bims-camemi Biomed News
on Mitochondrial metabolism in cancer
Issue of 2026–09–20
forty-four papers selected by
Christian Frezza, Universität zu Köln



  1. Nat Metab. 2026 Sep 15.
      Thiol-containing metabolites are central to cellular redox homeostasis1. Among these, cysteine functions as a proteogenic amino acid, supports redox balance and iron-sulfur cluster biogenesis, and, when depleted, triggers ferroptosis2. Cells nevertheless maintain cysteine at low levels, reflecting its intrinsic toxicity, but the mechanisms by which excess cysteine causes cell death remain unclear3. Here we performed a genome-wide CRISPR screen and identified mitochondrial iron transporters as essential mediators of cysteine toxicity. Limiting mitochondrial iron availability suppresses cysteine-induced cell death and prevents impairment of iron-sulfur cluster proteins and respiration. Mechanistically, cysteine mobilizes iron from ferritin, expands the cytosolic iron pool and drives mitochondrial iron accumulation. Enhancing glutathione reductase activity specifically within mitochondria restores redox balance downstream of iron accumulation and protects cells by maintaining iron-sulfur cluster integrity. Our findings suggest that maintaining low cysteine levels safeguards mitochondrial iron homeostasis, and that excess cysteine triggers a distinct mitochondrial iron-dependent cell death under conditions of thiol imbalance.
    DOI:  https://doi.org/10.1038/s42255-026-01616-7
  2. Aging Cell. 2026 Sep;25(9): e70718
      The accumulation of somatic mitochondrial DNA (mtDNA) mutations across life is among the oldest and most debated proposed drivers of aging. A defining, counter-intuitive feature is that individual mutant molecules, although vanishingly rare when they arise, can come to dominate a cell's multi-copy mtDNA population through intracellular clonal expansion, producing a mosaic of respiratory-deficient cells across aging tissues. Here we synthesize current evidence to argue that clonal mosaicism of mtDNA heteroplasmy constitutes a quantifiable, tissue-specific molecular clock of aging. We trace foundational single-cell and multi-tissue observations of somatic mtDNA mutation, examine the causal evidence from mtDNA mutator mice, and dissect the debate between neutral genetic drift and cellular selection that governs clonal expansion. We then integrate recent single-cell and population-scale studies that have transformed the field: deep multi-tissue surveys revealing tissue-specific accumulation and a biphasic signature, biobank analyses linking heteroplasmy burden to mortality and organ-specific disease, and a two-step mechanism in which cryptic replication-error mutations become detectable through age-related clonal mosaicism. We discuss technologies such as single-cell mtDNA genotyping, duplex and long-read sequencing, and droplet digital PCR that now read the clock at single-molecule resolution, and we connect mutational accumulation to downstream aging phenotypes through mtDNA-driven innate immune signaling, cellular senescence and inflammaging. Finally, we position the mitochondrial clock alongside epigenetic and other aging clocks, highlighting concordance, complementarity, and what must be resolved before heteroplasmy can serve as a blood-based biomarker of biological age.
    Keywords:  aging; clonal expansion; heteroplasmy; mitochondrial DNA; molecular clock; respiratory chain deficiency; somatic mutation
    DOI:  https://doi.org/10.1111/acel.70718
  3. Cell. 2026 Sep 15. pii: S0092-8674(26)01010-X. [Epub ahead of print]
      The metabolic hallmarks of high-grade glioma (HGG) are not fully understood. Human brain tissue metabolomics revealed that the creatine synthesis pathway intermediate guanidinoacetate (GAA) accumulated ∼100-fold in HGGs relative to controls, which was caused by imbalanced activities of enzymes in this pathway. Glioma cells secreted GAA rather than using it to produce creatine, implicating an alternative function. GAA accumulates in GAA N-methyltransferase (GAMT) deficiency, an inborn error of metabolism, and elevates neuronal excitability. Neuronal excitability is also increased in glioma and drives tumor growth through neuron-glioma interactions. We hypothesized that glioma-generated GAA excites surrounding neurons. Indeed, GAA induced neuronal hyperactivity by activating GABAA receptors and causing depolarizing currents in glioma-associated neurons with dysregulated chloride homeostasis. Depleting tumoral GAA decreased electrochemical activity, neuron-glioma interactions, and tumor aggressiveness. Our findings unveil a mechanism linking cancer metabolism with cancer neuroscience and leverage human genetics to nominate GAA synthesis as a target in gliomas.
    Keywords:  GABA; GAMT deficiency; cancer metabolism; cancer neuroscience; creatine; glioma; guanidinoacetate; inborn error of metabolism; metabolite signaling
    DOI:  https://doi.org/10.1016/j.cell.2026.08.037
  4. Science. 2026 Sep 17. 393(6817): eady6372
      Cell-state diversity drives tissue adaptability, repair, and disease resilience, but capturing this complexity is a challenge. Current approaches rely on transcriptional profiling and overlook organelle structure, a key indicator of metabolism and stress. We developed spatial Organellomics (sOrganellomics), an imaging workflow that integrates automated segmentation with machine learning to classify and spatially map cell states from multi-organelle signatures. In liver and pancreas, these signatures distinguished broad cellular classes. In liver, sOrganellomics revealed that zonal position did not fully explain organelle-defined hepatocyte categories. Instead, hepatocytes formed intermixed communities within canonical zones, supporting a refined subzonal diversity model. Nutritional stress reshaped this organization. Intravital imaging linked fasting-induced organelle remodeling with altered mitochondrial membrane potential in vivo, supporting multi-organelle architecture as a structural readout of tissue adaptation.
    DOI:  https://doi.org/10.1126/science.ady6372
  5. Cell Rep. 2026 Sep 15. pii: S2211-1247(26)01041-7. [Epub ahead of print]45(9): 117963
      Understanding metabolism at the organ level is challenging, as tissue metabolite signals are transient and reflect transport, metabolism, and inter-organ communication. Here, we address this challenge by using a perifusion platform that enables time-resolved metabolite measurements in living kidney tissue under controlled input conditions. We apply this approach to native tubule and glomerulus preparations and generate >45,000 longitudinal, time-resolved metabolite measurements using targeted metabolomics. Tubules release tricarboxylic acid cycle and acetylated amino acid intermediates and show dynamic metabolic rewiring under oxidative stress. Amino acid exposure rapidly activates antioxidative and urea cycle reactions, improving resistance to oxidative damage in a sex-dependent manner. Supporting the translational relevance, metabolites released from tubules upon oxidative stress are also found in plasma from humans with acute kidney injury (secondary analyses of the original clinical trial NCT01534364). Thus, the approach developed here enables time-resolved interrogation of renal metabolic responses with defined metabolite inputs.
