bims-mitdis Biomed News
on Mitochondrial disorders
Issue of 2026–10–04
fifty-six papers selected by
Catalina Vasilescu, Helmholz Munich



  1. Science. 2026 Oct;394(6819): eadz4797
      Adipocyte lipid metabolism is coordinated by circadian rhythms, diet, and environmental temperature, but how these diverse signals are molecularly integrated remains unknown. We showed that these cues converge on the orphan mitochondrial transporter SLC25A34 to orchestrate lipid cycling. During the sleep phase, the adipocyte clock suppresses Slc25a34 expression through the REV-ERB transcriptional repressors. Entering the active phase, consuming lipid-rich diets, or exposure to cold abolishes REV-ERB repression, and lipolytic signals stimulate Slc25a34 transcription through the peroxisome proliferator-activated receptors. SLC25A34 is proposed to import oxaloacetate into mitochondria, dually supporting the tricarboxylic acid cycle and cytosolic acetyl-coenzyme A (acetyl-CoA) production. Elevated cytosolic acetyl-CoA then fuels the synthesis of lipids and promotes the transcription of genes enhancing mitochondrial oxidation. Thus, SLC25A34 confers circadian, dietary, and temperature control of adipocyte lipid metabolism.
    DOI:  https://doi.org/10.1126/science.adz4797
  2. J Biol Chem. 2026 Sep 29. pii: S0021-9258(26)02483-X. [Epub ahead of print] 113611
      Mitochondrial DNA (mtDNA) transcription is essential for cellular energy production and is carried out by a streamlined transcription system in which transcription factor A (TFAM), transcription factor B2 (TFB2M), and the mitochondrial RNA polymerase (PolRMT) assemble at defined promoters to initiate transcription. Previous structural studies elucidated the core initiation mechanism but relied on truncated promoter templates that excluded upstream regulatory DNA interactions. Here, we present two conformations of mitochondrial transcription initiation complexes assembled on the heavy-strand promoter (HSP): a TFAM-bound complex with extended upstream DNA and a TFAM-free complex containing short linear DNA. The TFAM-bound structure reveals a transcription-stimulatory interface between PolRMT and the upstream DNA, termed upstream backbone interface (UBI), enabled by TFAM-induced promoter bending. Consistent with this structural observation, UBI truncation reduces transcription from all mtDNA promoters, an effect abolished by mutation of the PolRMT interface. In contrast, the TFAM-free structure reveals a transcription-inhibitory interaction of linear upstream DNA with the PolRMT tether helix, which would sterically clash with TFAM binding. Deletion of the tether helix increases off-target transcription, supporting an autoinhibitory role that enhances promoter specificity. Together, these findings reveal how interactions of TFAM and PolRMT with upstream DNA influence activity and specificity of mitochondrial transcription initiation.
    Keywords:  Mitochondria; PolRMT; TFAM; mitochondrial DNA (mtDNA); transcription; transcription initiation
    DOI:  https://doi.org/10.1016/j.jbc.2026.113611
  3. Nat Commun. 2026 Sep 26. pii: 10234. [Epub ahead of print]17(1):
      Mitochondrial crista junctions (CJs) operate as regulated gateways into the cristae microenvironment, whose protein, metabolite, and ion compositions are finely tuned for mitochondrial function. The Mic60-Mic19 complex of the mitochondrial contact site and cristae organizing system (MICOS) complex was suggested to span across CJs and act as a diffusion barrier, but little is known of how its dynamic architecture facilitates this task. To address this question, we determine the crystal structure of an amino-terminal dimeric helical bundle of human Mic60. These and previous structural and biochemical data are harnessed in molecular dynamic (MD) simulations to develop a dynamic model of the human tetrameric Mic60-Mic19 subcomplex in the CJ environment, to validate its architecture using in organello and in vitro cross-linking data and to computationally characterize its function as a diffusion barrier. Our integrative structural biology approach enables the functional investigation of flexible, multidomain protein complexes which escape conventional structural methods.
    DOI:  https://doi.org/10.1038/s41467-026-77869-3
  4. Cell. 2026 Oct 01. pii: S0092-8674(26)01072-X. [Epub ahead of print]189(20): 6214-6216
      In this issue of Cell, Chen et al. chart mitochondrial proteome diversity across eukaryotes, revealing an unexpectedly complex ancestral proteome alongside extensive lineage-specific innovation. Their broad phylogenetic reconstruction provides new insights into the mitochondrial proteome of the last eukaryotic common ancestor while unearthing a wealth of unexplored mitochondrial biology outside of traditional model systems.
    DOI:  https://doi.org/10.1016/j.cell.2026.09.003
  5. Dis Model Mech. 2026 Sep 01. pii: dmm052804. [Epub ahead of print]19(9):
      Mitochondria are critical cellular organelles engaged in energy production, diverse intermediary metabolic functions and signaling. Inherited genetic disorders directly affecting mitochondrial structure and/or function, known collectively as primary mitochondrial diseases, are among the most complex and heterogeneous inherited conditions, involving dual-genome origin, multisystem manifestations and widely variable clinical severity. These diseases can follow different inheritance patterns and are caused by pathogenic variants in nearly 400 genes encoded by either the mitochondrial or nuclear genome, which commonly impair proteins or RNAs in distinct molecular pathways, resulting in defective energy production by disrupting oxidative phosphorylation. Mitochondrial diseases are challenging to accurately diagnose because of their extensive clinical variability and common features with other metabolic and neuromuscular disorders, as well as limitations in existing diagnostic tools. However, advances in molecular genetics, imaging and systems biology have transformed the diagnostic landscape, enabling more comprehensive and integrative approaches. This Review provides an overview of mitochondrial physiology and outlines the current state of diagnostic strategies, ranging from conventional biochemical assessments and tissue-based analyses to next-generation genome-wide sequencing and the emerging omics technologies. We discuss how combining classical and modern methods can improve diagnostic accuracy and inform clinical decision making. Additionally, we highlight the need for continued refinement of diagnostic frameworks to better support personalized management and future therapeutic development in mitochondrial medicine.
    Keywords:  Mitochondrial diagnostics; Mitochondrial disease biomarkers; Multi-omics; Primary mitochondrial disease; mtDNA sequencing
    DOI:  https://doi.org/10.1242/dmm.052804
  6. Philos Trans R Soc Lond B Biol Sci. 2026 Oct 01. pii: 20250271. [Epub ahead of print]381(1960):
      Mitochondria are the powerhouse of the cell, playing vital roles in energy production and metabolism. Most mitochondrial proteins are encoded in the nuclear DNA and must be synthesized in the cytosol before being transported into the appropriate mitochondrial compartments. Mitochondrial protein import is not only essential for mitochondrial biogenesis but also a crucial regulatory step in mitochondrial proteostasis surveillance and stress response. Additionally, defects in mitochondrial protein import lead to mislocalization of precursor proteins to the cytosol, disrupting cytosolic proteostasis and contributing to various human diseases. This review summarizes recent findings demonstrating that mitochondrial protein import is a key regulator of cellular proteostasis. This article is part of the Theo Murphy meeting issue 'ProteostaSys: a systems view of proteostasis'.
    Keywords:  mitochondria; protein import; proteostasis; stress response
    DOI:  https://doi.org/10.1098/rstb.2025.0271
  7. Assay Drug Dev Technol. 2026 Sep 30. 1540658X261490394
       Mitochondrial protein import is essential for overall cellular homeostasis, yet scalable approaches to systematically interrogate mitochondrial protein import and identify modulators of this process remain limited. Here, we describe a yeast-based, gain-of-growth (GoG), high-throughput screening assay for the identification of small-molecule modulators of mitochondrial protein import. In this system, truncated human proteins that contain N-terminal mitochondrial targeting sequences (MTSs) are expressed in S. cerevisiae, where mitochondrial protein import is coupled to an auxotrophic growth readout. Disruption of import leads to cytosolic accessibility of the URA3 reporter, producing a GoG phenotype under selective conditions. As a proof of concept, we applied this model to PTEN-induced kinase 1 (PINK1), a mitochondrial imported regulator of mitochondrial quality control. Using this approach, we demonstrate the ability to monitor PINK1 import and identify candidate compounds that modulate this process. Collectively, this work establishes a scalable and reproducible platform for interrogating mitochondrial protein import and identifying compounds for downstream validation in mammalian systems.
    Keywords:  N-terminal targeting sequence; PINK1; high-throughput screening; mitochondrial protein import
    DOI:  https://doi.org/10.1177/1540658X261490394
  8. Science. 2026 Oct;394(6819): 29-30
      An orphan protein integrates circadian, dietary, and environmental signals to control brown fat metabolism.
    DOI:  https://doi.org/10.1126/science.ael7271
  9. Mol Cell. 2026 Oct 01. pii: S1097-2765(26)00620-9. [Epub ahead of print]86(19): 4043-4057.e7
    MitoCarta Tree of Life Consortium
      The mitochondrial proteomes of Leishmania tarentolae and Trypanosoma brucei contain ∼1,700 proteins, most of which lack homologs in higher eukaryotes. Here, we integrate complexome profiling and cryo-electron microscopy to define conserved and lineage-specific macromolecular assemblies that support mitochondrial functions in these kinetoplastid protozoa. Comparative analyses reveal species- and life-stage-dependent differences in the abundance and composition of respiratory, metabolic, RNA processing, and other complexes, refining and expanding current annotations. Structures of L. tarentolae respiratory complex III2 (CIII2), complex IV2 (CIV2), and complex V (CV) identify nine previously unrecognized nuclear-encoded subunits and resolve five mitochondrially encoded proteins, including products of pan-edited mRNAs. These reconstructions uncover architectural innovations: a subunit 8 of ubiquinol cytochrome-c reductase (QCR8) N-terminal extension that plugs the vestigial mitochondrial processing peptidase (MPP)α/β cavity in CIII2, a CIV2 dimer stabilized by an extensive clade-restricted interface, and a CV dimer containing the mitochondrially encoded ATP6 subunit. Together, our findings reveal how kinetoplastids assemble specialized mitochondrial machinery while incorporating diverged components into core modules shared across eukaryotes.
