decompensations and later died. Individual 2 had POLG-related mitochondrial disease and developed HLH at age 8 years during presumed viral-triggered neurologic deterioration in the setting of pre-existing hepatic vulnerability. He met 6 of 8 HLH-2004 criteria, had an HScore of 233 (>98% probability of HLH), and showed an initial biomarker response to emapalumab, but ultimately died of multiorgan failure. Individual 3 had MELAS (mitochondrial encephalomyopathy, lactic acidosis, and stroke-like episodes; due to an m.3243 A>G variant in MT-TL1 and developed a sterile interferon (IFN)-driven hyperinflammatory syndrome during a stroke-like episode (SLE), with markedly elevated serum soluble interleukin (IL)-2 receptor (sIL-2R), IL-6, IL-10, C-X-C motif chemokine ligand 9 (CXCL9), and cerebrospinal fluid (CSF) neopterin, without meeting full HLH-2004 criteria (fulfilling only 2/8 criteria). He had minimal response to intravenous immunoglobulin (IVIg) but showed sustained clinical and biomarker improvement with anakinra and is alive, age 15 years at the time of this publication.
    CONCLUSIONS: PMtD may be associated with a predisposition to a spectrum of hyperinflammatory syndromes ranging from classic secondary HLH to noncanonical sterile cytokine-mediated inflammation that falls below formal HLH thresholds. These complications may reflect mitochondrial danger signaling, inflammasome activation, engagement of the IFN pathway, and defective immunometabolic regulation. Early recognition and targeted immunomodulatory therapy may be critical to improving outcomes.
    Keywords:  Anakinra; Hemophagocytic lymphohistiocytosis; Hyperinflammation; MELAS; MT-TL1; Mitochondrial disease; PDHA1; POLG; Sterile interferon-driven hyperinflammation; cGAS-STING
    DOI:  https://doi.org/10.1016/j.ymgme.2026.110278
  22. Biochim Biophys Acta Bioenerg. 2026 Oct 05. pii: S0005-2728(26)00035-6. [Epub ahead of print]1868(1): 149615
      In Saccharomyces cerevisiae, cytosolic NADH generated during biomass production must be efficiently reoxidized to sustain metabolic flux. Under aerobic conditions, this process is primarily mediated by the oxidative phosphorylation and specifically via external NADH dehydrogenases (Nde1p/Nde2p) and the glycerol-3-phosphate (G3P) shuttle. Although these pathways perform equivalent redox functions, their relative contributions vary with physiological conditions, indicating the existence of regulatory mechanisms governing electron partitioning. Here, we combined experimental measurements and kinetic modeling to investigate the mechanisms underlying electron competition between NADH and G3P oxidation in isolated yeast mitochondria. Using wild-type and Δnde1 strains, we determined the kinetic parameters of the relevant dehydrogenases and analyzed their dependence on the quinone redox state. A mathematical model incorporating these parameters reproduced the experimentally observed preferential utilization of NADH in wild-type mitochondria as well as the simultaneous oxidation of NADH and G3P in the Δnde1 mutant. Our results demonstrate that, under conditions where the downstream respiratory chain is rate-limiting, electron partitioning is governed by the ratio of catalytic efficiencies (Vmax/K0.5) of NADH and G3P dehydrogenases with respect to the quinone redox ratio (Q/QH₂). These findings identify a simple kinetic principle underlying substrate competition in mitochondrial electron transport and provide a quantitative framework for understanding metabolic flux distribution in eukaryotic cells.
    Keywords:  Catalytic efficiency; Enzyme kinetics; Glycerol-3-phosphate dehydrogenase; Metabolic flux; Mitochondria; NADH dehydrogenase; Quinone; Redox state; Yeast
    DOI:  https://doi.org/10.1016/j.bbabio.2026.149615
  23. J Biol Chem. 2026 Oct 09. pii: S0021-9258(26)02502-0. [Epub ahead of print] 113630
      Sphingolipids constitute essential membrane lipids that also function as signaling molecules mediating fundamental cellular processes. Disruption of constitutive sphingolipid metabolism contributes to a range of metabolic diseases. Sphingolipid biosynthesis is initiated by serine palmitoyltransferase (SPT), a heteromeric enzyme composed of Sptlc1 and either Sptlc2 or the less-characterized subunit Sptlc3. While the canonical Sptlc1/Sptlc2 complex generates most sphingolipids, Sptlc1/Sptlc3 produces non-canonical sphingolipids that remain poorly understood. Sptlc3 expression increases in liver disease in both mouse models and humans, yet its biological role remains unclear. To address this, we generated a liver-specific SPTLC3 knockout (SPT3-hKO) mouse model. Loss of SPTLC3 resulted in severe mitochondrial dysfunction in hepatocytes, characterized by reduced oxygen consumption, decreased ATP production, and elevated NADH/NAD+ ratios with a concomitant increase in glycolytic activity. Mechanistically, we found a defect in the electron transport chain (ETC) which stemmed not from intrinsic impairment of the ETC complexes but rather from hindered electron flow between complex I and complex III likely due to reduced availability of Coenzyme Q. While atypical ceramides constituted (∼4% of total ceramides) when measured in liver homogenates, there measurements in mitochondria-enriched fractions revealed enrichment in this cell compartment. Together, our findings identify SPTLC3 as a critical modulator of mitochondrial ceramide composition and ETC function, revealing a specialized role for non-canonical sphingolipids in hepatocyte energy metabolism.
    Keywords:  Ceramides; Complex I; ETC; Hepatocytes; SPTLC3
    DOI:  https://doi.org/10.1016/j.jbc.2026.113630
  24. Trends Cancer. 2026 Oct 08. pii: S2405-8033(26)00216-5. [Epub ahead of print]
      Peripheral neuropathy is a poorly understood yet extraordinarily relevant obstacle to the effective implementation of cytotoxic chemotherapy in patients with cancer. Recent findings from Heles et al. demonstrate that safe neuroactive molecules that promote mitochondrial fitness in axons effectively prevent peripheral neuropathy in preclinical tumor models, thereby supporting clinical translation.
    Keywords:  5-HT(2A); ATP synthesis; mitophagy; neuroprotection; psilocybin; psychedelics
    DOI:  https://doi.org/10.1016/j.trecan.2026.09.005
  25. Mitochondrion. 2026 Oct 08. pii: S1567-7249(26)00113-3. [Epub ahead of print] 102223
      Growing fibroblasts in medium containing galactose instead of glucose makes cells more dependent on oxidative phosphorylation (OXPHOS) rather than glycolysis. Recently, it has been shown that treatment with nicotinamide adenine dinucleotide (NAD+) improves cell viability of human OXPHOS Complex I-deficient skin fibroblasts in this OXPHOS-reliant condition. To study the effects of NAD+ precursors in this model, we supplemented the cells with trigonelline (TG), nicotinamide (NAM), nicotinamide riboside (NR), nicotinamide mononucleotide (NMN) and found no improvement in cell viability, while supplementation with niacin (NA) did partially. Interestingly, cell viability was improved by addition of the NAD+ building block adenosine monophosphate (AMP). Metabolic profiling showed a decrease in inosine monophosphate (IMP), a purine intermediate, under OXPHOS-reliant condition. Treatment with AMP and adenosine under this condition increased the IMP levels. Among nucleosides, only adenosine and guanosine treatments in OXPHOS-reliant condition improved the patient cell viability. Therefore, we conclude that OXPHOS-reliant condition limited purine nucleotide biosynthesis and salvage pathways, which could be overcome by increasing IMP levels. Together, our results reveal a previously unrecognized role for purine metabolism under OXPHOS-reliant condition, highlighting it as a candidate for therapeutic intervention.