    Keywords:  AKI; CP: metabolism; acetylated amino acids; acetylation; acute kidney injury; amino acid metabolism; kidney metabolism; microfluidics; oxidative stress; perifusion; proximal tubules; time-resolved metabolomics
    DOI:  https://doi.org/10.1016/j.celrep.2026.117963
  6. Nat Genet. 2026 Sep 11.
      Aging epithelial tissues, including the esophagus, are colonized by somatic mutant clones under strong competitive selection. The effect of cancer treatment on mutant selection in normal epithelium is unknown. We hypothesized that some mutant clones may be selectively expanded during treatment. To test this, we sequenced normal esophageal epithelium removed from 70 patients after therapy for esophageal cancer. Patients received either no treatment, combination chemotherapy (FLOT, ECX or EOX) or chemotherapy and radiation therapy (CROSS). Mutant TP53 and PPM1D clones were expanded in patients undergoing CROSS. In the group undergoing FLOT, there was increased selection for RAC1, NFE2L2 and MTOR mutations consistent with these mutants conferring 5-fluorouracil resilience in normal epithelium. Sequencing normal epithelia reveals treatment-specific selection of mutations and may identify genes implicated in cellular responses to therapy.
    DOI:  https://doi.org/10.1038/s41588-026-02738-0
  7. Nat Cell Biol. 2026 Sep 15.
      Loss-of-function mutations in the endoplasmic reticulum membrane protein CLN8 cause Batten disease, a neurodegenerative lysosomal storage disorder. CLN8 acts with the lysosomal enzyme CLN5 to produce bis(monoacylglycero)phosphate (BMP), a signature lysosomal phospholipid with unique S,S stereochemistry. However, the role of CLN8 in this pathway has remained unclear. Here we establish that CLN8 is a glycerophosphoglycerol acyltransferase that catalyses the stereospecific acylation of S,S-glycerophosphoglycerol to generate S,S-lysophosphatidylglycerol, the CLN5 substrate in BMP synthesis. Cryo-electron microscopy structures define the CLN8 active site and support a ping-pong acyl transfer mechanism. Batten disease mutations impair CLN8 enzymatic activity and abolish BMP production in mice. Exogenous S,S-lysophosphatidylglycerol, but not the R,S stereoisomer, restores BMP synthesis in CLN8-deficient cells and mice and improves neurological phenotypes in cln8 mutant zebrafish. These findings define the function of CLN8, explain the biochemical basis of CLN8 Batten disease and establish BMP precursor supplementation as a proof-of-concept therapeutic strategy.
    DOI:  https://doi.org/10.1038/s41556-026-02061-0
  8. Cell Rep. 2026 Sep 17. pii: S2211-1247(26)01100-9. [Epub ahead of print]45(10): 118022
      Interest in fasting-based diets to improve metabolic health is growing. Caloric restriction (CR) with one meal per day includes an extended fasting component that contributes to its metabolic and longevity benefits, yet the role of fasting within CR remains unclear. Here, we compare CR with a fasting-refeeding-fasting (FRF) regimen while controlling food intake and fasting duration. Changes in plasma insulin and free fatty acids, hepatic mTOR signaling and ketogenesis, metabolic rhythms, and food digestion kinetics suggest that gastric emptying serves as a primary metabolic trigger in acute fasting. In contrast, CR fasting responses are regulated, suggesting anticipatory mechanisms. CR enhances circadian rhythmicity and metabolic gene coordination, whereas FRF disrupts it. CR improves glucose and fatty acid metabolism, while fasting leads to glucose intolerance and liver fat accumulation. These findings reveal that CR engages clock-aligned, anticipatory metabolic control, while fasting-refeeding cycles rely on direct nutrient cues.
    Keywords:  CP: metabolism; aging; caloric restriction; circadian rhythms; fatty acid metabolism; gene expression; metabolism; transcription
    DOI:  https://doi.org/10.1016/j.celrep.2026.118022
  9. Nat Commun. 2026 09 15. pii: 9788. [Epub ahead of print]17(1):
      Tumor progression is driven by cancer cells' ability to establish a cellular network through tunneling nanotube-like connections (TNTs), which enable mitochondrial exchange both within the tumor cells and with the tumor microenvironment (TME). However, the functional consequences of mitochondrial transfer between tumor and non-tumor cells, and its occurrence in vivo, remain poorly understood. Here we show bidirectional mitochondrial transfer between Glioblastoma (GBM) cells and non-tumoral astrocytes (AS). We report that transfer of damaged mitochondria from GBM cells to AS is associated with activation of mitophagy in recipient cells, while astrocyte-derived mitochondria to GBM cells correlates with changes in mitochondrial activity and metabolic readouts. Furthermore, intravital subcellular microscopy (ISMic) in a live animal model allows the visualization of TNT connections with characteristics similar to those observed in vitro and supported TNT-mediated mitochondrial transfer in vivo. These findings reveal a potential mechanism of tumor adaptation and highlight TNTs as promising therapeutic targets.
    DOI:  https://doi.org/10.1038/s41467-026-76619-9
  10. Cancer Cell. 2026 Sep 14. pii: S1535-6108(26)00382-X. [Epub ahead of print]44(9): 1882-1892.e7
      Adult diffuse gliomas are composed of malignant cell states interwoven with the non-malignant brain microenvironment. Here, we combine spatial transcriptomics and spatial proteomics of isocitrate dehydrogenase (IDH)-mutant gliomas to define organizational principles across histological grades. In low-grade tumors, spatial organization is shaped by underlying brain anatomy. We identify a functional white-gray matter junction that restricts cortical invasion and is associated with marked changes in tumor composition and cellular phenotypes. This junction is preferentially traversed by oligodendrocyte progenitor (OPC)-like malignant cells, suggesting a role in tumor expansion. In contrast, tumors with intermediate histological features are largely disorganized, with few recurring interactions between cancer cell states and microenvironmental cell types. In high-grade tumors, hypoxia-associated structure emerges, resembling IDH-wild-type glioblastoma. Together, these findings reveal two independent axes of spatial organization-from anatomy-driven structure in low-grade tumors to hypoxia-driven organization in high-grade tumors-and establish a framework linking tumor grade to recurrent spatial interactions.