    Keywords:  Leishmania; RNA editing; Trypanosoma; complexome profiling; cryo-EM; kinetoplastids; mass spectrometry; mitochondria; respiratory complexes
    DOI:  https://doi.org/10.1016/j.molcel.2026.08.031
  10. Cell. 2026 Oct 01. pii: S0092-8674(26)01068-8. [Epub ahead of print]189(20): 6307-6324.e7
    MitoCarta Tree of Life Consortium
      Oxidative phosphorylation (OXPHOS) is a key metabolic process that couples redox energy to ATP production. While some core OXPHOS complex subunits are found across all domains of life, many have diverged or expanded across evolution-as seen in the protozoan pathogen Acanthamoeba castellanii. By integrating cryo-electron microscopy of unenriched mitochondrial lysate with mass spectrometry proteomics, we resolved the structures of endogenous mitochondrial ATP synthase (complex V), Hsp60, and respiratory complex III from Acanthamoeba. We capture Acanthamoeba ATP synthase in an IF1-inhibited state and reveal how Acanthamoeba-specific subunits and extensions stabilize the molecular machine, which includes a β subunit extension that interfaces with the peripheral stalk. Additionally, we characterize an active malate dehydrogenase (MDH) dimer structurally integrated within the ATP synthase peripheral stalk, thus revealing a direct protein tether between OXPHOS and the tricarboxylic acid cycle. Together, these findings provide structural insight into lineage-specific adaptations in Acanthamoeba that may tune protozoan metabolism.
    Keywords:  ATP synthase; Acanthamoeba; complex V; cryo-EM; crystallography; malate dehydrogenase; mitochondria; oxidative phosphorylation; respiratory complexes; tricarboxylic acid cycle
    DOI:  https://doi.org/10.1016/j.cell.2026.08.057
  11. Nat Aging. 2026 Sep 29.
      Aging paradoxically leads to both a decline in skeletal muscle mitochondrial function and a shift in muscle composition that favors fibers rich in mitochondria. Yet the biological rationale and mechanism underlying this phenomenon remain largely unknown. Here we show that synthesis of the mitochondrial membrane lipid, cardiolipin, causally links mitochondrial dysfunction to fiber-type adaptations in aging mouse and human skeletal muscle. By mimicking the aging decline of skeletal muscle cardiolipin levels in young mice using inducible tissue-specific cardiolipin synthase 1 (Crls1) deletion, we could reproduce key aging hallmarks, including the shift from glycolytic to oxidative fibers. This shift is mediated by mitochondria-to-nucleus signaling through the nuclear receptor, estrogen-related receptor γ, which promotes reactive oxygen species-sensitive glucose uptake and enhanced glycolytic rerouting to sustain antioxidant defenses. Restoring Crls1 expression in adult Crls1 knockout mice reestablishes cardiolipin levels, initiates reversal of muscle atrophy and fully rescues premature mortality. These findings reveal how changes in a mitochondrial membrane lipid cell autonomously orchestrate fiber-type adaptations in aging and myopathies.
    DOI:  https://doi.org/10.1038/s43587-026-01227-7
  12. Cell. 2026 Oct 01. pii: S0092-8674(26)01067-6. [Epub ahead of print]189(20): 6246-6266.e19
    MitoCarta Tree of Life Consortium
      Acanthamoeba castellanii causes infectious blindness and resides in a key evolutionary outgroup to humans and fungi. Its divergent mitochondria are of outstanding interest due to their predicted aerobic and anaerobic functions with potential for drug targeting. However, a detailed delineation of its bioenergetic machinery, its activities, and their regulation remains lacking. Here, we integrate mitochondrial immunoprecipitation, density gradient purification, mass spectrometry, protein correlation profiling, and microscopy to generate a high-confidence inventory of the Acanthamoeba mitoproteome. The resulting AcMitoCarta contains 1,122 proteins, including 381 lacking readily identifiable homologs in human and yeast mitochondria. Complexome analysis highlights 20 macromolecular assemblies. Complementary proteomic and transcriptomic profiling reveals extensive rewiring of the organelle's bioenergetic machinery by oxygen, including induction of an anaerobic pyruvate:ferredoxin oxidoreductase-to-hydrogenase pathway under anoxia. We experimentally demonstrate that Acanthamoeba can produce H2 gas under anoxic conditions via a mitochondria-localized, oxygen-labile hydrogenase. AcMitoCarta establishes a framework for dissecting the interplay between aerobic and anaerobic energy metabolism.
    Keywords:  ATP synthase; Acanthamoeba; BN-PAGE-MS; HCP; HGT; HupA; HydA; HydE; HydF; HydG; MDH; NDH2; NirK; PFOR; SDHB; TFAM; complex I; hybrid cluster protein; mitochondria; mitochondrial ribosome
    DOI:  https://doi.org/10.1016/j.cell.2026.08.056
  13. Front Cell Dev Biol. 2026 ;14 1943282
      Mitochondrial dynamics has long been interpreted primarily through fission and fusion, yet tubular mitochondria can also undergo rapid pearling, a phenomenon in which elongated mitochondria reorganize into a beads-on-a-string morphology while retaining a continuous imaged contour. The occurrence and biological relevance of mitochondrial pearling require careful study. The dimensionless tension-bending ratio used to organize these observations is a heuristic analogy to single-membrane tubes, not a validated quantitative model of the mitochondrial double membrane. Evidence does not yet establish a continuous sequence from pearling through coordinated outer- and inner-membrane scission to mitophagy or intercellular mitochondrial transfer; those links are therefore presented as hypotheses and testable predictions. We use the provisional term "candidate disease-associated sustained pearling phenotype" only for within-study events that meet dynamic pearling criteria and show longer duration or delayed/failed reversal relative to appropriately matched controls. No universal duration threshold or validated pearling-defined disease entity currently exists. Event duration, wavelength, un-pearling kinetics, separate outer- and inner-membrane continuity, and the fate of individual pearls should be measured together to determine whether sustained events are incidental, adaptive, or causally involved in disease.
    Keywords:  Ca2+; mitochondrial pearling; mitochondrial transfer; mitophagy; mtDNA nucleoid; neurological disease; sustained pearling phenotype
    DOI:  https://doi.org/10.3389/fcell.2026.1943282
  14. bioRxiv. 2026 Sep 23. pii: 2026.09.19.752713. [Epub ahead of print]
      Communication between peroxisomes and mitochondria is essential for cellular metabolic homeostasis, yet how peroxisomal import stress impacts mitochondria function during aging and cellular senescence remains poorly defined. Using a genome-wide CRISPR screening in HEK293 cells under peroxisome import stress, we identified SCAF1 (SR-related CTD-associated factor 1) a known canonical nuclear pre-mRNA splicing factor, as an essential regulator of mitochondrial homeostasis. Under peroxisome stress SCAF1 undergoes proteolytic processing and translocates to the mitochondria, where its N-terminal region acts as an autonomous repressor module that blocks mitoribosomal subunit joining. Consequently, SCAF1 depletion accelerates subunit joining and elevates oxidative phosphorylation protein levels, whereas its overexpression in IMR90 fibroblast cells triggers robust cellular senescence characterized by increased senescence associated β gal staining. Together, our findings uncover a stress-responsive peroxisome-to-mitochondria signaling axis mediated by SCAF1 translocation. This pathway directly modulates mitoribosome assembly to maintain translational homeostasis, providing a precise molecular mechanism for how upstream peroxisomal decline drives downstream mitochondrial dysfunction and cellular senescence.
    DOI:  https://doi.org/10.64898/2026.09.19.752713
  15. Life Sci Alliance. 2026 Dec;pii: e202503535. [Epub ahead of print]9(12):
      Lon protease 1 (LONP1) is a conserved hexameric protease implicated in mitochondrial disorders and cancer progression. In this study, we present PZL-26, a potent and selective small-molecule inhibitor that targets LONP1 without affecting the proteasome, leading to selective accumulation of mitochondrial proteins. Using PZL-26 in a whole-genome CRISPR-Cas9 screen, we identified genes essential for cell survival under protease inhibition, supporting a role for LONP1 in key mitochondrial processes, including complex I biogenesis, mitochondrial transcription, and translation. Our CRISPR screen results are consistent with proteomics analysis, with both approaches converging on the same mitochondrial pathways and highlighting functional interactions between LONP1 and other mitochondrial proteases, including potential compensatory mechanisms. These findings establish PZL-26 as an effective tool for exploring LONP1 function and pave the way for future therapeutic strategies targeting LONP1 in mitochondrial diseases and cancer.
    DOI:  https://doi.org/10.26508/lsa.202503535
  16. Philos Trans R Soc Lond B Biol Sci. 2026 Oct 01. pii: 20250500. [Epub ahead of print]381(1960):
      Acquiring new cellular states entails metabolic reprogramming driven by changes in the expression of cytosolic and mitochondrial metabolic enzymes. Most mitochondrial proteins are synthesized in the cytosol and imported into the mitochondria in a linear form, after which they are folded by a network of mitochondrial chaperones and co-chaperones. Which mitochondrial protein is dependent upon which chaperone for its folding is largely unknown. HSPD1/HSPE1 (HSP60/HSP10) are evolutionarily conserved mammalian homologues of the bacterial proteins GroEL/GroES, forming a chamber-and-lid chaperonin to facilitate the folding of client proteins. The endogenous clients of HSP60 in mammalian cells are not fully known, nor are the HSP60 clients that require HSP10 for folding. We used gene knockdown and stable isotope labelling of amino acids in cell culture (SILAC)-based proteomics to identify HSPD1 client proteins. We found that HSPD1 supports the expression of methylenetetrahydrofolate dehydrogenase 2 (MTHFD2), a key mitochondrial one-carbon (1C) pathway enzyme, in cells and tumours. In addition, HSPD1 directly folds MTHFD2 independently of its co-chaperone HSPE1. HSPD1 interacts with MTHFD2 in mitochondria, and MTHFD2 is degraded by LONP1 in HSPD1 knockdown cells. Our data show that HSPD1 is an MTHFD2 chaperone and can fold an endogenous client protein independently of HSPE1, providing a link between mitochondrial protein folding and the 1C pathway. This article is part of the Theo Murphy meeting issue 'ProteostaSys: a systems view of proteostasis'.