    Keywords:  Complex-I deficiency; Galactose medium; NAD(+) homeostasis; Primary mitochondrial disease; Purine metabolism
    DOI:  https://doi.org/10.1016/j.mito.2026.102223
  26. Front Endocrinol (Lausanne). 2026 ;17 1987603
      Diabetic cardiomyopathy (DCM) is characterized by mitochondrial metabolic inflexibility, redox imbalance and defective organelle quality control, yet the endocrine program coordinating these abnormalities remains incompletely defined. Thyroid hormone (TH) is a major regulator of cardiac energy metabolism and mitochondrial adaptation. In experimental diabetes, myocardial triiodothyronine (T3) can decline despite preserved circulating thyroid hormone concentrations, accompanied by type 3 iodothyronine deiodinase (DIO3) induction and altered TH transport. We propose that this local defect disrupts thyroid hormone-mitochondrial coupling and may thereby constrain adaptation of substrate oxidation, oxidative phosphorylation, redox defense and organelle turnover. Preclinical diabetic-heart studies demonstrate local TH dysregulation and show that appropriately dosed T3 treatment can reverse selected structural and functional abnormalities. Complementary cardiac studies identify mitochondrial biogenesis, reactive oxygen species control, mitophagy and calcium handling as plausible downstream effectors. Together, these findings support impaired local TH signaling as an underrecognized candidate upstream mechanism linking the diabetic endocrine environment to mitochondrial maladaptation. A tissue-specific therapeutic-window model may reconcile the adverse consequences of both deficient and excessive TH signaling while providing a framework for biomarker development, mechanistic testing and precision intervention in DCM.
    Keywords:  DIO3; diabetic cardiomyopathy; metabolic flexibility; mitochondria; mitochondrial quality control; redox signaling; thyroid hormone
    DOI:  https://doi.org/10.3389/fendo.2026.1987603
  27. Neurobiol Dis. 2026 Oct 07. pii: S0969-9961(26)00388-8. [Epub ahead of print] 107642
      VPS13A belongs to the family of bridge-like lipid transfer proteins, which connect opposing membranes at organelle contact sites in order to facilitate bulk lipid transfer. Loss of function mutations in the VPS13A gene cause VPS13A disease. Diminished store operated calcium entry has previously been described in patient-derived fibroblasts and iPSC-derived neurons from VPS13A disease patients and impairments in mitochondrial calcium uptake was observed in patient-derived fibroblasts. However, how calcium (dys)homeostasis is regulated and its effects on neuronal survival remain enigmatic. Here, we investigated calcium regulation and cell death in induced pluripotent stem cell-derived neurons from VPS13A disease patients. We demonstrate that reduced store operated calcium entry is associated with diminished plasma membrane-ER contact sites and altered expression of the calcium release-activated calcium channel ORAI1. VPS13A-deficient neurons further exhibited elevated mitochondrial calcium levels, as well as resistance of the mitochondrial calcium uniporter to inhibition by Ru360. Further, VPS13A disease neurons show increased lipid peroxidation, driving ferroptotic cell death. These findings establish a mechanistic link between disrupted calcium homeostasis and neuronal degeneration in VPS13A disease and identify calcium (dys)homeostasis and ferroptosis as potential pathogenic pathways and therapeutic targets.
    DOI:  https://doi.org/10.1016/j.nbd.2026.107642
  28. Nat Commun. 2026 09 04. pii: 10546. [Epub ahead of print]17(1):
      Rare diseases often remain unsolved because causal genetic changes can be complex and thus missed by standard sequencing or difficult to prioritize. Long-read sequencing can reveal structural variants, repeat expansions, DNA methylation and inherited haplotypes, but trio sequencing of an affected child and both parents remains costly. Here we show that phenotype-driven Trio-barcoded Oxford Nanopore Adaptive Sequencing (TBAS) enables cost-efficient long-read analysis of rare-disease trios on one flow cell. TBAS workflow uses clinical features to select broad disease-gene panels, barcodes all three family members and enriches these regions during sequencing rather than targeting a known causal locus. In benchmark regions, TBAS increased coverage and accurately detected small variants, structural variants, tandem repeat expansions, methylation and read-backed phasing, while reducing estimated sequencing consumable costs to 32.2% of conventional three-flow-cell trio long-read sequencing. Across 13 trios, TBAS recovered all five known diagnoses and prioritized candidates in five of eight unresolved cases.
    DOI:  https://doi.org/10.1038/s41467-026-77535-8
  29. Adv Sci (Weinh). 2026 Oct 08. e78220
      Parkinson's disease (PD) is a progressive neurodegenerative disorder characterized by the loss of dopaminergic (DA) neurons in the substantia nigra, with mitochondrial dysfunction central to its pathology. Recent studies have linked lactate-accumulating in PD due to mitochondrial dysfunction-to disease mechanisms through lactylation, a novel post-translational modification. However, the specific pathogenic role of lactylation in PD remains unclear. Here, H4K12 was identified as a key histone lactylation site and its role in PD pathogenesis was investigated. Plasma lactate and global histone lactylation were elevated in 83 PD patients compared with 83 Health controls. Consistently, lactate and H4K12la were upregulated in both PD mouse and cell models. Genome-wide CUT&Tag and RNA sequencing revealed that H4K12la enrichment at the HIF-1α promoter upregulates HIF-1α, which in turn represses NDUFS1 via direct promoter binding, impairing mitochondrial respiration and disrupted cellular energy supply. Upstream, P300 was identified as a critical catalyst of H4K12la; P300 directly bound to and sustained H4K12la levels. Collectively, these findings delineate a pathogenic signaling axis-the P300/H4K12la/HIF-1α/NDUFS1 axis-that disrupts energy homeostasis in DA neurons. Importantly, the pharmacological inhibition of this axis with 2-deoxy-D-glucose or PX-478 rescued motor deficits in PD model mice, thereby highlighting its therapeutic potential for PD.