    Keywords:  IDH-mutant glioma; spatial omics; spatial organization; tumor invasion; tumor microenvironment
    DOI:  https://doi.org/10.1016/j.ccell.2026.08.005
  11. Blood. 2026 Sep 17. pii: blood.2026034181. [Epub ahead of print]
      Targeting metabolic dependencies of leukemic stem cells (LSC) may open avenues to improve outcomes of patients suffering from acute myeloid leukemia (AML). LSCs rely heavily on an active tricarboxylic acid (TCA) cycle and mitochondrial oxidative phosphorylation whereas healthy hematopoietic stem and progenitor cells (HSPCs) possess more metabolic flexibility. Here, we identify the TCA cycle enzyme isocitrate dehydrogenase 3 (IDH3) as a critical and selective regulator of LSC maintenance. IDH3 is more abundant in LSCs compared to healthy HSPCs, and TCA cycle activity correlates with inferior clinical outcomes of AML patients. Knockdown of IDH3A, the catalytic subunit of the complex, impairs colony-forming potential and bone marrow organoid as well as in vivo engraftment of AML, while sparing healthy hematopoiesis. Mechanistically, IDH3A downregulation reduces TCA cycle flux and leads to accumulation of intracellular citrate, impairing both glycolysis and oxidative phosphorylation. The resulting bioenergetic crisis activates AMPK and suppresses mTORC1, leading to reduced translational activity and an imbalance of anti-apoptotic proteins. Consequently, IDH3A-KD cells show enhanced susceptibility to BCL2 inhibition by venetoclax in vitro and in vivo. In a clinical cohort, LSCs from patients resistant to venetoclax/azacitidine (Ven/Aza) exhibit transcriptomic programs indicative of active TCA cycle and glycolysis. We demonstrate that downregulation of IDH3A activity and subsequent citrate accumulation directly affect these pathways and shift AML stem cells towards a metabolic state of increased vulnerability. In summary, we establish IDH3 as a metabolic rheostat in LSCs and suggest targeting the IDH3A-citrate axis to overcome Ven/Aza resistance of AML patients.
    DOI:  https://doi.org/10.1182/blood.2026034181
  12. Nat Metab. 2026 Sep 18.
      Pancreatic α-cells are central regulators of glucose and amino acid homeostasis, yet the mechanisms that preserve α-cell identity and function remain incompletely understood. N6-methyladenosine (m6A) is a widespread mRNA modification that is essential for β-cell biology and pancreatic endocrine differentiation. Here we show that m6A is a key regulator of α-cell function and plasticity. In α-cells, metabolic cues that stimulate glucagon secretion such as L-arginine increase METTL3, METTL14 and m6A levels. Loss of m6A impairs amino acid-stimulated glucagon secretion, disrupts α-cell identity programmes and induces metabolic rewiring. In mice, α-cell-specific Mettl14 deletion reduces α-cell mass, increases β-cell mass and promotes α-to-β-cell conversion, accompanied by the emergence of late β-like states with features of incomplete maturation. Mechanistically, m6A-eCLIP identifies Yy1 as a direct m6A-sensitive target, and elevated YY1 links m6A loss to signalling rewiring and erosion of α-cell identity. These findings identify m6A as a central regulator of α-cell state and reveal an epitranscriptomic mechanism controlling endocrine cell plasticity.
    DOI:  https://doi.org/10.1038/s42255-026-01591-z
  13. J Clin Invest. 2026 Sep 17. pii: e205170. [Epub ahead of print]
      Pharmacologic immunosuppression is essential for preventing organ rejection and controlling autoimmunity, but profoundly impairs humoral immunity, increasing the risk of vaccine failure and infection. The mechanisms by which immunosuppressive therapies disrupt human B cell responses remain poorly defined. Here, we identified dysregulated lipid metabolism as a central determinant of impaired vaccine response in solid organ transplant recipients (SOTRs). Using high-dimensional immune profiling, single-cell transcriptomics, and functional metabolic assays, we found that effective B cell responses required a homeostatic balance between lipid synthesis and fatty acid oxidation. The widely used immunosuppressive agent, mycophenolic acid (MPA) was strongly associated with vaccine non-response and induced excessive lipid synthesis, lipid accumulation, and mitochondrial stress in B cells. In contrast, CD11c+ B cells retained the capacity to differentiate into plasmablasts in the presence of MPA through elevated expression of CPT1A, a mitochondrial fatty acid transporter, and enhanced fatty acid oxidation. These cells were found to be a key feature of early effective vaccine responses in healthy individuals and SOTRs. Notably, pharmacologic inhibition of cholesterol synthesis partially restored plasmablast differentiation in the presence of MPA. These findings identify B cell lipid metabolism as a critical and targetable regulator of human humoral immunity during immunosuppression.
    Keywords:  Adaptive immunity; B cells; Fatty acid oxidation; Immunology; Metabolism
    DOI:  https://doi.org/10.1172/JCI205170
  14. Proc Natl Acad Sci U S A. 2026 Sep 22. 123(38): e2616684123
      Lysosomal enzymes are synthesized in the Endoplasmic Reticulum (ER) and transported to lysosomes to execute their functions. Deficiencies in lysosomal enzymes or components of the lysosomal transport machinery result in lysosomal storage disorders. While mannose-6-phosphate mediated lysosomal enzymes sorting in the Golgi has been extensively characterized, the mechanisms governing their export from the ER remain elusive. Here, we show that de novo lipogenesis, a metabolic pathway responsible for fatty acid synthesis, regulates lysosomal enzyme transport. Inhibition of de novo lipogenesis leads to the retention of lysosomal enzymes within the ER. Mechanistically, fatty acid derived from de novo lipogenesis is used for Arf1 myristoylation. Myristoylated Arf1 promotes retrograde vesicle trafficking from the Golgi to the ER, thereby maintaining the homeostatic bidirectional flux required for efficient ER export of lysosomal enzymes. Our findings uncover a critical functional link between lipid metabolism and lysosomal enzyme trafficking.