    Keywords:  HSPD1; MTHFD2; cancer; chaperones; mitochondria; one-carbon
    DOI:  https://doi.org/10.1098/rstb.2025.0500
  17. bioRxiv. 2026 Sep 27. pii: 2026.09.24.754271. [Epub ahead of print]
      Mutations in the mitochondrial genome (mtDNA) play a critical role in the aging process and a wide variety of age-related diseases. However, it remains unclear when the mutations that drive physiological decline arise. To answer this question, we generated a new mouse model in which mitochondrial mutagenesis can be confined to a defined window of time. Surprisingly, we found that mutations that arise during the first two months of life are sufficient to drive a wide variety of age-related pathologies, and that the severity of this pathology is broadly regulated by distinct, tissue-specific selective pressures that control the fate of mtDNA mutations with age. Further, we found that selection against deleterious variants can be modulated by manipulation of mitochondrial fusion in vitro and in vivo. These observations raise the possibility that in some tissues, the pace of aging is pre-determined by events that occur early in life and that interventions targeting mitochondrial fusion may be able to slow down or reverse the expansion of these pathogenic variants. These results carry far-reaching implications for strategies aimed at preventing or delaying age-related decline.
    DOI:  https://doi.org/10.64898/2026.09.24.754271
  18. ACS Sens. 2026 Sep 27.
      The last decade has witnessed a marked increase in interest in mitochondria, whose dysfunction leads to the development of multiple diseases. Mitochondria are unique as they are highly compartmentalized organelles that are composed of two closely apposed membranes. Here, we developed a series of bioluminescence resonance energy transfer (BRET)-based localization sensors that accurately report the localization and orientation of mitochondrial proteins (TOM20, TOM22, VDAC1, MICU1, ATP5F1C, OTC, and SIRT3) within their respective mitochondrial compartments. These biosensors also dynamically detect stressor-induced translocation of cytosolic proteins, such as Drp1 and BAX, to mitochondria. Screening of a series of endocrine disruptors with our BRET sensors uncovered deleterious effects of paraquat, di-tert-butyl-4-methylphenol, and 4-hydroxynonenal on mitochondrial protein localization. Altogether, the localization sensors provide noninvasive tools to monitor mitochondrial protein localization in a time-resolved manner, with nanometer-scale resolution, in intact cells exposed to diverse cellular stressors.
    Keywords:  BAX; BRET; Drp1; VDAC; biosensors; mitochondria
    DOI:  https://doi.org/10.1021/acssensors.6c01115
  19. Cell. 2026 Oct 01. pii: S0092-8674(26)01076-7. [Epub ahead of print]189(20): 6243-6245
      Our textbook view of mitochondria, which has been shaped by studies in animals and yeast, fails to do justice to the organelle's broader eukaryotic diversity. While most mitochondria retain a tiny genome, the overwhelming majority of their proteins are nuclear-encoded and vary extensively across lineages. To map this diversity, the MitoCarta Tree of Life Consortium developed experimental and computational workflows to generate high-accuracy mitochondrial proteomes across diverse eukaryotes-helping to lay a foundation for comparative mitochondrial biology with broad implications for physiology, evolution, and disease.
    DOI:  https://doi.org/10.1016/j.cell.2026.09.007
  20. Curr Biol. 2026 Oct 01. pii: S0960-9822(26)01123-1. [Epub ahead of print]
    MitoCarta Tree of Life Consortium
      Babesia are tick-transmitted apicomplexan parasites of widespread medical and veterinary importance. Although atovaquone, a first-line therapy for human babesiosis, targets one of the three proteins encoded by mitochondrial DNA, a full characterization of the nuclear-encoded mitochondrial proteome is lacking. Here, we combined organelle immunoprecipitation and density gradient separation to enrich mitochondria from Babesia divergens. Using protein mass spectrometry and protein correlation profiling, we generated B. divergens MitoCarta (BdMitoCarta), a high-confidence inventory of 525 mitochondrial proteins. The B. divergens mitoproteome is broadly conserved across Apicomplexa, which, as a clade, have undergone reductive evolution. As seen in other apicomplexans, metabolite transport and the TCA cycle have diverged, with loss of the pyruvate dehydrogenase complex, presence of malate:quinone oxidoreductase, and a class I fumarate hydratase. Specific to Babesia is the presence of two mitochondrial isocitrate dehydrogenase homologs. Using isolated mitochondria, we performed blue native PAGE complexome analysis and detected previously uncharacterized proteins co-migrating with the ATP synthase and mitochondrial ribosome. Our work has yielded the first mitochondrial proteome and complexome for Babesia, which we expect to be a valuable resource for understanding the evolution of apicomplexan parasites for future therapeutic development.
    Keywords:  ATP synthase; Apicomplexa; Babesia; Plasmodium; Toxoplasma; electron transport chain; isocitrate dehydrogenase; mitochondria; mitochondrial ribosome; proteome
    DOI:  https://doi.org/10.1016/j.cub.2026.08.072
  21. Mol Cell. 2026 Oct 01. pii: S1097-2765(26)00616-7. [Epub ahead of print]86(19): 4058-4074.e8
    MitoCarta Tree of Life Consortium
      Trypanosoma brucei and Leishmania tarentolae are model kinetoplastids whose mitochondria contain a unique DNA network, kinetoplast DNA (kDNA), and exhibit specialized features, including developmental remodeling and RNA editing. By integrating mass spectrometry-based protein correlation profiling with published datasets, we assembled inventories of 1,666 mitochondrial proteins in T. brucei and 1,594 in L. tarentolae. These include 124 polypeptides not previously recognized as mitochondrial. Despite their phylogenetic distance, trypanosomes and leishmanias maintain highly conserved mitoproteomes, including about 700 components with no detectable homologs in other eukaryotes. Comparison of T. brucei insect and mammalian stages revealed similar mitoproteome compositions but globally reduced mitochondrial protein abundance in the latter, except for components of calcium homeostasis and the alternative oxidase pathway. We also detected ten kDNA-encoded proteins, including products of pan-edited transcripts. These inventories establish a framework for functional analysis of previously uncharacterized mitochondrial factors and illuminate innovations that have shaped kinetoplastid evolution.
    Keywords:  DIA-mass spectrometry; Leishmania; MitoCarta; Trypanosoma; comparative proteomics; kinetoplastids; mitochondria; protein correlation profiling
    DOI:  https://doi.org/10.1016/j.molcel.2026.08.032
  22. Cell Rep. 2026 Sep 30. pii: S2211-1247(26)01146-0. [Epub ahead of print]45(10): 118067
      The mitochondrial prohibitin (PHB) complex is essential for mitochondrial homeostasis, yet its depletion produces opposite effects on lifespan: shortening it in wild-type C. elegans but extending it in insulin/IGF-1 receptor daf-2 mutants, which show an attenuated mitochondrial unfolded protein response (UPRmt). To identify regulators of this differential stress response and its role in aging, we conducted the first genome-wide double-RNAi screen in C. elegans. We identify the ubiquitin-specific peptidase USP-48 as a modulator of the UPRmt, specially required for lifespan extension under reduced insulin signaling. USP-48 influences mitochondrial structure and function and cooperates with the transcription factor DVE-1 to regulate the UPRmt largely independent of activating transcription factor associated with stress-1 (ATFS-1). Tissue-specific analysis shows that USP-48 is required for lifespan primarily in the hypodermis, with a smaller germline contribution, but is dispensable in muscle and intestine. Mechanistically, USP-48 promotes histone H2B deubiquitination to shape stress-responsive transcription, revealing ubiquitination as a key determinant of metabolism-dependent longevity.
    Keywords:  CP: metabolism; H2B ubiquitination; PHB complex; UPR(mt); USP-48; daf-2; insulin signaling; longevity; mitochondria; prohibitin; transcription
    DOI:  https://doi.org/10.1016/j.celrep.2026.118067
  23. Sci Adv. 2026 Oct 02. 12(40): eaeh7186
      Maintenance of fissed mitochondria is viewed as a defining feature of Kirsten rat sarcoma viral oncogene homolog (KRAS)-mutant cancers. However, regulation of this process by accompanying comutations or environmental factors is not clearly defined. Here, by analyzing a subset of pancreatic cancer lesions driven by concurrent KrasG12D and GNAS complex locus gene (GNASR201C/H) mutations, we found that despite the presence of mutant Kras, hyperactive GnasR201C maintains mitochondria predominantly in a fused state, which is necessary for tumor growth. Multiplex proteomics, super-resolution microscopy, loss- and gain-of-function studies, coupled with metabolite rescue experiments, revealed that GnasR201C-regulated branched-chain amino acid (BCAA) pathway is a previously unidentified regulator of mitochondrial morphology. Mechanistically, the BCAA pathway, the associated tricarboxylic acid cycle, and aspartate metabolism converge on nicotinamide adenine dinucleotide (NADH-NAD+) metabolites to promote mitochondrial elongation. NAD+ availability is crucial for mitochondrial fusion, as facilitating NAD+ generation through alternative means promotes fusion. Collectively, we unraveled a new mechanism that drives mitochondrial fusion and showed that the combination of oncogenic signaling and metabolism can maintain distinct mitochondrial morphology within genetic subsets of KRAS-mutant pancreatic cancer.
    DOI:  https://doi.org/10.1126/sciadv.aeh7186
  24. bioRxiv. 2026 Sep 09. pii: 2026.09.04.749533. [Epub ahead of print]
      Iron is an essential element that plays a critical role in mitochondrial bioenergetics, yet its excess is cytotoxic and contributes to the development of neurodegenerative diseases such as Parkinson's disease (PD). Impaired Complex I (CI) activity, which can be caused by exposure to the environmental toxin rotenone, is implicated in PD. The mechanistic underpinnings connecting iron dyshomeostasis to cytotoxicity remain unclear, which creates challenges towards preventing neuronal cell death in PD. We hypothesized that CI inhibition is sufficient to disrupt cellular iron homeostasis via reactive oxygen species (ROS) generation. Using SH-SY5Y cells differentiated into dopaminergic neurons, we show that rotenone-induced CI inhibition increases ROS, promotes oxidative stress and cytotoxicity, and drives a redistribution of labile iron. Specifically, mitochondrial and total cellular iron levels increase, while cytosolic labile iron is reduced. Antioxidant treatment blocks both ROS production and iron accumulation, suggesting that ROS is critical for iron maldistribution in our system. Conversely, iron chelation suppresses ROS propagation, suggesting a positive feedback loop in which iron further amplifies oxidative stress. Our data are consistent with a greater sensitivity of mitochondrial [4Fe-4S]-containing proteins relative to the [2Fe-2S] proteins examined, potentially contributing to mitochondrial iron retention. Together, these findings establish a mechanistic link between mitochondrial dysfunction and iron dyshomeostasis and offer insights into how environmental CI inhibitors contribute to the pathogenesis of PD. More broadly, this work may have relevance to sporadic PD and other genetic or age-related disorders associated with iron accumulation and mitochondrial diseases such as Leigh Syndrome.