    Keywords:  H4K12 lactylation; HIF‐1α; NDUFS1; Parkinson's disease; energy metabolism
    DOI:  https://doi.org/10.1002/advs.78220
  30. Biogerontology. 2026 Oct 03. pii: 171. [Epub ahead of print]27(5):
      In addition to cell cycle arrest, cellular senescence is characterized by disrupted mitochondrial homeostasis, development of the senescence-associated secretory phenotype (SASP), and alterations in the immune microenvironment. Mitochondrial membrane damage, disrupted mitochondrial dynamics, and impaired mitochondrial quality control (MQC) can occur during cellular senescence. These changes may cause mitochondrial DNA (mtDNA) to leak abnormally into the cytosol. Cytosolic mtDNA can then activate cyclic GMP-AMP synthase (cGAS)-stimulator of interferon genes (STING) signaling. Unlike the acute innate immune response elicited by pathogen-derived DNA, cGAS-STING signaling in senescent cells is mainly activated by the aberrant cytosolic accumulation of endogenous DNA. This signaling activates the TANK-binding kinase 1 (TBK1)-interferon regulatory factor 3 (IRF3) axis and induces a type I interferon response. It also promotes nuclear factor kappaB (NF-κB)-mediated inflammatory transcription, sustains the SASP, and modulates paracrine signaling and immune cell function. This review focuses on mitochondrial structural damage, mtDNA release, and impaired MQC. It summarizes the mechanisms that activate the mtDNA-cGAS-STING axis during cellular senescence and examines its functional changes. It also discusses the potential development of senescence-associated biomarkers. Current evidence suggests that this signaling axis mainly contributes to the maintenance and amplification of the inflammatory senescence phenotype. It is unlikely to independently determine the onset of cellular senescence. Its effects are highly dependent on cell type and pathological context, while assay standards, causal relationships, and therapeutic windows require further clarification.
    Keywords:  CGAS-STING; Cellular senescence; Immunomodulation; Inflammatory senescence; Mitochondrial DNA; SASP
    DOI:  https://doi.org/10.1007/s10522-026-10515-z
  31. J Invest Dermatol. 2026 Oct 08. pii: S0022-202X(26)03768-1. [Epub ahead of print]
      Darier disease (DD), caused by ATP2A2 mutations, disrupts epidermal adhesion via endoplasmic reticulum (ER) calcium defects. While ER calcium depletion is documented, its impact on mitochondrial calcium homeostasis remains unknown. This study investigates mitochondrial calcium downregulation in DD and evaluates repurposing the ryanodine receptor (RyR) antagonist dantrolene to restore mitochondrial function. Using primary, immortalised DD and ATP2A2 knockout keratinocytes as well as patient fibroblasts, we measured mitochondrial morphology and calcium level. DD models showed fragmented mitochondria and diminished respiratory function. These changes were associated with significantly lower mitochondrial calcium in keratinocytes. Dantrolene increased mitochondrial calcium uptake, partly via the mitochondrial calcium uniporter (MCU), enhancing TCA cycle enzyme activity and improving mitochondrial respiration. This recovery strengthened cell-cell adhesion in DD keratinocytes. Mitochondrial calcium reduction is a critical mediator in DD. Dantrolene ameliorates this calcium dyshomeostasis and disease phenotypes, proposing a therapeutic strategy using an FDA-approved drug.
    Keywords:  Darier disease; MCU; SERCA2; dantrolene; mitochondrial calcium
    DOI:  https://doi.org/10.1016/j.jid.2026.08.031
  32. Aging Cell. 2026 Oct;25(10): e70703
      Age-associated loss of skeletal muscle mass and function, also known as sarcopenia, is closely linked to mitochondrial dysfunction. In this study, we report that senescent skeletal muscle myoblasts exhibit elevated activity and expression of the enzyme glutaminase (GLS1), which is mediated by p38 MAPK signaling and leads to intracellular urea accumulation that impairs mitochondrial function. Pharmacological inhibition of GLS1 with CB-839 reduced urea levels, restored the expression of electron transport chain (ETC) complexes, and improved mitochondrial function. Consistent with our in vitro findings, CB-839 administration to progeroid mice similarly upregulated ETC complexes and enhanced mitochondrial respiratory capacity in skeletal muscle, leading to improved structural integrity and enhanced muscle strength. Together, these findings suggest that targeting glutamine metabolism via GLS1 inhibition may represent a promising therapeutic strategy to ameliorate age-related skeletal muscle decline by restoring mitochondrial health.
    DOI:  https://doi.org/10.1111/acel.70703
  33. Front Pediatr. 2026 ;14 1827306
      Multiple mitochondrial dysfunction syndrome 6 (MMDS6), caused by pathogenic variants in the PMPCB gene, is a rare autosomal recessive disorder. To date, only three studies describing a total of seven patients with MMDS6 have been published. In this report, we describe two siblings with MMDS6 who presented with significant motor and intellectual regression. Age of onset of the siblings was significantly later than that of previously reported cases. Whole-exome sequencing (WES) identified two novel compound heterozygous variants in PMPCB (c.1079C > G and c.1351C > T). These two variations originated from their father and their mother respectively. Although the two siblings have the same compound heterozygous mutation, their clinical symptoms show significant differences. Analysis via WB experiment indicated that these variants reduce PMPCB gene. PMPCB and Frataxin (FXN) protein expression. Furthermore, Analysis of protein stability prediction showed that the c.1079C > G variant decreases PMPCB protein stability. Based on these observation, we speculate that Both variants are candidate pathogenic variants pending functional validation. These findings expand the variant spectrum of PMPCB-related MMDS6 and revealed the potential pathogenic mechanism of PMPCB gene variants. We preliminary speculate that PMPCB might be a critical upstream regulator of FXN maturation.
    Keywords:  MMDS6; PMPCB; children; gene; mutation
    DOI:  https://doi.org/10.3389/fped.2026.1827306
  34. Front Physiol. 2026 ;17 1957316
      Skeletal muscle plays a central role in whole-body energy homeostasis, metabolic flexibility, and insulin sensitivity, acting as a key integrator of nutritional, mechanical, and pharmacological signals. Although diet, exercise, and pharmacotherapy are often investigated as separate interventions, they converge on shared regulatory pathways in skeletal muscle, including nutrient sensing, mechanotransduction, mitochondrial quality control, inflammatory remodeling, and anabolic-catabolic balance. Through core signaling networks such as AMPK-mTOR, SIRT1/PGC-1α, and insulin/AKT pathways, these interventions may interact in additive, complementary, synergistic, or antagonistic manners depending on physiological status, disease context, baseline metabolic condition, and intervention timing. This Review critically integrates current evidence on how diet, exercise, and pharmacotherapy regulate skeletal muscle metabolism across aging, metabolic disease, and adaptive physiological states. We propose a muscle-centered integrative framework organized around five major regulatory domains: substrate utilization and metabolic flexibility, mitochondrial remodeling, protein turnover, inflammatory control, and regenerative capacity. Within this framework, we highlight how intervention responses are shaped by key biological and clinical modulators, including age, disease state, muscle fiber composition, training status, nutritional background, and baseline metabolic health. Importantly, we distinguish findings supported by human studies from those derived primarily from preclinical or mechanistic models, thereby emphasizing differences in translational reliability. Finally, we discuss current limitations in interpreting combined interventions and outline future directions for precision-oriented strategies that integrate nutrition, exercise, and pharmacotherapy to optimize skeletal muscle function and systemic metabolic health.