    Keywords:  SREBP; de novo lipogenesis; lysosomal enzyme transport; protein myristoylation; proximity labeling
    DOI:  https://doi.org/10.1073/pnas.2616684123
  15. Nat Commun. 2026 Aug 20. pii: 9957. [Epub ahead of print]17(1):
      Metabolic reprogramming is a defining feature of cancer; however, how it contributes to therapeutic resistance remains incompletely understood. Here we show that loss of aldo-ketoreductase 1A1 (AKR1A1) in renal cell carcinoma (RCC) and hepatocellular carcinoma (HCC) disrupts terminal glycolytic flux and lactate production through S-nitrosylation-mediated inhibition of pyruvate kinase, resulting in the accumulation of methylglyoxal (MGO). In multiple AKR1A1-deficient models, but not in those endogenously expressing the C423/424 A mutant of pyruvate kinase M2, elevated MGO triggers autophagic degradation of Kelch-like ECH-associated protein 1, leading to Nuclear factor erythroid 2-Related Factor 2 (NRF2) activation and transcriptional reprogramming. This NRF2-driven response enhances chemoresistance and promotes tumor cell migration, two hallmarks of aggressive cancer. Therapeutically, we demonstrate that pharmacological inhibition of the glyoxalase system-the major pathway for MGO detoxification-restores drug sensitivity in patient-derived cells and xenograft models, revealing a context-dependent metabolic vulnerability in AKR1A1 loss conditions. These findings identify AKR1A1 as a metabolic tumor suppressor and uncover crosstalk between S-nitrosylation and glycation as a key regulatory axis linking metabolic reprogramming to NRF2-driven therapy resistance, offering glyoxalase inhibition as a potential precision treatment strategy for RCC and HCC.
    DOI:  https://doi.org/10.1038/s41467-026-76938-x
  16. Curr Pharmacol Rep. 2026 ;12(1): 38
       Purpose of Review: This article describes the recent discoveries on how the amino acid methionine alters mitochondrial metabolism to support tumor function and growth. A detailed understanding of these mechanisms of cross-talk between the methionine cycle and mitochondria will empower the discovery and development of new metabolism-targeting cancer therapies.
    Recent Findings: Methionine and metabolites of the methionine cycle are increasingly appreciated to have both direct and indirect roles in regulating mitochondrial metabolism, which are critical for survival, growth, and treatment-resistance in tumors. Recent work has discovered multiple mitochondrial transporters that directly connect tumor use of methionine-derived S-adenosylmethionine (SAM) to mitochondrial function. Carnitine is synthesized from SAM-mediated methylation of lysine and is critical for tumor energy generation by fatty acid oxidation. Tumors depend on mitochondrial transport of SAM to support methylation reactions and oxidative phosphorylation. Purine synthesis is supported by mitochondrial one-carbon units from the folate cycle in tumors, which requires remethylation of homocysteine to form methionine to prevent folate trapping. Preclinical and clinical studies investigating both pharmacological and nutritional interventions are uncovering the mechanisms by which mitochondrial function depends on methionine metabolism. Further exploration in this area will define both the targets and specific interventions with the greatest promise for the treatment of cancer patients.
    Summary: Methionine metabolism influences many aspects of mitochondrial function, including energy generation, antioxidant defenses, and lipid composition. Understanding how tumors co-opt these processes and their dependence on the amino acid nutrient methionine provides an opportunity for new cancer therapies.
    Keywords:  Cancer; Metabolism; Methionine; Methylation; Mitochondria; S-adenosylmethionine
    DOI:  https://doi.org/10.1007/s40495-026-00481-y
  17. Endocr Relat Cancer. 2026 Sep 18. pii: ERC-26-0323. [Epub ahead of print]
      The succinate dehydrogenase (SDH) enzyme composed of four subunits (A-D) has a key role in the Krebs cycle and oxidative phosphorylation. Germline pathogenic variants (GPV) in the genes encoding the four subunits of the succinate dehydrogenase (SDH) enzyme (SDHA/SDHB/SDHC/SDHD), collectively known as SDHx are recognized as a paradigm for the role of disordered metabolism in oncogenesis as GPVs in SDHx lead to a truncated citric acid cycle due to reduced or absent function of the SDH enzyme and accumulation of the oncometabolite succinate. GPVs in SDHx are the most common cause of hereditary PPGL and are associated with a higher risk of malignant PPGL and predispose to other tumors including renal cell carcinoma, gastrointestinal stromal tumors (GIST) and pituitary adenomas. Utilizing the linkage of SDHx to metabolic dysfunction, we performed prospective plasma metabolomics and identified succinate as a biomarker for early diagnosis of an underlying SDHx variant. Succinate reflected SDHx deficiency, in individuals with germline predisposition and a small number of patients with somatic SDHx deficiency, and succinate levels correlated with tumor burden. Longitudinal sampling of patients illustrated that serial succinate measurements might be used as a biomarker for disease surveillance. These findings were validated by tissue analysis in a mouse model of Sdhb deficiency, where elevated succinate was observed in adrenal glands. While circulating plasma levels did not mirror the human cohort, this discrepancy suggests specific cellular thresholds for succinate or SDHx deficiency in adrenal gland tissue and highlights species-specific metabolic regulation.
    Keywords:   SDHB, paraganglioma/pheochromocytoma; liquid biopsy; metabolomics
    DOI:  https://doi.org/10.1530/ERC-26-0323
  18. Redox Biol. 2026 Sep 17. pii: S2213-2317(26)00405-2. [Epub ahead of print]97 104406
      Ferroptosis, an iron-dependent cell death, emerged as a new therapeutic approach to treat diseases such as cancer or diabetes. Several pathological conditions are characterized by the appearance of chronic hypoxia, which is known to attract immune cells, especially monocytes and macrophages. Therefore, we investigated how chronic hypoxia affects ferroptosis in primary human macrophages and THP-1 cells. Chronic but not acute hypoxia sensitized cells towards ferroptosis, in line with elevated cellular as well as mitochondrial lipid peroxides, and mitochondrial ROS. Time kinetics revealed an earlier increase in lipid peroxidation under chronic hypoxia compared to normoxia, which was followed by mitochondrial lipid peroxidation and mitochondrial ROS. Mechanistically, and in contrast to normoxia and/or acute hypoxia, chronic hypoxia diminished nuclear abundance and activity of the antioxidant transcription factor NRF2. Consequently, NRF2 target gene expression, including ferroptosis suppressor protein 1 (FSP1), decreased. Inhibition or knockdown of FSP1 mimicked the ferroptosis-sensitizing effect of chronic hypoxia. To causatively link decreased NRF2 activity to increased ferroptosis under hypoxia, we inhibited KEAP1, which preserved NRF2 activity, increased FSP1 expression, and decreased ferroptosis. Our data provides novel insights into NRF2 regulation under chronic hypoxia linked to FSP1 expression and ferroptosis sensitivity of primary human macrophages.