    DOI:  https://doi.org/10.64898/2026.09.04.749533
  25. Adv Sci (Weinh). 2026 Sep 27. e77713
      Mitochondria, as organelles with a critical role in maintaining cellular activities, are also vulnerable to dysfunction, which contributes substantially to the pathogenesis of various systemic diseases. Nanomaterials, owing to their tunable physicochemical properties and precise bio-interfacial capabilities, offer innovative platforms not only for delivering general mitochondria-targeted therapy but also for enabling-with promising potential-the emerging paradigms of mitochondrial transfer and transplantation. Nevertheless, a dedicated review systematically summarizing progress in this specific subfield is lacking. To fill this knowledge gap, this review provides a structured synthesis that spans from the biological basis of mitochondrial function and transfer to the broad applications of nanomaterials in mitochondria-targeted therapies, with a dedicated analysis of their roles in mitochondrial targeting, functional modulation, and gene editing. A key topic of this review is the emerging role of nanomaterials in assisting mitochondrial transplantation and transfer. By integrating these insights, this work bridges nanotechnology and mitochondrial medicine, offering a valuable resource for developing organelle-specific therapeutics.
    Keywords:  mitochondria; mitochondrial transfer; mitochondrial transplantation; nanomaterials; nanotherapeutics
    DOI:  https://doi.org/10.1002/advs.77713
  26. Sci Adv. 2026 Oct 02. 12(40): eaeg0399
      N4-acetylcytidine (ac4C) is installed by N-acetyltransferase 10 (NAT10) and represents the only known acetylation mark on messenger RNA. Since NAT10 also acetylates transfer RNA, ribosomal RNA (rRNA), and proteins, its in vivo molecular mechanisms remain elusive. Here, we demonstrate that knockdown of Drosophila NAT10 induces an eye-to-antenna transformation, c-Jun amino-terminal kinase activation, and cell apoptosis. NAT10 facilitates ac4C modification in rRNA, and its loss impairs rRNA processing and ribosomal assembly. Depletion of NAT10 activates the integrated stress response, ultimately leading to reduced global protein synthesis. Crucially, Xrp1 plays a key role in the stress response and its ablation rescues most NAT10 loss-of-function defects and transcriptomic alterations. We also performed acetylated RNA immunoprecipitation and sequencing (acRIP-seq) on control and NAT10 knockdown flies. Furthermore, a catalytically deficient form of NAT10, which is unable to mediate ac4C acetylation, completely rescues the lethality of NAT10 mutants. Collectively, these findings establish that NAT10's primary developmental function stems from its roles in ribosome biogenesis and Xrp1 activation, which are independent of its RNA acetylation activity.
    DOI:  https://doi.org/10.1126/sciadv.aeg0399
  27. Cell. 2026 Oct 01. pii: S0092-8674(26)01000-7. [Epub ahead of print]189(20): 6267-6284.e9
    MitoCarta Tree of Life Consortium
      Plant mitochondria share many features with animal mitochondria but also possess unique traits, including presence of both circular and linear mitochondrial DNA, RNA editing, a branched electron transport chain, and metabolic pathways supporting photosynthesis. An accurate mitochondrial proteome is crucial for studying these conserved and lineage-specific functions. Here, we introduce a novel approach to defining plant mitoproteomes that combines serial mitochondrial enrichment, mass spectrometry, and protein correlation profiling. This approach allows us to experimentally define a mitochondrial protein inventory of 1,462 proteins with high sensitivity and specificity. Integration of our experimental inventory with literature and microscopy validation yields the Arabidopsisthaliana MitoCarta (AtMitoCarta) atlas of 1,609 mitochondrial proteins, including 236 newly defined proteins and 147 proteins of unknown functions. A comparative analysis across eukaryotic organisms reveals that 15% of mitochondrial protein families are plant specific, including expanded pentatricopeptide repeat proteins. The AtMitoCarta inventory and the experimental workflow applicable to wild-type plants will enable comparative studies of plant mitochondria.
    Keywords:  Arabidopsis; MitoCarta; calcium uniporter; mitochondria; pentatricopeptide repeat; protein correlation profiling; proteomics
    DOI:  https://doi.org/10.1016/j.cell.2026.08.027
  28. mBio. 2026 Sep 29. e0207126
      Intrinsic, cell-autonomous antiviral defenses can restrict infection without involving paracrine interferon (IFN) programs. Previous studies have demonstrated the importance of intact mitochondrial homeostasis in antiviral immunity. Mitochondrial antiviral signaling (MAVS) protein is a critical adaptor molecule in the RLR pathway that regulates IFN production in response to RNA viral infections. Here, we identify a potent intrinsic antiviral immunity that is orchestrated through stable mitochondria. We further identify MAVS as a regulator of mitochondrial import machinery whose activity is required for an IFN-independent antiviral state. Loss of MAVS leads to severe mitochondrial fragmentation, depolarization, and mitophagy, accompanied by diminished mitochondrial bioenergetics and protein import. Mechanistically, MAVS maintains mitochondrial integrity by maintaining the expression and assembly of the translocase of the outer membrane complex and sustaining the abundance of its core components. Restoration of MAVS expression reverses these defects and reinstates a robust antiviral state. Remarkably, this mitochondrial-driven immunity efficiently restricts SARS-CoV-2 replication even under IFN-deficient conditions and operates alongside the IFN pathways during infection by RNA viruses, such as the Japanese encephalitis virus. Our findings reveal a mitochondrial maintenance function of MAVS that operates in parallel to, and independently of, canonical interferon signaling during RNA virus infection. These findings highlight mitochondrial integrity as a common determinant behind a broad, collective antiviral immunity that involves both intrinsic and IFN-dependent mechanisms.IMPORTANCEHow do mitochondria contribute to the intrinsic cellular antiviral defense even when the primary immune arsenal is silenced? This work reveals that MAVS, long known for triggering interferon, acts as a vital bridge that stabilizes mitochondria to impart a potent intrinsic antiviral state against RNA viruses. We show that MAVS serves as a structural guardian of the organelle, a function it orchestrates by stabilizing the translocase of the outer membrane complex, the essential gateway for mitochondrial protein import. When MAVS is lost or targeted by viruses like SARS-CoV-2 and Japanese encephalitis virus (JEV), this gateway collapses, leading to organelle failure that viruses exploit. Crucially, we demonstrate that MAVS can restrict viral replication entirely independently of traditional interferon signaling. This discovery shifts our understanding of MAVS from a simple signal transducer to a multidimensional protector. By safeguarding the cell's "powerhouse," MAVS provides a fundamental layer of intrinsic immunity that remains active even when other immune responses are evaded.
    Keywords:  DENV; JEV; MAVS; RLR pathway; RNA viruses; SARS-CoV-2; host-pathogen interactions; interferon-independent; mitochondrial dynamics; mitophagy; protein import; viral replication
    DOI:  https://doi.org/10.1128/mbio.02071-26
  29. CNS Neurosci Ther. 2026 Oct;32(10): e71180
       BACKGROUND: Gliomas are metabolically heterogeneous tumors in which mitochondria coordinate bioenergetics, biosynthesis, redox homeostasis, stress adaptation, and treatment responses. This review examines mitochondrial dependencies across glioma subtypes and cell states.
    METHODS: We synthesized evidence on mitochondrial integration of glucose, amino acid and protein, lipid, and nucleotide metabolism, together with mitochondrial genetics, signaling, intercellular transfer, and barriers to therapeutic translation in gliomas.
    RESULTS: Glioma glucose metabolism does not follow a uniform Warburg phenotype. IDH-mutant gliomas exhibit D-2-hydroxyglutarate-driven metabolic and epigenetic remodeling, whereas IDH-wild-type glioblastomas contain glycolytic, oxidative phosphorylation-enriched, and adaptable stem-like states. Mitochondrial proteostasis links protein import and translation with PI3K/AKT/mTOR signaling, the ubiquitin-proteasome system, autophagy, and mitophagy. Lipid synthesis, storage, fatty acid oxidation, and cardiolipin homeostasis support metabolic adaptation. Electron transport, aspartate availability, redox balance, and dihydroorotate dehydrogenase connect mitochondria with nucleotide synthesis, DNA repair, and treatment resistance. Mitochondrial DNA alterations, mitonuclear signaling, and intercellular mitochondrial transfer further influence respiratory adaptation and tumorigenicity. Metabolic compensation and intratumoral heterogeneity limit single-target therapies, whereas clinical evidence supports genotype-directed intervention, exemplified by vorasidenib.
    CONCLUSIONS: Effective mitochondrial targeting requires biomarkers that match metabolic dependencies to molecular subtypes and cell states while accounting for brain exposure, compensation, and toxicity.
    Keywords:  glioma; lipid metabolism; mitochondrial metabolic reprogramming; mitochondrial metabolism; molecular targeted therapy; protein metabolism
    DOI:  https://doi.org/10.1002/cns.71180
  30. J Inherit Metab Dis. 2026 Nov;49(6): e70226
      Primary pyruvate dehydrogenase complex deficiency (PDCD) comprises a group of monogenic disorders caused by pathogenic variants in genes encoding subunits of, or regulatory components affecting, the pyruvate dehydrogenase complex. The clinical phenotype spans a broad continuum, ranging from early onset congenital lactic acidosis to infantile or childhood onset global developmental delay with epilepsy, through to more attenuated adult-onset neurological presentations. Reports from patients and advocacy groups indicate substantial variability in clinical management across both emergency and outpatient settings and between centres internationally. This variability underscores the need for systematic evaluation of the evidence base and the development of harmonised, consensus-driven clinical guidelines to standardise care and improve outcomes. An international consortium of experts from Europe and North America, including metabolic physicians, neurologists, dietitians, geneticists and patient representatives, was convened. The group undertook a structured review of the literature and developed guideline statements addressing disease classification, recognition, diagnostic evaluation, dietary and non-dietary management, surveillance for complications, genetic counselling and transition to adult services. Each recommendation was assigned a GRADE rating reflecting strength and quality of evidence. Consensus was achieved using a Delphi methodology. In total, 199 recommendations reached consensus and constitute the core of these guidelines. These recommendations provide a framework for consistent, high-quality, multidisciplinary care. The process also identified key evidence gaps, highlighting priorities for future research and the ongoing need to develop effective disease-modifying therapies.