    Keywords:  dietary intervention; exercise; mechanism integration; pharmacotherapy; skeletal muscle metabolism
    DOI:  https://doi.org/10.3389/fphys.2026.1957316
  35. FASEB J. 2026 Oct 15. 40(19): e72361
      Sirtuin-1 (SIRT1) is an NAD+-dependent deacetylase implicated in autophagosome formation; however, whether SIRT1 also regulates autophagosome clearance during late-stage autophagy remains unclear. Here, we investigated the role of SIRT1 in autophagosome clearance during autophagy and mitophagy in cardiomyocytes. Mitochondrial stress induced by carbonyl cyanide m-chlorophenyl hydrazone (CCCP) decreased mitochondrial protein levels and increased phosphorylation of ubiquitin, a PINK1 target, in H9c2 cardiomyocytes. These CCCP-induced decreases in mitochondrial proteins were prevented by co-treatment with chloroquine, an inhibitor of lysosomal degradation, supporting the induction of CCCP-triggered mitophagy. SIRT1 knockdown similarly prevented the CCCP-induced reduction in mitochondrial proteins and led to the accumulation of autophagosomes containing fragmented mitochondria without attenuating ubiquitin phosphorylation, suggesting that SIRT1 acts downstream of mitochondrial tagging. Tandem GFP-RFP LC3 assay and LC3-LAMP1 colocalization analysis demonstrated impaired autophagosome-lysosome fusion following SIRT1 knockdown. In vivo, cardiomyocyte-specific SIRT1 knockout mice exhibited elevated basal LC3-II levels and a blunted LC3-II response to chloroquine, consistent with impaired autophagic flux. In a doxorubicin (DOX)-treated model, SIRT1 deficiency attenuated autophagosome degradation during the early period after DOX administration. Mechanistically, SIRT1 interacted with Rab7, a key regulator of autophagosome-lysosome fusion, raising the possibility that SIRT1 might regulate fusion through post-translational modification of Rab7 or related components. Collectively, these findings identify SIRT1 as a regulator of autophagosome-lysosome fusion that promotes autophagosome degradation during autophagy and mitophagy in cardiomyocytes.
    Keywords:  Sirtuin‐1; autophagosome–lysosome fusion; autophagy; doxorubicin; mitophagy
    DOI:  https://doi.org/10.1096/fj.202601047R
  36. Nat Rev Genet. 2026 Oct 05.
      The functioning mitochondrial genome is essential for cellular energy production. Being strictly maternally inherited and possessing limited DNA repair capacity, mitochondrial DNA (mtDNA) replication errors tend to accumulate over time. If left unchecked, these errors can accumulate through the female germline over successive generations, potentially leading to species extinction. However, this outcome is not observed in most species, including humans, which implies the existence of mechanisms that counteract the progressive accumulation of deleterious mtDNA mutations. Recent technological advances are building a deeper understanding of the processes that preserve mtDNA integrity, including the molecular and cellular basis and timing of purifying selection. This new knowledge helps to explain how mtDNA can change rapidly over just a few generations, whilst remaining compatible with the independently inherited, evolving nuclear genome.
    DOI:  https://doi.org/10.1038/s41576-026-01019-0
  37. Nature. 2026 Oct;658(8135): 319-320
      
    Keywords:  Brain; Neuroscience; Stem cells
    DOI:  https://doi.org/10.1038/d41586-026-02967-7
  38. Biochim Biophys Acta Mol Basis Dis. 2026 Oct 05. pii: S0925-4439(26)00361-3. [Epub ahead of print]1873(2): 168495
      This study identified two compound heterozygous variants in the NDUFS1 gene in a patient presenting with optic atrophy including the known variant c.64C>T p.(R22X) and a novel variant c.404G>A p.(G135D). The Ndufs1G135D/- mouse model exhibited reduced Ndufs1 expression, impaired optic nerve function and thinning of the ganglion cell complex/retinal thickness ratio. Structural and interaction analyses indicated the G135D variant located within the Fe-S cluster domain of NDUFS1, disrupted its interaction with NDUFV1, leading to protein instability and aberrant mitochondrial localization. Functional studies using NDUFS1 knockout HEK293 cells showed increased ROS, decreased mitochondrial membrane potential, reduced NAD+/NADH ratio, impaired complex I activity, decreased ATP production and defective oxidative phosphorylation. Mitochondrial dysfunction was not fully rescued by the G135D mutant protein. Collectively, the G135D variant was associated with impaired complex I-mediated electron transfer and mitochondrial dysfunction, providing insights into the pathogenesis of optic atrophy.
    Keywords:  Compound heterozygous mutations; Mitochondrial complex I; Mitochondrial dysfunction; NDUFS1 gene; Optic atrophy
    DOI:  https://doi.org/10.1016/j.bbadis.2026.168495
  39. Mol Biol Rep. 2026 Oct 07. pii: 1675. [Epub ahead of print]53(1):
      Chronic kidney disease (CKD) is a major global health burden, and renal fibrosis is a common pathological correlate of progressive loss of kidney function. Renal tubular epithelial cells (RTECs), particularly proximal tubular epithelial cells (PTECs), contain abundant mitochondria and depend on oxidative metabolism to support solute transport. This metabolic specialization renders them vulnerable to hypoxia, lipotoxicity, uremic toxins, aging, inflammation, and hemodynamic stress. Persistent mitochondrial injury can suppress fatty acid oxidation and oxidative phosphorylation, deplete nicotinamide adenine dinucleotide, increase mitochondrial reactive oxygen species, destabilize mitochondrial DNA, and disrupt biogenesis, dynamics, mitochondria-associated membrane signaling, and mitophagy. These abnormalities promote maladaptive repair, senescence, inflammatory cell death, and paracrine signaling to fibroblasts, macrophages, endothelial cells, and pericytes. Evidence is organized within a tubule-to-niche framework that distinguishes causal perturbation from temporal or transcriptomic association, model-specific findings from cross-model convergence, and experimental efficacy from clinical translation. Single-cell, spatial, and organoid studies are considered alongside evidence from human biopsy specimens and biomarkers. Mitochondrial dysfunction is thus treated as a context-dependent contributor to, and amplifier of, CKD-associated fibrotic remodeling rather than a universal initiating event. Although strategies targeting bioenergetics, redox balance, mitochondrial quality control, and tubular delivery are promising, translation is constrained by disease heterogeneity, intervention timing, target specificity, pharmacokinetics, and the scarcity of validated human antifibrotic endpoints.
    Keywords:  Chronic kidney disease; Mitochondrial dysfunction; Multicellular remodeling; Organelle homeostasis; Renal fibrosis; Renal tubular epithelial cells
    DOI:  https://doi.org/10.1007/s11033-026-12861-0
  40. Life Sci. 2026 Oct 03. pii: S0024-3205(26)00529-1. [Epub ahead of print]406 124720
      Mitochondrial morphology dynamics are essential for neuronal function and are regulated by fission and fusion machinery, in which the actin cytoskeleton plays a crucial role. Coactosin-like F-actin-binding protein 1 (Cotl1), a key component of the actin cytoskeleton, is gaining attention for its profound pathophysiological implications in human neurodegenerative disorders. However, its role in neuronal function remains unclear. Therefore, we aimed to explore the role of Cotl1 in mitochondrial morphology and neuronal dysfunction. We generated Cotl1-knockdown and Cotl1-K75E mutants to examine mitochondrial structure and produced Cotl1-knockout (Cotl1-/-) mice to assess learning and memory-related phenotypes. Both Cotl1 knockdown and Cotl1-K75E overexpression induced mitochondrial elongation and disrupted F-actin organization by inhibiting fission. In silico analysis of differentially expressed genes in Cotl1-/- hippocampal tissue revealed a link between Cotl1 and neuronal function. Cotl1-/- mice further exhibited impaired learning and memory, accompanied by decreased doublecortin (Dcx) expression in the hippocampal dentate gyrus (DG). Notably, restoration of Cotl1 expression in the DG recovered both Dcx expression and cognitive functions. These results highlight the crucial role of Cotl1 in mitochondrial fission through its regulation of F-actin and Drp1 assembly in the mitochondria, and they link Cotl1 loss to impaired learning and memory and to reduced Dcx expression in the hippocampal DG. Collectively, these findings suggest an important role of Cotl1 in maintaining developing granule neurons in the dentate gyrus, a process closely linked to mitochondrial fission and cognitive function.