    Keywords:  AIFM2; Lipid peroxidation; NRF2; THP-1
    DOI:  https://doi.org/10.1016/j.redox.2026.104406
  19. Annu Rev Pathol. 2026 Sep 17.
      The human genome is both fragile and resilient: prone to alteration yet protected by extensive repair mechanisms. With age, individuals accumulate genetic damage from environmental factors and cell-intrinsic processes, with effects ranging from benign nucleotide shifts to disease-driving mutations. Such alterations to the genetic code outside the germline are described as somatic mutations and display striking heterogeneity across cell types. Recently, somatic mutations have emerged as a hallmark feature of aging in the body's longest-lived tissue: the central nervous system (CNS). The distinctively long lifespan, high metabolism, electrochemical activity, and unique epigenome of CNS cells may render them especially vulnerable to mutational accumulation. The CNS therefore provides a model for understanding how somatic mutations drive cellular dysfunction beyond an established role in cancer. Here, we review the somatic mutations that arise in the brain across lifespan, the mechanisms that lead to their formation, and their potential contributions to aging and age-related disease.
    DOI:  https://doi.org/10.1146/annurev-pathmechdis-042624-113746
  20. Nat Commun. 2026 Aug 15. pii: 9829. [Epub ahead of print]17(1):
      Friedreich's ataxia (FA) is a mitochondrial disease caused by frataxin deficiency that leads to progressive neurodegeneration and cardiomyopathy. Effective disease-modifying therapies remain limited. Here we show that myeloid cell replacement promotes neurological and cardiac recovery in FA mice through intercellular mitochondrial transfer. Donor-derived mitochondria are transferred from microglia and macrophages to central nervous system cells and cardiomyocytes, increasing oxidative phosphorylation and ATP synthesis gene expression and mitochondrial protein abundance. These molecular changes are accompanied by improved survival and growth in male and female mice and enhanced spontaneous locomotion, strength, coordination and cardiac and function in female mice. In cultured cells, mitochondrial transfer requires direct cell-cell contact and partially restores respiratory capacity in frataxin-deficient recipient cells, which exhibit enhanced mitochondrial uptake, suggesting disease-specific mechanisms that promote mitochondrial acquisition or retention. These findings identify mitochondrial transfer as a mechanism underlying the therapeutic effects of myeloid cell replacement and support hematopoietic transplantation for FA and other mitochondrial disorders.
    DOI:  https://doi.org/10.1038/s41467-026-76775-y
  21. Biochim Biophys Acta Rev Cancer. 2026 Sep 14. pii: S0304-419X(26)00177-0. [Epub ahead of print]1881(6): 189705
      Metastasis is the leading cause of cancer-related mortality, yet the mechanisms driving organ-specific colonization remain incompletely understood. Increasing evidence suggests that metastatic success depends on a "metabolic match" between disseminated tumor cells and the microenvironment of the target organ. In this mini-review, we discuss how intrinsic metabolic programs inherited from the primary tumor interact with extrinsic factors such as nutrient availability, redox balance, extracellular matrix remodeling, and organ-resident cells to shape metastatic organotropism. We propose that the interplay between cancer cell metabolic plasticity and tissue-specific metabolic landscapes critically determines metastatic fitness and may uncover new therapeutic vulnerabilities.
    Keywords:  Metabolic match; Metabolic plasticity; Metastasis; Metastatic organotropism; Organ-resident cells; Pre-metastatic niche; Tumor metabolism; Tumor microenvironment
    DOI:  https://doi.org/10.1016/j.bbcan.2026.189705
  22. Cell Rep. 2026 Sep 15. pii: S2211-1247(26)01087-9. [Epub ahead of print]45(10): 118009
      The mechanism underlying the role of ectonucleotide pyrophosphatase/phosphodiesterase 1 (ENPP1) in metabolic disease remains unsolved. Using a 2'3'-cyclic GMP-AMP (cGAMP)-hydrolysis-deficient mouse (Enpp1H362A), we show that selective loss of this activity exacerbates high-fat diet (HFD)-induced weight gain and insulin resistance. An in vivo glucose-uptake screen identifies brown adipose tissue (BAT) as a key site of metabolic impairment, marked by extracellular cGAMP accumulation and defective insulin-stimulated glucose uptake. Mechanistically, nutrient excess drives mitochondrial DNA leakage in brown adipocytes, triggering cGAMP synthesis and export. Excess extracellular cGAMP directly suppresses glucose uptake in brown adipocytes via stimulator of interferon genes (STING) pathway. Furthermore, impaired cGAMP clearance acts as a paracrine signal that recruits and polarizes BAT macrophages toward a pro-inflammatory M1-like phenotype. Finally, the human ENPP1 K173Q variant associated with obesity and diabetes displays reduced cGAMP hydrolysis activity. Together, these findings establish ENPP1 as an immunometabolic checkpoint that buffers extracellular cGAMP to maintain metabolic homeostasis.
    Keywords:  CP: immunology; CP: metabolism; ENPP1; STING; brown adipose tissue; diabetes; extracellular cGAMP; immune checkpoint; immunometabolism; insulin resistance; obesity
    DOI:  https://doi.org/10.1016/j.celrep.2026.118009
  23. Nat Med. 2026 Sep 16.
    MULTI Consortium
      Sex differentially shapes aging, neurodevelopment and neurodegenerative diseases such as Alzheimer's disease (AD). However, most biological aging clocks (artificial intelligence-predicted age minus chronological age) were trained on sex-pooled samples and implicitly assume sex invariance.Here we developed 38 sex-specific biological aging clocks across 15 organ systems. We first demonstrate the importance of sex-stratified training for constructing sex-specific healthy normative references and then reveal marked divergence between female and male clocks. Key genetic parameters and Mendelian randomization results indicate that organ-specific aging liability and its relationships to cardiometabolic, endocrine and mental traits are configured differently in females and males. Proteomic analyses identify distinct, organ-resolved synaptic, immune, vascular and metabolic networks that differentially track female and male biological aging. In longitudinal survival analyses, sex-specific clocks predict whole-body systemic diseases and all-cause mortality in a sex-dependent and organ-dependent manner. Further analyses reveal sex-dependent associations between the brain aging clock and cognitive decline trajectory during a preclinical AD clinical trial. Sex-stratified clocks may offer distinct value by defining biological age against sex-appropriate normative references and revealing sex-dependent genetic, molecular and clinical signatures that pooled models may obscure. Meanwhile, sex-pooled and sex-interaction approaches remain valuable, as human aging and disease also share fundamental biological similarities between females and males. Together, these findings reveal sex-specific biological aging signatures in aging, AD and systemic health, highlighting the need for explicitly sex-stratified modeling approaches.