    Keywords:  clinical guideline; ketogenic diet; outcomes; pyruvate dehydrogenase complex deficiency; pyruvate dehydrogenase deficiency; treatments
    DOI:  https://doi.org/10.1002/jimd.70226
  31. bioRxiv. 2026 Aug 24. pii: 2026.08.22.746448. [Epub ahead of print]
      Most biological processes are dynamic, yet experimental methods predominantly rely on steady-state measurements to investigate their underlying mechanisms. RNA localization is a fundamental aspect of eukaryotic cell organization and is dynamically regulated by cells. While extensively studied in specialized cell types for a limited number of candidate RNAs, the general principles governing dynamic RNA localization at a transcriptome-wide scale remain largely unexplored. Existing transcriptome-wide studies provide only a static snapshot of RNAs residing in specific cellular locales, in part due to the limited availability of tools for probing cellular spatial organization at biologically relevant scales. Here, we leverage the high spatial (tens of nanometers) and temporal (minute) resolution of APEX-seq to quantitatively measure the dependence of RNA transport on molecular motors at a transcriptome-wide scale in living cells. We conducted these experiments in the context of the localization of mRNAs to the mitochondria, which are essential for cellular function. Our findings indicate that the majority of nuclear-encoded RNAs encoding mitochondrial proteins localize to the outer mitochondrial membrane (OMM) for local translation. We reveal a crucial role of retrograde dynein-based motor transport in RNA localization, demonstrating that its disruption severely impairs RNA targeting to the OMM. Time-resolved profiling of RNAs at the OMM revealed that localization is an active process, and even a brief disruption of transport for a few minutes results in a dramatic loss of localization. Moreover, we demonstrate that the translation efficiency (TE) of localized RNAs is a critical determinant of RNA localization in the context of motor-driven transport, as RNAs that delocalize following motor-transport perturbations exhibit lower TE. Using our temporal perturbation data, we also developed a spatiotemporal model that utilizes translation kinetics to capture key features of RNA localization dynamics at the OMM. Together, experiments and modeling suggest that the process of local translation at the OMM is kinetically controlled by the cell, and reveal an unappreciated mechanism by which active transport of RNAs enables cells to modulate their translation within minutes through RNA localization control. Our study demonstrates how simultaneously capturing the kinetics of hundreds of transcripts with minute resolution can uncover general principles of cellular and organelle organization. Together, these experiments and modeling reveal how active transport and translation jointly maintain the OMM-localized transcriptome. More broadly, they identify RNA localization to cellular membranes as a rapidly tunable mechanism for controlling local translation, even in non-polarized cells.
    DOI:  https://doi.org/10.64898/2026.08.22.746448
  32. Nature. 2026 Sep 29.
      
    Keywords:  Brain; Medical research; Neuroscience; Stem cells
    DOI:  https://doi.org/10.1038/d41586-026-03048-5
  33. Curr Biol. 2026 Oct 02. pii: S0960-9822(26)01198-X. [Epub ahead of print]
      Kidney tubular epithelial cells adapt to physiological urinary flow through rapid metabolic remodeling,1,2 but the mechanisms coordinating this response remain poorly understood. Shear stress promotes lipid catabolism and mitochondrial activity in these cells,3,4 but how changes in mitochondrial dynamics contribute to this metabolic adaptation remains poorly understood.5,6,7,8,9 Here, we show that physiological shear stress rapidly remodels mitochondrial morphology in kidney epithelial cells in vitro and in the zebrafish pronephros, characterized by the emergence of a distinct pool of donut-shaped mitochondria. This remodeling is accompanied by a transient stabilization of mitochondria-endoplasmic reticulum (ER) contact sites (MERCs), occurring independently of any increase in overall ER volume. Using split-TurboID proximity labeling and mass spectrometry, we detected subtle changes in the molecular environment of MERCs during shear stress, including increased proximity of proteins implicated in lipid transfer and membrane contact-site biology. We further show that shear stress promotes the formation of ER-lipid droplet (LD)-mitochondria contact sites and facilitates the local transfer of fatty acids from LDs to mitochondria. This lipid transfer requires vacuolar membrane protein 1 (VMP1), a component of membrane contact sites, whose depletion perturbs LDs and compromises metabolic adaptation to shear stress. Together, our findings identify ER-LD-mitochondria contact sites as dynamic platforms that coordinate lipid transfer and mitochondrial remodeling during the early adaptation of kidney epithelial cells to physiological shear stress, highlighting membrane contact sites as important components of the cellular response to mechanical forces.
    Keywords:  contact sites; endoplasmic reticulum; kidney epithelial cells; lipid droplets; metabolic adaptation; mitochondria; shear stress; zebrafish
    DOI:  https://doi.org/10.1016/j.cub.2026.09.021
  34. bioRxiv. 2026 Sep 22. pii: 2026.09.22.753427. [Epub ahead of print]
      Complex biological behaviours often emerge when a system is faced with mutually incompatible priorities. In such situations, the field of multi-objective optimisation can provide an informative and predictive theoretical foundation for biology. Here we adopt this paradigm in exploring the rich dynamic behaviour of mitochondria inside cells. Using plant cells as a model system, we use physical modelling to characterise the "morphospace" of possible mitochondrial behaviours, and single-cell microscopy with video analysis and network modelling to characterise collective mitochondrial dynamics. We show that wildtype Arabidopsis mitochondrial dynamics near-optimally resolve a tradeoff between maintaining physical spacing and supporting biomolecular exchange. With existing and new experimental data, we show that these dynamics adapt under mutational and chemical challenges to support a rebalanced, but still near-optimal, resolution to this tradeoff under different densities of the mitochondrial population. We also show how an assumption of multi-objective optimisation supports inference of biological mechanisms before any data are observed, and discuss the potential of this multi-objective optimisation paradigm to form a broader theoretical framework of spatial cell biology.
    DOI:  https://doi.org/10.64898/2026.09.22.753427
  35. bioRxiv. 2026 Sep 13. pii: 2026.09.10.750701. [Epub ahead of print]
      The intrinsically slow pace of human development poses challenges for regenerative medicine and disease modeling. This trait is attributed to low metabolic rates, yet the endogenous mechanisms determining species-specific metabolic flux remain unknown. Here, we identify coupling between glycolytic NADH production and mitochondrial oxidation through the glycerol-3-phosphate (G3P) shuttle as a genetic bottleneck constraining human developmental tempo. Using stem cell-derived models of the segmentation clock, an oscillator whose period reflects developmental rate, we show that low expression of the G3P shuttle enzyme GPD1L limits NADH oxidation in human progenitors compared to mouse. Overexpressing GPD1L boosts metabolic flux, accelerating the segmentation clock, cell cycle, and differentiation across germ layers. G3P-mediated redox coupling is thus a genetically encoded, rate-limiting mechanism that sets the tempo of human development.
    DOI:  https://doi.org/10.64898/2026.09.10.750701
  36. bioRxiv. 2026 Sep 25. pii: 2026.03.30.715437. [Epub ahead of print]
      We investigated the molecular basis of bet-hedging in budding yeast, Saccharomyces cerevisiae. Fast glycolytic growth generates two cell states: fermenting arrestors and respiring recoverers, of which only recoverers resume growth when shifted to a respiratory carbon source. Single-cell metabolic biosensors show that a bistable switch in mitochondrial activity produces these states: mitochondrial membrane potential drives import of positively charged, nuclear-encoded proteins of the mitochondrial ribosome, and mitochondrial ribosomes synthesize electron transport chain subunits that sustain the potential, completing a positive feedback loop. The ratio of mitochondrial to cytoplasmic protein synthesis governs switch dynamics: the effect of slowing mitochondrial translation is rescued by inhibiting cytosolic translation. Reducing mitochondrial translation reconstitutes bistability in evolutionarily distant fission yeast, suggesting a conserved mechanism for diversifying single-cell ATP production strategies.
    DOI:  https://doi.org/10.64898/2026.03.30.715437
  37. Front Mol Neurosci. 2026 ;19 1892506
      Mitochondria are central regulators of cellular metabolism, redox homeostasis, and stress adaptation. Mitohormesis refers to an adaptive response in which mild or transient mitochondrial perturbation activates stress-response pathways that subsequently enhance mitochondrial or cellular resilience; however, persistent or excessive stress can overwhelm adaptive capacity and promote mitochondrial dysfunction and tissue injury. Metabolic diseases, including obesity and type 2 diabetes mellitus, are major risk factors for cognitive decline and dementia, and clinical studies have demonstrated associations between metabolic dysfunction, structural brain abnormalities, accelerated brain aging, and impaired cognitive function. However, direct evidence linking mitochondrial dysfunction to neurodegeneration in humans remains limited, with most mechanistic insights derived from experimental animal models and cultured neuronal systems. Experimental evidence indicates that chronic metabolic stress can disrupt mitochondrial quality control and proteostasis, increase mitochondrial reactive oxygen species production, and promote neuroinflammation and neuronal dysfunction. Conversely, adaptive mitochondrial stress responses can preserve mitochondrial integrity and cellular resilience through coordinated regulation of the integrated stress response, mitochondrial quality-control mechanisms, lysosomal-mitochondrial crosstalk, extracellular vesicle-mediated communication, and inter-organ signaling. In Alzheimer's disease, mitochondrial dysfunction and amyloid-β/tau pathology may interact bidirectionally, potentially generating self-reinforcing cycles of neuronal injury. Lifestyle and pharmacological interventions-including exercise; caloric restriction; nutritional ketosis; and the use of metformin, sodium-glucose cotransporter 2 inhibitors, and glucagon-like peptide-1 receptor agonists-have been associated with adaptive mitochondrial and metabolic responses involving AMP-activated protein kinase, nuclear factor erythroid 2-related factor 2, mitochondrial biogenesis, mitophagy, and redox signaling. However, evidence that mitohormesis directly mediates their beneficial effects varies substantially across interventions and remains predominantly indirect or hypothesized in humans. Moreover, the discrepancy between encouraging preclinical findings and clinical outcomes highlights important translational barriers, including the lack of validated biomarkers, uncertainty regarding optimal stress intensity and timing, and tissue- and disease-specific differences in adaptive capacity. Collectively, current evidence supports mitohormesis as a conceptual framework for integrating mitochondrial stress adaptation, metabolic dysfunction, and neuronal resilience rather than as an established unifying mechanism underlying neurodegeneration. Defining the conditions under which mitochondrial stress is adaptive, identifying reliable biomarkers of mitohormesis, and determining whether these responses can be safely and effectively modulated in humans will be essential for establishing its therapeutic relevance in metabolic and neurodegenerative diseases.