    Keywords:  Cotl1; Dentate gyrus; Doublecortin; F-actin; Memory; Mitochondrial fission
    DOI:  https://doi.org/10.1016/j.lfs.2026.124720
  41. Nat Cardiovasc Res. 2026 Oct 09.
      Right ventricular failure (RVF) independently predicts mortality in heart failure, yet its pathophysiology is poorly understood. Here we present a multi-modal atlas of human right ventricular pressure loading and failure, including bulk (n = 142), single-nucleus (n = 11) and Xenium spatial (n = 9) transcriptomics in adults, plus pediatric (n = 14) and mouse pulmonary artery banding cohorts. Subclustering resolved 34 cell subtypes across 12 lineages along a two-phase trajectory. Phase 1 (non-failing to pressure-loaded) accounts for most of the transcriptional change detectable by bulk and single-nucleus RNA sequencing and is marked by loss of resident macrophage identity, fibroblast activation, endothelial expansion and erosion of tissue-protective programs. Phase 2 (pressure-loaded to RVF) produces little change in bulk RNA sequencing but is resolved by spatial transcriptomics, engaging multi-lineage fibrotic, endothelial-activation and cardiomyocyte-reactivation programs, with a gain of extracellular matrix (collagen, laminin, thrombospondin) signaling over a stable cell contact adhesion baseline. Mitochondrial respirometry revealed respiratory dysfunction in adult and mouse RVF but not pediatric RVF. Multi-lineage remodeling of the cardiac microenvironment emerges as the central molecular program of RVF, meriting further study as possible disease-modifying targets.
    DOI:  https://doi.org/10.1038/s44161-026-00885-5
  42. Cell Signal. 2026 Oct 07. pii: S0898-6568(26)00599-1. [Epub ahead of print] 112939
      Tripartite motif-containing protein 10β (TRIM10β) is a primate-specific isoform whose expression is restricted in most human tissues and regulated in a lineage- and stage-specific manner during erythropoiesis. However, the organelle-level mechanisms underlying the cytotoxic effects of dysregulated TRIM10β remain unclear. Here, we show that TRIM10β expression coincides with p38-p21 activation during late erythroid differentiation. Ectopic TRIM10β expression increased p38 phosphorylation and p21 expression in both erythroid and non-erythroid cells, whereas TRIM10β depletion attenuated late-stage p21 induction in differentiating erythroid cells. Proteomic analysis identified the mitochondrial carrier adenine nucleotide translocase 1 (ANT1) as a TRIM10β-interacting protein. Consistent with this interaction, TRIM10β localized to mitochondria, reduced ANT1-VDAC1 association and cellular ATP levels, and altered fission-associated signaling and mitochondrial membrane potential. In parallel, TRIM10β formed centrosome-proximal aggregates associated with defective centrosome organization, altered cell-cycle progression, γH2AX accumulation, and nuclear envelope deformation. These findings identify TRIM10β as a stage-restricted modulator of erythroid p38-p21 signaling and show that its dysregulated expression perturbs mitochondrial and centrosomal homeostasis, providing a mechanistic basis for its cytotoxicity.
    Keywords:  Centrosome organization; Erythropoiesis; Mitochondrial function; Nuclear envelope deformation; TRIM10β; p38-p21 signaling
    DOI:  https://doi.org/10.1016/j.cellsig.2026.112939
  43. Res Sq. 2026 Aug 11. pii: rs.3.rs-10539896. [Epub ahead of print]
      Mitochondriopathies are a large group of pathological conditions characterized by dysfunction of tissues and organs with high energy needs such as the brain, heart, and skeletal muscles, which highly rely on functional mitochondrial oxidative phosphorylation (OXPHOS). The vast majority of these disorders are ascribed to mutations in nuclear or mitochondrial encoded subunits of complex I (CI), the largest OXPHOS complex. In this study, we develop a multisystemic pipeline for CI-associated disease based on new approach methods (NAMs), which includes non-mammalian models, namely C. elegans and zebrafish, and mammalian cell-based models, such as neuroblastoma cells and induced pluripotent stem cell (iPSC)-derived neural progenitor cells (NPCs) and brain organoids. Systematic characterization of biochemical and neurobehavioral features in these models reveals obvious mitochondrial alterations with no major signs of redox imbalance possibly due compensatory or tissue-specific effects. Conversely, we identify specific pathogenetic features that are consistent across species and are rescued by lutein or vitamin B12, likely acting through non-cell-autonomous mechanisms converging on neurometabolic rewiring. Overall, our findings support the advantage of leveraging different in vitro and in vivo NAM systems with their unique and complementary disease endpoints to uncover critical pathological and quantifiable phenotypes exploitable to identify disease modifiers and suppressors.
    DOI:  https://doi.org/10.21203/rs.3.rs-10539896/v1
  44. iScience. 2026 Oct 16. 29(10): 117507
      Axonal and synaptic degeneration are key hallmarks of neurodegenerative diseases, but the molecular mechanisms remain incompletely understood. Here, we performed an unbiased forward genetic mosaic screen in Drosophila to identify genes required for maintenance of adult motor axons and neuromuscular junctions (NMJs). We identified 49 mutations in 30 genes, including 8 causing adult-onset progressive degeneration. Loss of pebbled (peb), the Drosophila RAS- responsive element binding protein 1 (RREB1) ortholog, causes adult-onset motor axonal and NMJ degeneration and age-dependent motor deficits. peb encodes a C2H2 zinc-finger transcription factor that negatively regulates transcription of RAS/MAPK pathway target genes, and its loss resulted in RAS/MAPK pathway overactivation. Loss of other RAS/MAPK pathway negative regulators also induced adult-onset progressive NMJ degeneration and motor deficits. Importantly, treatment of adult flies with the MEK1/2 inhibitor mirdametinib induced a dosage-dependent rescue of peb mutant motor neurodegenerative phenotypes. Thus, RAS/MAPK pathway overactivation triggers adult-onset progressive neurodegeneration, which can be prevented by RAS/MAPK pathway inhibition.