    DOI:  https://doi.org/10.1038/s41591-026-04662-6
  24. Nat Rev Genet. 2026 Sep 11.
      For over a century, scientists have debated the extent to which genetic and phenotypic variation among present-day humans is the result of natural selection - in which heritable traits influence survival or reproduction - versus neutral processes such as genetic drift or population history. The initial sequencing of the human genome and subsequent population resequencing studies enabled genome-scale searches for signatures of selection in present-day genomes. This first generation of genome-wide selection scans identified many targets but left open questions about the timing and nature of selection, making it challenging to identify environmental and biological drivers. Recent methodological advances based on reconstructing ancestral recombination graphs have increased the potential power and resolution of selection scans based on present-day genomes, while the availability of new data on ancient DNA has facilitated the direct reconstruction of genetic change through time. However, there is little consensus on how to use these data to detect and interpret signatures of selection, while avoiding confounders. Here, we review the current state of knowledge about the impact of selection on human genomic diversity and highlight conceptual advances in our understanding of human evolution over the past 10,000 years.
    DOI:  https://doi.org/10.1038/s41576-026-01010-9
  25. Nat Commun. 2026 08 27. pii: 9881. [Epub ahead of print]17(1):
      To select behaviors appropriate to their circumstances and needs, animals integrate information about the external environment with information about the state of their bodies, derived from sensing and processing internal signals (interoception). However, the brain-wide circuit activity underlying interoception and its integration with sensorimotor processing remains unclear, partly because of technical barriers to accessing whole-brain activity at the cellular level during physiological perturbations. We developed an all-optical system for whole-brain neuronal imaging in behaving larval zebrafish during optical uncaging of gut- or bloodstream-targeted nutrients and visuo-motor stimulation. Widespread neural activity throughout the brain encoded nutrient delivery, unfolding on multiple timescales across many peripheral and central regions. Evoked activity depended on delivery location and occurred in response to both amino acids and D-glucose, but not L-glucose. Many gut responsive neurons also responded to swimming and visual stimuli, with brainstem areas primarily integrating gut and motor signals and midbrain regions integrating jointly gut, visual, and motor signals. This platform links body-brain communication studies to brain-wide neural computation in awake, behaving vertebrates.
    DOI:  https://doi.org/10.1038/s41467-026-76242-8
  26. Nature. 2026 Sep 16.
      γδ T cells are becoming increasingly appreciated for their antitumour capacity and role in mediating responses to immune checkpoint blockade1-3. Unlike classical αβ T cells, the degree to which γδ T cells rely on their T cell receptors (TCRs) to induce antitumour responses remains unclear. The challenge of distinguishing γδ T cells with tumour-reactive TCRs from bystander γδ T cells limits our understanding of tumour-reactive γδ T cell biology and the translation of their TCRs into immunotherapeutics. Here we present PreGame, a machine-learning algorithm capable of identifying tumour-reactive γδ T cells from single-cell CITE sequencing data. We use PreGame to identify tumour-reactive γδ T cells from patients with multiple myeloma or other solid cancers, and confirm the specificity of their TCRs to tumour cells. Clinically, we demonstrate that expansion of tumour-reactive γδ T cells is an early biomarker of response in patients with multiple myeloma receiving combination therapy with belantamab mafodotin. We also identify a γδ TCR epitope in the ubiquitously expressed HLA-C protein and a logic gate that enables tumour immunosurveillance. Thus, PreGame is a versatile tool that can accelerate our understanding of γδ T cell biology and facilitate the translation of γδ TCRs into universal therapeutics.
    DOI:  https://doi.org/10.1038/s41586-026-11055-9
  27. Cell. 2026 Sep 14. pii: S0092-8674(26)01004-4. [Epub ahead of print]
      Programmed ribosomal frameshifting (PRF) is a conserved viral strategy for expressing polyproteins from compact genomes. Although PRF is traditionally viewed as a structural mechanism, here we show that it functions as a regulatory signal that rewires host translation in favor of viral replication. A minimal SARS-CoV-2 PRF element is sufficient to activate the GCN2 arm of the integrated stress response (ISR) independently of the canonical ISR sensor ZAKα. This activation serves as a temporal switch during early infection to shut off host translation and is required for viral propagation in cells and human airway organoids. Proteomic and genetic screens identify DRG1 and IGF2BP3 as key mediators of PRF-induced GCN2 activation. We further show that this PRF-GCN2 axis is conserved in human immunodeficiency virus (HIV)-1 and West Nile virus, highlighting its broad relevance across RNA viruses. These findings reveal a sophisticated mechanism of viral translational control, highlighting PRF as a stress-inducing module that enhances viral replication.
    Keywords:  RNA virus; cellular stress; host-pathogen interactions; integrated stress response; programmed ribosomal frameshifting; ribosome collision; translation; virology
    DOI:  https://doi.org/10.1016/j.cell.2026.08.031
  28. Nat Commun. 2026 09 16. pii: 9877. [Epub ahead of print]17(1):
      Cellular senescence is a state of irreversible cell cycle arrest triggered by telomere erosion, persistent DNA damage or chronic stress. The accumulation of senescent cells disrupts tissue function and contributes to aging and disease. Here, we employ mass spectrometry-based proteomics to systematically interrogate dynamic proteome changes at multiple levels during the progression of replicative cellular senescence. We demonstrate that proteome changes during senescence occur in a coordinated manner, characterized by widespread protein depletion on chromatin. Moreover, components of the cytoplasmic translation machinery are depleted, while mitochondrial proteins display increased insolubility. Autophagic and proteasome activity is compromised in senescent cells along with remodeling of ubiquitin linkages and depletion of ubiquitin E3 ligases. Comparison of the senescent proteome with different pathophysiological cellular states reveals a distinctive senescent signature shaped by changes in the proteostasis network. Collectively, we provide a resource for the exploration of temporally resolved changes in the senescent proteome.