    Keywords:  dementia; metabolic disease; mitochondrial dysfunction; mitochondrial quality control; mitohormesis; neurodegeneration; oxidative stress; redox signaling
    DOI:  https://doi.org/10.3389/fnmol.2026.1892506
  38. Redox Biol. 2026 Sep 23. pii: S2213-2317(26)00411-8. [Epub ahead of print]97 104412
      Renal ischemia-reperfusion injury (IRI) is initiated by a burst of mitochondrial reactive oxygen species generated when ischemia-accumulated succinate is rapidly oxidised upon reperfusion, driving reverse electron transport and triggering lipid peroxidation-dependent tubular cell death. Here, we identify the mitochondrial matrix protease CLPP as an unexpected regulator of renal redox resilience. CLPP deficiency reduced succinate-driven mitochondrial H2O2 production and protected kidneys from functional decline, tubular necrosis, mitochondrial ultrastructural damage, and lipid peroxidation following IRI. Protection was most pronounced in females, in which CLPP loss established a constitutive antioxidant and detoxification programme prior to injury, characterised by increased glutathione and γ-glutamylcysteine abundance, enhanced NADPH-generating pentose phosphate pathway activity, sustained sulphur amino acid metabolism, and elevated capacity for lipid aldehyde detoxification. During reperfusion, these adaptations preserved thiol-redox buffering, limited 4-hydroxynonenal accumulation, and reduced oxidative modification of cysteine residues on proteins involved in complement, coagulation, fibrinolysis, and inflammatory signalling, thereby restricting ferroptotic lipid damage and downstream thrombo-inflammatory amplification. Although reduced reverse electron transport-derived ROS contributed to this phenotype, it was insufficient to account for the sex bias. While CLPP deficiency amplified an endogenous female antioxidant programme, male kidneys, lacking equivalent glutathione-centred preconditioning, showed only marginal benefit. These findings establish mitochondrial proteostasis as a determinant of sex-dependent redox adaptation and identify CLPP as a candidate target for preconditioning against predictable ischaemic insults, including kidney transplantation and cardiac surgery.
    Keywords:  Ferroptosis; Glutathione metabolism; Lipid peroxidation; Mitochondrial CLPP protease; Mitochondrial dysfunction; NRF2; Renal ischemia-reperfusion injury; Renal preconditioning; Sex differences
    DOI:  https://doi.org/10.1016/j.redox.2026.104412
  39. Cell. 2026 Oct 01. pii: S0092-8674(26)01002-0. [Epub ahead of print]189(20): 6285-6306.e13
    MitoCarta Tree of Life Consortium
      Mitochondria arose from the endosymbiosis of a bacterium with an archaea-related host cell about 2 billion years ago. To understand their origins and evolution, we compared experimentally defined mitoproteomes from the MitoCarta Tree of Life project. Across eight organisms, we identified 8,619 distinct mitochondrial proteins within 3,199 families, of which 43% lack Pfam domains. We report 33 protein families conserved in eukaryotic pathogens yet absent in humans, representing promising candidate targets for protozoan infectious diseases. Leveraging our experimentally defined mitoproteomes, we retrained a classifier based on a protein language model to predict mitoproteomes of ∼200 eukaryotes. From this expanded set, we detail the evolutionary trajectories of mitochondria, ranging from clade-specific gene family expansions to extreme mitoproteome reductions seemingly en route to complete organelle loss. Finally, we reconstruct the last eukaryotic common ancestor (LECA) mitoproteome, revealing that LECA possessed a complex mitochondrion capable of both aerobic and anaerobic metabolism.
    Keywords:  calcium; eukaryogenesis; evolution; last eukaryotic common ancestor; mitochondria; mitoproteome; oxygen; parasite; pathogen; phylogenetics
    DOI:  https://doi.org/10.1016/j.cell.2026.08.029
  40. Cell Rep Med. 2026 Oct 02. pii: S2666-3791(26)00521-5. [Epub ahead of print] 103104
      Twenty years after the discovery of induced pluripotent stem cells, the field has progressed from patient-specific disease modeling toward cell-based therapies for neurodegenerative disorders. Parkinson's disease has emerged as the leading model for neuronal replacement, whereas Huntington's disease, Alzheimer's disease, and amyotrophic lateral sclerosis require distinct combinations of circuit reconstruction, cellular support, immune modulation, and engineered therapeutic delivery. We discuss key determinants of clinical translation, including cell source, product identity, graft composition, graft-host interactions, manufacturing reproducibility, genomic integrity, and clinical evaluation. We propose that the interval between cell transplantation and long-term engraftment constitutes a biological "black box" in which graft fate and therapeutic outcome are determined. As regenerative medicine enters its third decade, future progress will depend not only on generating therapeutic cells but also on elucidating and engineering the biological processes that determine their fate after transplantation, marking a conceptual transition from stem cell biology toward transplantation biology.
    Keywords:  cell replacement therapy; genomic integrity; graft-host interactions; induced pluripotent stem cells; neurodegenerative diseases; regenerative medicine; transplantation biology
    DOI:  https://doi.org/10.1016/j.xcrm.2026.103104
  41. Mol Biol Cell. 2026 Sep 30. mbcE25110541
      Abnormal α-synuclein (α-syn) accumulation and mitochondrial dysfunction are central features of Parkinson's disease (PD), and increasing evidence suggests that these processes are closely connected. Using yeast models to manipulate mitochondrial metabolic states, we investigated how mitochondrial activity may affect α-syn accumulation and toxicity. Under the fermentative growth condition, we found that α-syn localized predominantly to the plasma membrane and was non-toxic. Respiratory growth induced cytoplasmic α-syn accumulation, mitochondrial abnormalities, and marked toxicity dependent on α-syn expression and membrane binding. Surprisingly, genetic disruption of mitochondrial respiration also enhanced α-syn toxicity despite causing little α-syn accumulation, indicating that both increased demand of mitochondrial respiratory function and compromised respiratory capacity can sensitize cells to α-syn toxicity. Overexpression of HAP4, a master regulator of mitochondrial biogenesis and respiratory gene expression, suppressed α-syn toxicity, but this protection required functional mitochondria. Together, these findings demonstrate that distinct mitochondrial functional states exert markedly different effects on α-syn toxicity and reveal a complex relationship between mitochondrial function and cellular response to α-syn expression. These models provide a new system for investigating how changes in mitochondrial function contribute to α-syn-induced cellular stress.
    DOI:  https://doi.org/10.1091/mbc.E25-11-0541
  42. Mol Neurobiol. 2026 Sep 30. pii: 936. [Epub ahead of print]63(1):
      Age-related hearing loss (ARHL) is common, disabling, and still managed largely with compensatory devices rather than mechanism-modifying therapy. The major weakness in the current translational pipeline is not the absence of candidate pathways, but the lack of a timing framework that links cochlear phenotype, mitochondrial injury state, and intervention intensity. This revised Review therefore focuses on a staged mitochondrial redox-quality-control model. We argue that ARHL emerges when high-energy cochlear compartments-outer and inner hair cells, spiral ganglion neurons, and the lateral wall/stria vascularis-cross a threshold at which mitochondrial reactive oxygen species (ROS), impaired mitochondrial DNA and transfer RNA integrity, lysosomal insufficiency, and incomplete mitophagy reinforce each other. Three checkpoints are emphasized because they are mechanistically actionable and experimentally measurable: NAD+-SIRT3-dependent mitochondrial deacetylation and antioxidant stabilization, NRF2-dependent redox and detoxification buffering, and PINK1-Parkin-dependent selective mitophagy. We also expand the sidewall perspective, highlighting that strial and spiral ligament redox instability can reduce endocochlear-potential reserve and modify the apparent sensory-neural phenotype. A practical therapeutic sequence is proposed: early substrate reinforcement through NAD+-SIRT3 and NRF2; mid-stage restoration of autophagy-lysosome competence; and selective mitophagy enhancement only when flux, not merely marker accumulation, is demonstrably limiting. Finally, we define a biomarker and detection framework that distinguishes cochlear tissue endpoints from blood or perilymph proxies and separates mouse proof-of-mechanism from human trial stratification. This approach clarifies which evidence is sufficient for prevention studies, which remains missing, and how future ARHL trials can be aligned with mechanism and timing.
    Keywords:  Age-related hearing loss; Autophagy; Biomarkers; Mitochondrial ROS; Mitophagy flux; NRF2; PINK1-Parkin; SIRT3; Stria vascularis
    DOI:  https://doi.org/10.1007/s12035-026-06234-8
  43. Metabolism. 2026 Sep 26. pii: S0026-0495(26)00301-X. [Epub ahead of print]185 156788
       BACKGROUND: Brown adipose tissue (BAT) and beige adipocytes regulate adaptive thermogenesis and systemic energy balance, whereas BAT dysfunction contributes to obesity and metabolic disease. Although ETS transcription factors participate in adipocyte biology, the role of ETS-2 in BAT remains unclear.
    METHODS: Adipocyte-specific Ets-2 knockout mice were generated using the Adipoq-Cre system. BAT morphology, thermogenic responses, energy expenditure, and mitochondrial structure and function were assessed under basal conditions, cold exposure, β3-adrenergic stimulation, and mTOR activation. Primary adipocytes were used for gain- and loss-of-function analyses. RNA-seq, CUT&Tag, luciferase reporter assays, Seahorse respirometry, rescue experiments, and public human adipose single-nucleus RNA-seq analyses were performed.
    RESULTS: ETS-2 was enriched in BAT and dynamically regulated during adipocyte differentiation. Adipocyte-specific Ets-2 deletion induced BAT whitening, reduced UCP-1 expression, impaired cold tolerance and β3-adrenergic responsiveness, and decreased oxygen consumption and energy expenditure. ETS-2 deficiency also disrupted mitochondrial ultrastructure and reduced respiratory capacity in brown adipocytes. Mechanistically, integrated RNA-seq and CUT&Tag identified Prdm16 as a direct ETS-2 target. ETS-2 loss repressed PRDM16, suppressed the PRDM16-PGC-1α-UCP-1 thermogenic program, and attenuated IRS-1-PI3K/Akt-mTOR signaling. PRDM16 overexpression and mTOR activation partially rescued ETS-2-deficient phenotypes. Human single-nucleus data further supported conservation of this regulatory axis.
    CONCLUSION: ETS-2 is a critical transcriptional regulator of BAT thermogenic function. By directly activating Prdm16 and maintaining both the PRDM16-PGC-1α-UCP-1 axis and IRS-1-PI3K/Akt-mTOR signaling, ETS-2 preserves mitochondrial integrity and adaptive thermogenesis. These findings identify the ETS-2-PRDM16 axis as a potential therapeutic target for metabolic diseases associated with BAT dysfunction.