    Keywords:  RAS/MAPK pathway; RASopathy; axonal degeneration; forward genetic screen; neurodegenerative disease; neurodevelopmental disease
    DOI:  https://doi.org/10.1016/j.isci.2026.117507
  45. bioRxiv. 2026 Aug 13. pii: 2026.08.12.744465. [Epub ahead of print]
      The role of 2-hydroxyglutarate in lipid metabolism is currently unknown. Here we show that 2HG redistributes the partitioning of fatty acids into triglyceride storage and away from membrane phospholipid synthesis, mitochondrial oxidation, and lipotoxic intermediates. In primary human cardiac and vascular cells, both enantiomers, D2HG and L2HG, expanded triglyceride stores and lipid droplets while selectively depleting phosphatidylethanolamine, with L2HG acting more potently than D2HG despite lower intracellular accumulation. Mechanistically, L2HG increases DGAT-dependent triglyceride synthesis, slows triglyceride turnover, and constrains the ethanolamine branch of the Kennedy pathway. This response limits fatty acid oxidation, long-chain acylcarnitine accumulation, and lipid peroxidation independently of pseudohypoxic transcription or canonical lipid storage regulators, while also remodeling the phosphoproteome and redox proteome. L2HG accumulation induces hypertriglyceridemia in mice, redistributes the acyl chain composition of cardiac triglycerides, and limits ischemia-induced acylcarnitine accumulation in the heart, mirroring a positive association between circulating 2HG and triglycerides in humans. Thus, 2HG expands metabolic flexibility from whether fatty acids are used as fuel to how that fuel is allocated among storage, membrane synthesis, and oxidation.
    DOI:  https://doi.org/10.64898/2026.08.12.744465
  46. Cell Rep. 2026 Oct 07. pii: S2211-1247(26)01186-1. [Epub ahead of print]45(10): 118107
      Sensorineural hearing loss (SNHL) affects millions of individuals worldwide, with platinum-based chemotherapeutics identified as a significant cause. In this study, we elucidate the mechanism by which mitochondrial transfer from mesenchymal stem/stromal cells (MSCs) protects against cisplatin-induced cochlear injury in a mouse model. Systemically administered MSCs home to the cochlea and transfer mitochondria to damaged spiral ganglion neurons (SGNs) via tunneling nanotubes, leading to elevated intracellular levels of the Krebs cycle intermediate fumarate, which activates mitophagy to eliminate dysfunctional mitochondria. Mechanistically, dimethyl fumarate (DMF)-a clinically available fumarate derivative-covalently modifies the phosphatase PPP1CB at cysteine 126, thereby blocking PPP1CB-mediated dephosphorylation of mitofusin 2 (MFN2), which in turn enhances mitophagy and ultimately preserves auditory function. These findings reveal that MSCs orchestrate mitochondrial replacement in damaged SGNs by delivering healthy mitochondria and facilitating the removal of impaired ones, underscoring the therapeutic potential of this strategy for treating SNHL related to mitochondrial dysfunction.
    Keywords:  CP: cell biology; PPP1CB; dimethyl fumarate; mesenchymal stem/stromal cells; sensorineural hearing loss; spiral ganglion neurons
    DOI:  https://doi.org/10.1016/j.celrep.2026.118107
  47. Eur J Immunol. 2026 Oct;56(10): e70293
      The TAM receptor Axl is essential for efferocytosis and inflammatory regulation, but its role in macrophage immunometabolic homeostasis remains unclear. Here, we combined phenotypic, functional, metabolomic, and bioenergetic analyses to define how Axl deficiency alters peritoneal macrophages (PMs) under steady-state conditions. Axl- / - PMs exhibited reduced cell numbers, downregulation of resident macrophage markers, and increased Ly6C expression, indicating a shift toward a less mature, monocyte-like phenotype. Functionally, these cells showed impaired inflammatory activation, with reduced nitrite release, diminished LPS-induced ROS production, and lower mitochondrial ROS. Metabolomic profiling revealed broad disruption of central carbon metabolism, including reduced glycolytic intermediates, depletion of tricarboxylic acid (TCA) cycle metabolites, and decreased NAD+/NADH and NADP+/NADPH pools. Despite reduced glycolytic flux, preserved pyruvate levels suggested compensatory carbon utilization. Bioenergetic assessment demonstrated pronounced mitochondrial dysfunction, characterized by reduced maximal respiration, elevated proton leak, and limited oxidative phosphorylation flexibility. Redox balance was also impaired, with decreased GSH, GSSG, and dehydroascorbic acid and increased ophthalmic acid, consistent with elevated oxidative stress. Systemically, Axl- / - mice displayed hepatic redox imbalance and biochemical signs of liver dysfunction. Collectively, these findings identify Axl as a central regulator of macrophage identity, mitochondrial performance, and redox resilience, required for maintaining local and systemic homeostasis.
    Keywords:  Axl receptor; immunometabolism; oxidative stress; peritoneal macrophages
    DOI:  https://doi.org/10.1002/eji.70293
  48. Free Radic Biol Med. 2026 Oct 03. pii: S0891-5849(26)01184-6. [Epub ahead of print]257 94-114
      Intestinal epithelial cells (IECs) are highly vulnerable to mitochondrial dysfunction and lethal apoptosis under severe hypoxic stress. However, the upstream genetic determinants governing mucosal redox resilience remain poorly defined. To investigate the mechanisms of intestinal epithelial cell apoptosis under cobalt chloride (CoCl2)-induced hypoxic conditions, we established a CoCl2-induced lethal hypoxia model in IPEC-J2 cells and performed a genome-wide CRISPR-Cas9 screen. This screen identified MINOS1 as an essential gene for tolerance to CoCl2-induced hypoxic cell death. Systematic cell phenotyping and transcriptomic analyses revealed that CoCl2 exposure triggers robust intrinsic apoptosis and oxidative stress, whereas MINOS1 ablation remodels the basal transcriptomic landscape to establish an adaptive pro-survival state. Ultrastructural observation via transmission electron microscopy and subcellular functional assays demonstrated that MINOS1 deficiency eliminates canonical crista junctions (CJs) and induces distinctive concentric, "onion-like" remodeling of the inner mitochondrial membrane. Under severe hypoxia, MINOS1-knockout (KO) enterocytes retained stable mitochondrial membrane potential (ΔΨm), suppressed pathological mitochondrial permeability transition pore (mPTP) opening, sustained antioxidant enzyme (SOD and CAT) activities, and abrogated intracellular ROS accumulation and lipid peroxidation. Pharmacological intervention with the mitochondria-targeted antioxidant Mitoquinone mesylate precisely phenocopied the cytoprotective phenotype of MINOS1 ablation, confirming a mitochondria-dependent redox regulatory mechanism. Crucially, subcellular fractionation assays verified that remodeled concentric mitochondrial membranes form a unique topological barrier that physically sequesters cytochrome c within mitochondria, blocking its cytosolic release and subsequent activation of caspase-9 and caspase-3. Accordingly, MINOS1-deficient enterocytes tolerate extreme hypoxic stress by structurally uncoupling mitochondrial oxidative stress from downstream apoptotic execution. Collectively, these findings establish MINOS1-dependent cristae topology as a fundamental biophysical gatekeeper of intestinal mucosal redox homeostasis, providing a novel structure-targeted therapeutic strategy for hypoxia-associated intestinal disorders.