    DOI:  https://doi.org/10.1038/s41467-026-77686-8
  29. Cell Rep. 2026 Sep 11. pii: S2211-1247(26)01057-0. [Epub ahead of print]45(9): 117979
      Mitochondrial DNA (mtDNA) damage has been linked to age-related tissue decline, yet its impact on muscle stem cells (MuSCs) integrity remains unclear. Here, we used a dominant-negative variant of the mitochondrial helicase Twinkle (p.K320E) to induce mtDNA instability in C2C12 and MuSCs, and examined myogenic differentiation. In C2C12, mtDNA alterations impaired respiratory complex assembly, increased reactive oxygen species, and disrupted differentiation. Proteomic analyses of differentiated C2C12 revealed extensive remodeling of the mitochondrial proteome. In vivo, during muscle regeneration, MuSCs expressing K320E generated fibers showing mitochondrial dysfunction and elevated oxidative stress. Furthermore, when mtDNA instability was induced during early postnatal stages, mtDNA alterations were progressively transmitted to mature myofibers, resulting in persistent fiber remodeling of the skeletal muscle. Together, these findings identify mtDNA instability in muscle progenitors as a driver of skeletal muscle remodeling and reveal that even modest levels of mtDNA alterations are sufficient to compromise skeletal muscle function.
    Keywords:  CP: developmental biology; mitochondria; mtDNA; muscle differentiation; satellite cells; skeletal muscle
    DOI:  https://doi.org/10.1016/j.celrep.2026.117979
  30. Nat Cell Biol. 2026 Sep 15.
      According to text book knowledge, de novo glycerophospholipid (GPL) synthesis begins with the acylation of glycerol-3-phosphate to form phosphatidic acid, the precursor of all other GPLs. Here we describe an alternative GPL synthesis pathway that starts with the acyl-CoA-dependent acylation of glycerophosphoglycerol, resulting in the formation of lysophosphatidylglycerol. The acyltransferase reaction is catalysed by the Batten disease-associated protein ceroid lipofuscinosis neuronal 8 (CLN8). Tracer studies revealed that CLN8-derived lysophosphatidylglycerol is selectively converted into bis(monoacylglycero)phosphate (BMP), a GPL essential for lysosomal lipid homeostasis but not into phosphatidylglycerol or cardiolipin. CLN8-knockout cells and mice cannot utilize glycerophosphoglycerol for BMP synthesis, resulting in BMP deficiency and excess accumulation of phospholipids in lysosomes. The lipid synthesis pathway described herein is relevant for understanding lysosomal lipid metabolism and the pathogenesis of neurodegenerative diseases. BMP deficiency may contribute to or even underlie lysosomal cargo accumulation in certain forms of Batten disease and other lysosomal storage disorders.
    DOI:  https://doi.org/10.1038/s41556-026-02059-8
  31. Cell Metab. 2026 Sep 18. pii: S1550-4131(26)00370-0. [Epub ahead of print]
      Metabolic dysfunction-associated steatotic liver disease (MASLD) severity is independently linked with pathogenic CD4+ T cell responses and skewed hepatic glutamine (Gln) metabolism. Whether these processes interact to drive disease progression remains unclear. Here, we identify hepatic Gln depletion as a key feature of steatohepatitis that is linked with increased hepatic CD4+ T cell inflammation and hepatocellular damage in humans. In complementary mouse models, both total hepatic and hepatic CD4+ T cell Gln levels were similarly reduced. Restoration of hepatic Gln through supplementation selectively restrained hepatic CD4+ T cell inflammatory programs and alleviated hepatocellular damage and disease severity. Mechanistically, T cell-intrinsic Gls1-mediated glutaminolysis limited O-GlcNAcylation to dampen pathogenic CD4+ T cell inflammation. Importantly, Gln treatment dampened CD4+ T cell-mediated injury in human liver organoids. Together, these findings establish hepatic CD4+ T cell-intrinsic Gln metabolism as a critical rheostat of pathogenic inflammation in MASLD and invoke metabolism-targeted strategies to restrict disease progression.
    Keywords:  MASH; MASL; MASLD; NAFL; NAFLD; NASH; adaptive immunity; amino acid metabolism; immunometabolism; obesity
    DOI:  https://doi.org/10.1016/j.cmet.2026.08.018
  32. Cell. 2026 Sep 17. pii: S0092-8674(26)00999-2. [Epub ahead of print]189(19): 5980-5994.e8
      Over the past two decades, human aging has been characterized across DNA methylation, transcriptomic, proteomic, and clinical modalities, yet no benchmark evaluates whether AI systems can interpret these heterogeneous data types in the context of aging biology. We introduce LongevityBench, an open suite of 17 tasks spanning five biodata domains, and use it to assess 18 frontier AI systems from six developer teams. Despite recent advances in AI, no single model dominates all tasks, with omics-based age prediction being the hardest task regardless of scale. To test whether these gaps can be closed without frontier-scale resources, we fine-tuned a family of five multitask Longevity-LLMs on domain-specific aging data. The compact (0.6B-9B parameters) Longevity-LLMs matched or exceeded far larger frontier systems on LongevityBench, showing that general-purpose language models can be adapted to structured-omics tasks. We publicly release the benchmark, models, and Longevity Claw, an agentic research interface for aging researchers.
    Keywords:  aging; aging clock; benchmark; fine-tuning; foundation model; geroprotector; large language model; longevity; multi-omics; target discovery
    DOI:  https://doi.org/10.1016/j.cell.2026.08.026
  33. Cancer Cell. 2026 Sep 18. pii: S1535-6108(26)00392-2. [Epub ahead of print]
      Small cell lung cancer (SCLC) is a highly aggressive neoplasm with limited sensitivity to anti-PD-(L)1 blockade, which is likely caused by the epigenetic silencing of MHC-I. Elucidating MHC-I-independent immune recognition mechanisms is therefore crucial for enhancing treatment responses and improving clinical outcomes in a greater number of patients. Leveraging single-cell approaches, we discovered γδ T cell infiltration in biospecimens from patients with SCLC. Despite PD-1 expression, γδ T cells maintained a cytotoxic transcriptional profile, suggesting an anti-tumor role. Indeed, high γδ T cell infiltration in two practice-changing clinical trials predicted improved response to anti-PD-L1 immunotherapy in patients with SCLC. Moreover, using preclinical models, we demonstrated that γδ T cells are effective at tarlatamab (delta-like ligand 3 [DLL3]-CD3 bispecific T cell engager [BiTE])-redirected SCLC killing and that zoledronate, an FDA-approved compound, can sensitize SCLC cells to γδ T cell-mediated killing. Thus, our findings suggest that engaged γδ T cells are potentially valuable targets for SCLC therapy.