    Keywords:  Adipocyte browning; Adipose thermogenesis; ETS-2; Mitochondria; PI3K/Akt/mTOR signaling; PRDM16
    DOI:  https://doi.org/10.1016/j.metabol.2026.156788
  44. Biophys J. 2026 Sep 26. pii: S0006-3495(26)00667-3. [Epub ahead of print]
      Cellular respiration depends on the rapid, lateral flow of protons along the inner mitochondrial membrane to drive ATP synthesis. The precise nanoscale thermodynamic forces confining protons to this "local circuit" remain highly debated. Previous attempts to model macroscopic interfacial proton diffusion have been hindered by parameter equifinality and geometric artifacts, preventing the deconvolution of structural water networks from lipid electrostatics. Here, we address this ambiguity using a constrained, high-resolution two-dimensional continuum model. By incorporating experimentally validated buffer proton consumption rates as strict biological priors, we break mathematical degeneracy and isolate the specific effective spatial components of planar lipid bilayers. Calibrating our model against time-resolved DOPG fluorescence kinetics, we decouple a universal structural water barrier (5.7kBT) from the specific -1e electrostatic trap (4.3kBT). Extrapolating these first principles, we predict the confinement architecture of cardiolipin, the signature -2e dimeric lipid of mitochondria. Our simulations reveal a deep 14.3kBT phenomenological potential well. Crucially, this massive barrier confines protons within 1 to 2 nanometres of the membrane surface, virtually abolishing vertical leakage into the bulk aqueous phase of the inter-membrane space. Our simulations suggest that this spatial confinement triggers "dimensional squeezing", preserving a robust lateral concentration gradient that actively accelerates radial proton wave propagation. Biologically, these findings reveal that cardiolipin does not merely prevent proton dissipation, we predict it functions as a highly efficient, quasi-two-dimensional nanoscale antenna that captures and rapidly channels protons directly to ATP synthase, ensuring the kinetic viability of eukaryotic energy production.
    DOI:  https://doi.org/10.1016/j.bpj.2026.09.037
  45. Mitochondrion. 2026 Oct 01. pii: S1567-7249(26)00111-X. [Epub ahead of print] 102221
      Mitochondria and their biomacromolecular complexes-such as the electron transport chain (ETC), mitochondrial permeability transition pore (mPTP), and protein quality control systems-play pivotal roles in aging and age-related diseases. This review integrates recent insights into how structural and functional disruptions of these complexes drive cellular senescence and systemic decline. We outline the architecture of mitochondrial assemblies (e.g., oxidative phosphorylation (OXPHOS) complexes, mtDNA-protein interactions) essential for energy production and organelle stability. Age-related alterations in stoichiometry, conformational states (e.g., mPTP opening), and post-translational modifications (e.g., SIRT3-mediated acetylation) compromise mitochondrial integrity, fueling metabolic dysfunction and chronic inflammation ("inflammaging"). Therapeutic strategies include small-molecule stabilizers of ETC supercomplexes, peptide-based mPTP inhibitors, and CRISPR-mediated correction of mtDNA-protein mismatches. Tissue-specific models (e.g., Complex I in skin aging, Bcl-2 protein imbalance in ovarian aging) exemplify the clinical relevance. We also categorize nine age-associated diseases-neurodegenerative, cardiovascular, and cancer types-based on their dependence on distinct mitochondrial complexes, such as ATP synthase in cancer resistance and the TIM/TOM import machinery in Alzheimer's disease. By linking structural findings (e.g., cryo-EM studies) with therapeutic innovation, this review offers a framework for targeting mitochondrial complexes to mitigate aging and its related pathologies.
    Keywords:  Aging; Aging-related diseases; Mitochondria; Therapy; mtDNA
    DOI:  https://doi.org/10.1016/j.mito.2026.102221
  46. Neuroscience. 2026 Oct 02. pii: S0306-4522(26)00663-9. [Epub ahead of print]
      Amyotrophic lateral sclerosis (ALS) is a fatal neurodegenerative disease involving progressive motor neuron loss. Given the high energy reliance of motor neurons, mitochondrial dysfunction especially excessive fission critically contributes to disease pathogenesis. Mitochondrial division inhibitor-1 (Mdivi-1), an inhibitor of the fission protein Drp1, has shown neuroprotective potential, but its mechanism of action on mitochondrial quality control in ALS remains unclear. Here, we examined the effects of Mdivi-1 on mitochondrial dysfunction and cell injury in NSC34 cells expressing mutant SOD1^G93A and in SOD1^G93A transgenic mice. ALS models exhibited increased reactive oxygen species accumulation, reduced mitochondrial content, loss of mitochondrial membrane potential, enhanced apoptotic signaling, and increased phosphorylation of CaMK2 and Drp1. Mdivi-1 treatment improved cell viability, reduced oxidative stress, restored mitochondrial integrity and membrane potential, and suppressed apoptosis. In addition, Mdivi-1 decreased Drp1 phosphorylation, whereas co-treatment with the CaMK2 activator DCP-LA partially reversed these effects. Furthermore, direct inhibition of CaMK2 with KN93 reduced CaMK2 and Drp1 phosphorylation, providing additional evidence that CaMK2 regulates Drp1 activation in SOD1^G93A cells. These findings indicate that pharmacological modulation of the CaMK2/Drp1 pathway can attenuate aberrant mitochondrial fission and associated cellular dysfunction in ALS models.
    Keywords:  Amyotrophic lateral sclerosis; CaMK2; Drp1; Mitochondrial division inhibitor 1(Mdivi-1); Mitochondrial fission
    DOI:  https://doi.org/10.1016/j.neuroscience.2026.10.002
  47. Cell Rep. 2026 Sep 30. pii: S2211-1247(26)01081-8. [Epub ahead of print] 118003
      Current evidence suggests that disturbed phosphatidylcholine (PC) turnover causes skeletal muscle dysfunction. However, the enzyme that converts lysophosphatidylcholine (LPC) to glycerophosphocholine (GPC), an irreversible checkpoint in PC catabolism, in skeletal muscle has remained unidentified. Here we show that PNPLA7, a patatin-like phospholipase isoform, is responsible for this process. Pnpla7 deletion in myoblasts impedes the conversion of LPC to GPC and then to choline. Quadriceps muscles in global Pnpla7-deficient mice display thinner muscle fibers with aberrant mitochondrial morphology, reduced endurance capacity, and decreased expression of genes related to fatty acid β-oxidation, mitochondrial functions, and slow-twitch fibers with age. These abnormalities are preceded by alterations in phospholipid composition, with decreases in docosahexaenoic acid-containing PC and mitochondrial cardiolipin. Moreover, skeletal muscle-specific Pnpla7 deficiency results in muscle phenotypes similar to its global deficiency. Identification of the lysophospholipase PNPLA7 aids further understanding of the role of PC turnover in skeletal muscle homeostasis.
    Keywords:  CP: metabolism; choline; docosahexaenoic acid; lipidomics; lysophospholipase; mitochondria; patatin-like phospholipase; phosphatidylcholine; phospholipid; skeletal muscle
    DOI:  https://doi.org/10.1016/j.celrep.2026.118003
  48. Ageing Res Rev. 2026 Sep 26. pii: S1568-1637(26)00377-6. [Epub ahead of print]123 103385
      The aging brain undergoes progressive alterations in energy metabolism that may reduce its capacity to match energy supply with changing functional demands. Declining glucose metabolism, mitochondrial dysfunction, and altered neuron-glia and neurovascular interactions may contribute to this vulnerability, but these changes do not necessarily indicate complete loss of metabolic capacity. Neuroenergetic flexibility refers to the capacity to coordinate changes in substrate utilization with energetic demand while maintaining cellular and functional homeostasis. This review synthesizes evidence from cellular, animal, imaging, and clinical studies to examine the mechanisms underlying this capacity, how it changes with aging, and whether diet-induced metabolic switching can enhance it. Particular attention is given to the distinction between metabolic switching, defined as a change in the relative contribution of available substrates, and neuroenergetic flexibility, which requires coordinated adaptation across substrate delivery, cellular metabolism, mitochondrial processing, neurovascular support, and functional demand. Evidence indicates that ketogenic diets, intermittent fasting, and caloric restriction can alter substrate availability and utilization and can engage mitochondrial, cellular stress-response, and nutrient-sensing pathways. However, the strength of evidence differs across biological levels: changes in alternative-substrate utilization are more consistently demonstrated than coordinated improvements in mitochondrial, vascular, cellular, and functional outcomes. Thus, increased ketone utilization or other metabolic shifts should not, by themselves, be interpreted as evidence of restored neuroenergetic flexibility. Instead, the available evidence suggests that aging may preserve individual metabolic capacities while reducing the coordination and reserve required to adapt effectively to changing energetic demands. Dietary interventions therefore provide useful models for testing metabolic adaptability, but their ability to restore integrated neuroenergetic flexibility in aging or neurodegenerative disease remains uncertain and appears to depend on age, metabolic state, disease context, intervention characteristics, and adherence.
    Keywords:  Brain aging; Glucose hypometabolism; Intermittent fasting; Ketone metabolism; Metabolic switching; Mitochondrial function; Neuroenergetic flexibility
    DOI:  https://doi.org/10.1016/j.arr.2026.103385
  49. Mol Genet Genomic Med. 2026 Oct;14(10): e70319
       BACKGROUND: Epigenomic testing complements sequence-based analysis by detecting downstream changes in epigenomic state associated with genetic variation. Genome-wide DNA methylation episignatures are reproducible molecular phenotypes that can serve as biomarkers of specific Mendelian disorders, particularly those involving chromatin regulators, DNA methylation machinery, and transcriptional regulatory pathways.
    METHODS: We reviewed the biological basis, laboratory methodology, analytical approaches and clinical applications of DNA methylation episignature testing, with emphasis on neurodevelopmental disorders and rare diseases. We also considered current computational tools, limitations of clinical interpretation and emerging epigenomic and epitranscriptomic approaches.
    RESULTS: DNA methylation episignature testing is now used clinically to support molecular diagnosis, assist interpretation of variants of uncertain significance and distinguish overlapping neurodevelopmental and chromatin-related disorders. Interpretation integrates methylation-array data, statistical and machine-learning classification, phenotype, genotype and assay-specific validation. Important limitations include tissue specificity, mosaicism, developmental effects, incomplete disorder coverage and dependence on reference datasets. Emerging approaches include tissue-agnostic classifiers, long-read methylation profiling, additional epigenomic signatures and multi-omic integration.