    Keywords:  CRISPR screen; Hypoxia; Intestinal cell apoptosis; MINOS1-KO; Mitochondria
    DOI:  https://doi.org/10.1016/j.freeradbiomed.2026.10.003
  49. J Physiol. 2026 Oct 08.
      Friedreich's ataxia (FA) is an inherited disorder caused by reduced expression of the mitochondrial protein frataxin (FXN). Although defined as a neurodegenerative disease, cardiomyopathy is the leading cause of mortality. Cardiac manifestations of FA span from concentric hypertrophic cardiomyopathy with preserved systolic function and impaired diastolic relaxation, resembling heart failure with preserved ejection fraction (HFpEF), to systolic heart failure with reduced ejection fraction (HFrEF). The molecular mechanisms driving progression towards these cardiac phenotypes remain poorly understood. We examined mitochondrial content, dynamics and mitophagy in two FA mouse models: cardiac/skeletal muscle-specific MCK-Cre FXN knockout (FXN-cKO) mice, which develop HFrEF, and inducible FXN knockdown (FXNKD) mice, which develop HFpEF-like cardiomyopathy. FXN-cKO hearts exhibited increased mitochondrial transcription factor A expression, an elevated mitochondrial-to-nuclear DNA ratio and greater mitochondrial density by electron microscopy, consistent with enhanced mitochondrial biogenesis. In contrast, FXNKD hearts showed no changes in mitochondrial content or biogenesis markers. Mitochondrial dynamics were markedly altered in FXN-cKO hearts, with reduced mitofusin-2 and increased FIS1 expression, accompanied by smaller, fragmented mitochondria. FXNKD hearts exhibited preserved fission, modestly increased fusion and mild mitochondrial enlargement. Markers of mitophagy were increased in FXN-cKO hearts, but a reduced LC3-II/I ratio suggested impaired autophagosome maturation and defective mitochondrial clearance. No changes in mitophagy were observed in FXNKD hearts. These findings demonstrate that FA-associated HFrEF is characterized by increased mitochondrial biogenesis coupled with impaired mitochondrial quality control and fragmentation, whereas FA-associated HFpEF-like phenotype shows preserved mitochondrial architecture and turnover. Mitochondrial remodelling programmes may underlie divergent cardiac phenotypes in FA and represent therapeutic targets for disease modification. KEY POINTS: Friedreich's ataxia (FA) cardiomyopathy develops as heart failure with reduced ejection fraction (HFrEF) or heart failure with preserved ejection fraction (HFpEF)-like disease, but mechanisms leading to different cardiac phenotypes are unclear. We compared mitochondrial remodelling in FA mouse models with divergent cardiac phenotypes. Frataxin knockout (FXN-cKO) mice with HFrEF phenotype showed increased mitochondrial biogenesis, fragmentation and impaired mitochondrial quality control. FXN knockdown (FXNKD) mice with HFpEF-like phenotype showed largely preserved mitochondrial structure and turnover. Distinct mitochondrial adaptations may drive phenotype-specific cardiac outcomes in FA.
    Keywords:  Friedreich's ataxia; cardiomyopathy; frataxin; mitochondria; mitochondrial biogenesis; mitochondrial fission; mitochondrial fusion; mitophagy
    DOI:  https://doi.org/10.1113/JP291356
  50. Pediatr Neonatol. 2026 Sep 18. pii: S1875-9572(26)00151-8. [Epub ahead of print]
       BACKGROUND: Severe free carnitine deficiency (C0 ≤5 μmol/L) is frequently observed in pediatric patients suspected of primary carnitine deficiency (PCD), though confirmed diagnoses remain rare. This study aimed to analyze the disease spectrum and genetic profile of high-risk children with severe reduced carnitine levels and to enable targeted treatment.
    METHODS: We retrospectively analyzed blood acylcarnitine profiles (ACP), urine organic acids, genetic results, and clinical features of high-risk pediatric patients with significantly low C0 levels, which led to a diagnosis.
    RESULTS: Among 56 high-risk patients with C0 levels below 5 μmol/L, 19 were diagnosed with inherited metabolic diseases (IMD): 7 cases of PCD and 12 other metabolic disorders. Three novel genetic variants across three genes were identified, which had not been previously reported. Notably, one patient with PCD also had methylmalonic acidemia, and three IMD patients exhibited characteristic metabolic markers of their conditions only after levocarnitine supplementation. Among the 37 non-IMD cases, critical condition with perinatal multi-organ dysfunction and refractory epilepsy or diarrhea-associated convulsions were the predominant etiologies.
    CONCLUSION: Severe C0 deficiency in high-risk children is primarily caused by non-genetic factors. Additionally, in some non-PCD fatty acid oxidation disorders, extremely low free carnitine levels may mask primary disease markers, increasing the risk of misdiagnosis. Timely follow-up blood ACP after l-carnitine supplementation, combined with urinary organic acid analysis and genetic testing, is crucial for early diagnosis and therapeutic monitoring.
    Keywords:  Carnitine deficiency; High-risk children; Inherited metabolic diseases; Mass spectrometry; Primary carnitine deficiency
    DOI:  https://doi.org/10.1016/j.pedneo.2026.04.012
  51. Exp Mol Med. 2026 Oct 05.
      Spinal cord injury (SCI) leads to chronic motor and sensory deficits, with progressive secondary neurodegeneration posing a major therapeutic challenge. Although high-frequency repetitive transcranial magnetic stimulation (HF-rTMS) over the primary motor cortex (M1) shows therapeutic potential, its underlying cellular mechanisms remain poorly understood. This translational study first demonstrated that HF-rTMS concurrently improved motor function and alleviated neuropathic pain in retrospective clinical cohorts and a validated murine SCI model. To decipher the supraspinal mechanism, we used an integrated approach combining behavioral analyses, transmission electron microscopy and single-nucleus RNA sequencing. Transcriptomics revealed that HF-rTMS specifically rescued SCI-induced disruptions in oxidative phosphorylation and mitochondrial energy metabolism pathways within M1 GABAergic neurons. Here we pinpointed a key molecular lesion: SCI selectively downregulated the mitochondrial fission regulator Drp1 in M1 layer V GABAergic neurons, leading to dysfunctional mitochondrial dynamics and bioenergetic deficits. HF-rTMS restored Drp1 levels and mitochondrial ultrastructure specifically in M1 but not in the primary somatosensory cortex, underscoring its region-selective action. Most importantly, functional causality was established: Drp1 overexpression in M1 GABAergic neurons mimicked the therapeutic benefits of HF-rTMS, whereas Drp1 knockdown or its pharmacological inhibition completely abolished these effects. Our findings establish impaired mitochondrial dynamics in a specific cortical microcircuit as a convergent driver of multisystem deficits post SCI, and identify Drp1 as a pivotal molecular target of HF-rTMS. This work provides a novel mechanistic foundation for Drp1-directed precision therapies, highlighting the potential of rescuing cortical mitochondrial bioenergetics to halt progressive secondary damage and improve functional recovery after central nervous system injury. This study demonstrates that high-frequency repetitive transcranial magnetic stimulation (HF-rTMS) alleviates motor dysfunction and neuropathic pain after spinal cord injury (SCI). We show that HF-rTMS acts by upregulating the mitochondrial fission protein Drp1 specifically in layer V GABAergic neurons of the primary motor cortex. This restoration of Drp1 rescues impaired mitochondrial dynamics, normalizes associated proteins (VDAC-1 and Tom20) and recovers cellular energy (ATP) production. Consequently, rTMS reverses SCI-induced mitochondrial pathology, leading to substantial functional recovery. The therapeutic effect is dependent on Drp1, as its inhibition abolishes the benefits of HF-rTMS. Our findings reveal a precise neuromodulation mechanism targeting cortical mitochondrial homeostasis for treating SCI comorbidity.
    DOI:  https://doi.org/10.1038/s12276-026-01857-2
  52. Front Pharmacol. 2026 ;17 1905942
      Fluoroquinolone (FQ) antibiotics have an established capacity for mitochondrial injury, yet only a subset of exposed patients develop severe or persistent toxicity. We propose the Mitochondrial Vulnerability Threshold (MVT) hypothesis: that whether a standard therapeutic FQ dose produces clinically significant toxicity may depend substantially on the patient's pre-existing mitochondrial reserve capacity rather than on fixed pharmacological properties alone. Although this toxicity was first recognized through musculoskeletal injury-particularly tendinopathy and tendon rupture-the reported syndrome extends to peripheral nerve, autonomic, central nervous system, and other tissues; we therefore use the term fluoroquinolone-associated multisystem toxicity (FQMT), with musculoskeletal (tendon) injury as its prototypical and best-characterized manifestation. We hypothesize that converging iatrogenic, nutritional, infectious, lifestyle, and environmental stressors-statin-associated CoQ10 depletion, proton-pump-inhibitor magnesium and B12 malabsorption, metformin-associated B12 depletion with genetically stratifiable risk, physical inactivity, metabolic syndrome, post-COVID-19 mitochondrial injury, antibiotic-induced dysbiosis, and environmental toxin burden-may contribute to higher apparent vulnerability in contemporary prescribing populations. We do not claim to demonstrate a temporal increase in FQMT incidence or severity; this is presented as a testable proposition. We further outline, as a speculative and explicitly unvalidated mechanism, whether epigenetic modification of the mitochondrial DNA displacement loop (D-loop) could contribute to escalating toxicity on repeat exposure. We propose the Mitochondrial Vulnerability Score (MVS) as a candidate research instrument (not a clinical prescribing tool) and present five falsifiable predictions with study designs. We discuss, with explicit caution, whether severe FQMT might in future be considered an acquired mitochondrial disorder, and we specify the evidence that such a classification would require. All clinical, therapeutic, and prophylactic content is hypothesis-generating and requires prospective validation.
    Keywords:  acquired mitochondrial disease; fluoroquinolone; fluoroquinolone-associated multisystem toxicity; integrative and regenerative pharmacology; mitochondrial reserve capacity; mitochondrial toxicity; mitochondrial vulnerability threshold; tendinopathy
    DOI:  https://doi.org/10.3389/fphar.2026.1905942
  53. Nat Chem Biol. 2026 Oct 07.
      Understanding protein structure and function within mitochondria is essential for unraveling the molecular mechanisms underlying cellular energy production, stress response and disease. Here we present an approach for NMR observation of proteins within intact mitochondria by delivering proteins directly into isolated mitochondria via electroporation. Using this method, we investigate the interaction of α-synuclein with the mitochondrial membrane and examine how post-translational modifications regulate this interaction. In addition, we assessed the stability of GB1 and the dimerization of its variant within mitochondria, achieving quantitative insights into mitochondrial environmental impact on protein function. This approach offers a valuable framework for exploring mitochondria-related biomolecular events at atomic resolution within intact mitochondria, paving the way for a more comprehensive understanding of the molecular events governing mitochondrial health and dysfunction.
    DOI:  https://doi.org/10.1038/s41589-026-02314-x
  54. iScience. 2026 Oct 16. 29(10): 117517
      Polycystic kidney disease (PKD), the most common genetic nephropathy, is caused by the loss/loss of function of polycystin-1 (PC1) or 2 (PC2) and characterized by cyst formation and fibrosis. A key feature of PKD is mitochondrial fragmentation, but the underlying mechanism is unknown. Since PC1/PC2 loss induces RhoA activation and fibrogenesis, we hypothesized that RhoA might also trigger general and/or PC1/2 loss-induced mitochondrial fragmentation. We show that RhoA activation is sufficient to induce DRP1-mediated mitochondrial fission in tubular cells. Importantly, genetic or pharmacologic inhibition of RhoA or its effectors (ROCK/LIM kinase/cofilin, phospho-myosin or formins) prevents/reverses PC1/PC2 loss-provoked fragmentation. Fragmentation by active formins requires F-actin polymerizing capacity but not binding to INF2, a RhoA-independent, fission-mediating formin. PC1 re-expression or RhoA/RhoA effector inhibition restores mitochondrial morphology in human PKD cells. Mitochondrial fragmentation facilitates fibrogenesis. Thus, RhoA regulates mitochondrial shape, and RhoA-mediated actin polymerization/myosin activation is a central mechanism of PKD-associated mitochondrial fragmentation.
    Keywords:  Drp1; Rho-signaling; RhoA small GTPase; actin; cytoskeleton; fibrosis; formins; mitochondrial fragmentation; myosin; polycystic kidney disease
    DOI:  https://doi.org/10.1016/j.isci.2026.117517
  55. Diabetes. 2026 Oct 06. pii: db260413. [Epub ahead of print]
       ARTICLE HIGHLIGHTS: Loss of YME1L promotes podocyte senescence in diabetic kidney disease. YME1L deficiency induces sustained maladaptive integrated stress response activation. YME1L interacts with and regulates mitochondrial GRP75 homeostasis. GRP75 accumulation drives persistent integrated stress response activation and mitochondrial dysfunction.
    DOI:  https://doi.org/10.2337/db26-0413
  56. FASEB J. 2026 Oct 15. 40(19): e72346
      Mitochondria serve as the primary cellular powerhouses, generating ATP through oxidative phosphorylation (OXPHOS) to sustain essential cellular processes. Beyond energy production, mitochondria function as critical regulators of metabolic homeostasis, intracellular signaling networks, and programmed cell death pathways. The mitochondrial genome comprises 37 genes encoding 13 OXPHOS subunits, 22 transfer RNAs, and 2 ribosomal RNAs, all transcribed and translated within the organelle. Mitochondrial DNA integrity becomes compromised through diverse pathological stimuli, including metabolic dysregulation, oxidative stress, and inflammatory cascades, contributing to disease pathogenesis across multiple organ systems. This review synthesizes current knowledge on the multifaceted roles of mtDNA in health and disease. We propose a framework of three interconnected mechanisms through which mtDNA exerts its effects: (1) retrograde signaling to the nucleus, reprogramming nuclear gene expression; (2) cytosolic and extracellular release of mtDNA as a damage-associated molecular pattern (DAMP), activating innate immune pathways like cGAS-STING and NLRP3; and (3) intrinsic epigenetic modifications that directly modulate mitochondrial gene expression. We critically evaluate the evidence linking mtDNA alterations to a spectrum of diseases, including cancer, cardiovascular and metabolic disorders, neurodegeneration, and psychiatric conditions. We conclude that a comprehensive understanding of mtDNA's multifaceted nature, moving beyond its perception as a mere DAMP, is essential for translating mitochondrial biology into effective clinical interventions.
    Keywords:  diseases process; mitochondrial function; molecular mechanisms; mtDNA; pathophysiology
    DOI:  https://doi.org/10.1096/fj.202600927R