    CONCLUSION: DNA methylation episignatures provide a clinically useful functional layer of evidence by detecting downstream epigenomic consequences of genomic variation. They should be interpreted as an adjunct to sequence-based diagnosis and clinical assessment rather than as a replacement for either. Continued expansion of reference datasets and integration with other functional genomic approaches should broaden their diagnostic utility.
    Keywords:  DNA methylation; chromatinopathy; clinical epigenomics; episignature; long‐read sequencing; m6A; multi‐omics; neurodevelopmental disorder; rare disease; variant of uncertain significance
    DOI:  https://doi.org/10.1002/mgg3.70319
  50. Aging (Albany NY). 2026 Sep 23. 18(1): 1316-1330
      Modulation of magnetic field strength may be a potential therapeutic strategy, particularly in the context of ageing and neurodegenerative disease. Research on magnetic fields (MFs) has been motivated by diverse factors, including interplanetary space travel, emissions from medical equipment, and the mechanisms underlying magnetoreception in migratory birds. The biochemistry of hypomagnetic field (HMFs; <5 μT) exposure has focused on healthy model organisms, leaving their therapeutic potential unexplored. We investigated the effects of HMF exposure in a neurodegenerative disease model. The Pink1 loss-of-function model recapitulates key features of early-onset Parkinson's disease, including mitochondrial dysfunction, locomotor impairment, dopaminergic neuron degeneration, and reduced lifespan. A MuMagnetic GA4 benchtop shielding apparatus (Magnetic Shields Limited, UK), was used to generate a uniform internal field of 5 nT, to effectively remove Earth's geomagnetic field (GMF; 25-60 μT). Wild-type W118 (WT) and Pink1B9/Y (Pink1⁻) D. melanogaster were exposed to HMF and assessed for survival, locomotor performance, mitochondrial respirometry and reactive oxygen species production. HMF exposure increased lifespan in Pink1⁻ D. melanogaster by 20%, with a paradoxical reduction in climbing ability. WT D. melanogaster had decreased lifespan and improved locomotor performance under HMF. Nitrogen-vacancy (NV) centre quantum diamond sensors, were used to detect elevated superoxide levels following HMF exposure. High-resolution respirometry showed increased mitochondrial complex II activity under HMF conditions. We demonstrate that hypomagnetic fields modulate mitochondrial physiology and reactive oxygen species production in D. melanogaster. This highlights the potential of HMF exposure as a novel, non-invasive approach for modulating mitochondrial dysfunction in neurodegenerative disease.
    Keywords:  Parkinson’s disease; diamond quantum sensing; drosophila melanogaster; hypomagnetic field; mitochondria
    DOI:  https://doi.org/10.18632/aging.206424
  51. Mov Disord. 2026 Sep 28.
    Global Parkinson's Genetics Program (GP2)
       BACKGROUND: Reliable biomarkers for Parkinson's disease (PD) pathology detection are essential for research. α-Synuclein (aSyn) seed amplification assay (SAA) is a validated biomarker for misfolded aSyn.
    OBJECTIVE: The aim was to assess the association between aSyn SAA and LRRK2-related PD (LRRK2-PD) and its link to mitochondrial genetic burden.
    METHODS: We included N = 76 LRRK2 p.Gly2019Ser variant carriers (N = 22 affected, N = 54 unaffected), N = 714 patients with idiopathic PD (iPD), and N = 411 controls from Norway. We analyzed cerebrospinal fluid (CSF)-based aSyn SAA in N = 10 PD patients and N = 30 unaffected LRRK2 p.Gly2019Ser carriers, alongside N = 6 controls and N = 56 iPD patients. A mitochondrial polygenic score (MGS) was derived from genotyping data, using Parkinson's Progression Markers Initiative (PPMI) as an additional cohort (iPD: N = 355, LRRK2-PD: N = 118). In patients with PD, we explored the association between mitochondrial genetic burden and aSyn SAA outcome as well as SAA kinetic measurements.
    RESULTS: Seeding was observed in 80% of patients with LRRK2-PD and in 1 unaffected variant carrier (AUC = 0.97, confidence interval [CI] 0.92-1.00). In an exploratory meta-analysis across 2 PD cohorts, higher MGS was associated with increased aSyn seeding (pooled β = 0.43, odds ratio [OR] = 1.54, P = 0.014). In the Norwegian cohort, assessing aSyn SAA kinetic measurements, higher MGS was associated with a higher maximum slope (β = 1.22, standard error [SE] = 0.50, P = 0.020). In PPMI, higher MGS was associated with shorter time to threshold (β = -0.34, SE = 0.13, P = 0.007) and time to maximum slope (β = -0.35, SE = 0.13, P = 0.007).
    CONCLUSIONS: CSF-based aSyn SAA can discriminate between LRRK2-PD and unaffected carriers. Our findings suggest an association between mitochondrial genetic burden and aSyn seeding. © 2026 The Author(s). Movement Disorders published by Wiley Periodicals LLC on behalf of International Parkinson and Movement Disorder Society.
    Keywords:  LRRK2; Parkinson's disease; mitochondrial polygenic score; seed amplification assay; α‐synuclein
    DOI:  https://doi.org/10.1002/mds.70553
  52. Free Radic Biol Med. 2026 Sep 28. pii: S0891-5849(26)01178-0. [Epub ahead of print]
      Sepsis-induced cardiomyopathy (SICM) is a severe complication of sepsis characterized by myocardial depression and high mortality, yet the underlying mechanisms remain incompletely understood. Here, we provide evidence supporting reverse electron transfer (RET) at mitochondrial complex I as a contributing pathogenic mechanism linking metabolic disturbances to myocardial injury in SICM. Using LPS-stimulated H9C2 cardiomyocytes and cecal ligation and puncture (CLP)-induced septic rats, we integrated metabolomic profiling, mitochondrial functional analyses, and pharmacological interventions to investigate the role of RET in sepsis-induced cardiac dysfunction. We found that sepsis establishes a permissive metabolic environment for RET, characterized by elevated mitochondrial membrane potential (ΔΨm), NADH/NAD+ redox imbalance, and impaired downstream electron transport chain function. Enhanced RET is associated with excessive mitochondrial superoxide production, accompanied by oxidative stress, inflammation, and cardiomyocyte apoptosis. Notably, succinate accumulation provided the reducing equivalents necessary to fuel RET under these conditions. Pharmacological targeting of the RET pathway by inhibiting succinate dehydrogenase with dimethyl malonate (DMM) attenuated LPS-induced cellular injury and CLP-induced cardiac dysfunction, whereas supplementation with the succinate precursor dimethyl succinate (DMS) exacerbated these pathologies consistently with enhanced RET involvement. Collectively, our findings implicate RET at complex I as a significant contributing mechanism in SICM and highlight RET-targeted interventions as a promising therapeutic strategy for this devastating condition.
    Keywords:  mitochondrial superoxide; reverse electron transfer; sepsis-induced cardiomyopathy; succinate
    DOI:  https://doi.org/10.1016/j.freeradbiomed.2026.09.027
  53. EMBO Rep. 2026 Sep 29.
      α-Synuclein (αSyn) inclusions characterize multiple age-related neurodegenerative diseases, including Parkinson's disease (PD). While interactions between αSyn and lipids are known to contribute to αSyn pathobiology, the precise cellular mechanisms linking lipids to αSyn toxicity have yet to be elucidated. Through lipidomic profiling of Caenorhabditis elegans, we find that αSyn progressively alters lipid metabolism in aging worms. αSyn reduces the overall content of triacylglycerols (TAG) and disrupts the structure of lipid droplets (LD) and mitochondria. These pathological changes depend on αSyn's properties to bind lipid and to condensate into inclusions. Apart from lowering TAG levels, αSyn proportionally increases long-chain unsaturated fatty acids (LCUFAs). Consequently, genetic inhibition of LCUFA biosynthesis alleviates αSyn-induced loss of C. elegans motility. Supplementing Medium-Chain Triglyceride (MCT) on the other hand also improves αSyn-associated toxicity phenotypes. These results link αSyn lipid binding and condensation to impaired TAG metabolism, which drives cellular toxicity. Combined with observed lower plasma TAGs in Parkinson cohorts, our findings reveal contributions of TAG remodelling to αSyn toxicity and point at MCT-supplementation as a mechanism-based therapeutic opportunity in age-related synucleinopathies.
    DOI:  https://doi.org/10.1038/s44319-026-00954-7
  54. Front Biosci (Elite Ed). 2026 Sep 04. 18(3): 49053
       BACKGROUND: Mitochondria play a key role in the regulation of inflammatory processes. It is well established that mitochondria contain their own mitochondrial DNA (mtDNA), which displays a substantially higher frequency of polymorphisms compared to the nuclear genome. To maintain mitochondrial functionality, cells employ a quality control mechanism known as mitophagy, which ensures the selective removal of dysfunctional mitochondria. The aim of this study was to investigate the relationship between mitochondrial polymorphisms, the efficiency of dysfunctional mitochondria clearance, and proinflammatory activation of inflammatory cells.
    METHODS: In this study, we used cybrids derived from the THP-1 (human monocytic leukemia cell line) that differed in their mitochondrial genome.
    RESULTS: Based on the levels of secreted proinflammatory cytokines (tumor necrosis factor (TNF), interleukin-1β (IL-1β), IL-6, IL-8, and C-C motif chemokine ligand 2 (CCL2)), cybrids were divided into two groups: one exhibiting a low and the other a high proinflammatory response. mtDNA sequencing revealed a higher number of polymorphisms in the high proinflammatory response group. Transcriptome analysis showed that signaling pathways associated with mitophagy were downregulated in cells with a high proinflammatory response. Functional assays confirmed that mitophagy was impaired in this group.
    CONCLUSIONS: Increased proinflammatory activity in cybrids correlated with a greater number of mtDNA polymorphisms and with impaired mitophagy. These observations point to an association between mitochondrial genomic variation, reduced mitochondrial quality control, and heightened proinflammatory activation of inflammatory cells. However, the data are associative and do not establish causality. Further mechanistic studies are required to determine whether and how mtDNA polymorphisms and defective mitophagy directly contribute to proinflammatory activation.
    Keywords:  cybrids; inflammation; mitochondria; mitophagy; mtDNA polymorphisms
    DOI:  https://doi.org/10.31083/FBE49053