    Keywords:  immunotherapy; single-cell RNA sequencing; small cell lung cancer; tarlatamab; zoledronate; γδ T cells
    DOI:  https://doi.org/10.1016/j.ccell.2026.08.015
  34. Nat Commun. 2026 Aug 20. pii: 9938. [Epub ahead of print]17(1):
      Chromatin organizes DNA and regulates nuclear mechanics. However, whether and how chromatin regulates whole-cell mechanics and functions independently of transcription is largely unknown. Here, leveraging transcription-independent NETosis, we show that chromatin decompaction within the nucleus increases plasma membrane tension and cell volume. Mechanistically, we show that chromatin accessibility gradually increases and chromatin binding proteins (CBPs) H1, HP1α, and H3 differentially dissociate from chromatin as it decompacts during NETosis. We posit that dissociated CBPs become osmolytes that alter cellular osmolarity. Consistently, tuning extracellular osmolarity or disrupting regulators of membrane tension and cell volume (mTORC1/2, NHEs, or VRAC ion channels) alters plasma membrane rupture and NETosis execution. In non-NETing U2OS cells, decompacting chromatin increases membrane tension, independently of the cytoskeleton, indicating a causal relationship between chromatin organization and membrane tension. This work shows chromatin as a regulator of whole-cell mechanics, broadening our understanding of the non-genetic roles of chromatin in cell pathophysiology.
    DOI:  https://doi.org/10.1038/s41467-026-76578-1
  35. EMBO Rep. 2026 Sep 18.
      Metabolites and metabolic cofactors can shape the innate immune response, though the pathways by which these molecules adjust inflammation remain incompletely understood. Here we show that the metabolic cofactor coenzyme A (CoA) enhances IL-4 driven alternative macrophage activation [M(IL-4)] in vitro and in vivo. Unexpectedly, we find that perturbations in intracellular CoA metabolism do not influence M(IL-4) differentiation. Rather, we discover that exogenous CoA is a weak TLR4 agonist which primes macrophages for increased receptivity to IL-4 signals and resolution of inflammation via MyD88. Mechanistic studies reveal MyD88-linked signals enhance IL-4 responsiveness, in part, by reshaping chromatin accessibility to enhance transcription of IL-4-linked genes. The results identify CoA as a host metabolic co-factor that influences macrophage function through an extrinsic TLR4-dependent mechanism and suggest that damage-associated molecular patterns (DAMPs) can prime macrophages for alternative activation and resolution of inflammation.
    DOI:  https://doi.org/10.1038/s44319-026-00925-y
  36. Cancer Res. 2026 Sep 15.
      The aged tumor microenvironment can impair antitumor T cell function, but the molecular regulators that become limiting in this setting remain poorly defined. In a recent issue of Cell, Chen and colleagues harness in vivo CRISPR screening to compare the effects of genetic perturbations in tumor-reactive CD8+ T cells across young and aged hosts. The screen reveals that increased T cell persistence or an effector-like transcriptional state does not necessarily translate into improved tumor control and identifies Dusp5 and Zfp219 as distinct functional regulators. DUSP5 broadly restrains ERK-dependent proliferation, and its loss improves tumor control in both young and aged mice. ZFP219, by contrast, preferentially limits cytotoxicity in aged hosts; its deletion increases granzyme expression and improves tumor control specifically in the aged setting. Human tumor datasets show that ZNF219 expression in intratumoral CD8+ T cells increases with age and is associated with poorer clinical outcomes. Moreover, Zfp219 loss enhances the response to PD-1 blockade in aged mice, producing complete tumor clearance in a subset of animals and durable protection after rechallenge. Together, these findings show that host age can reshape the functional consequences of T cell perturbations and reveal age-dependent genetic vulnerabilities with potential therapeutic relevance.
    DOI:  https://doi.org/10.1158/0008-5472.CAN-26-3854
  37. Nat Genet. 2026 Sep 15.
      Inflammation accelerates evolutionary dynamics of hematopoietic stem cells (HSCs) in clonal hematopoiesis and myeloid neoplasms. We studied HSCs, progenitors and immune cells from patients with myeloproliferative neoplasms at baseline and following interferon-α (IFNα) treatment, the only therapy to deplete mutated stem cells. We deployed single-cell multiomics methods that distinguish the IFNα effects on mutated stem cells from the admixed wild-type HSCs, with respect to their differentiation, transcriptomes, immunophenotypes and chromatin accessibility. IFNα simultaneously activated HSCs into two polarized states: a lymphoid progenitor expansion associated with an anti-inflammatory state and an inflammatory myeloid progenitor state derived from HSCs. The augmented lymphoid differentiation balanced the typical myeloproliferative-neoplasm-induced myeloid bias, associated with normalized blood counts. Somatic mutations modified the effects of IFNα on HSC differentiation and cell cycle entry rates. Clonal fitness upon IFNα exposure was due to resistance of CALR- or JAK2-mutated stem cells to differentiate into inflammatory myeloid progenitors.
    DOI:  https://doi.org/10.1038/s41588-026-02751-3
  38. Cell Death Differ. 2026 Sep 15.
      Beyond its roles in ATP production and shaping cristae architecture, mitochondrial ATP synthase has been implicated in generating the permeability transition pore (PTP), a Ca2+-activated, high-conductance channel that leads to matrix swelling and cell death in mammalian cells. In Drosophila melanogaster, the PTP homolog rather forms a selective Ca2+-induced Ca2+-release (CICR) channel whose physiological relevance at the organism level remains poorly understood. Here, we down-regulated Drosophila subunits e and g, which are essential for PTP formation in yeast and mammalian cells. Ubiquitous down-regulation of either subunit caused larval developmental arrest, whereas tissue-specific suppression in muscle or neurons led to severe locomotor impairment. Dimerization was markedly reduced, altering mitochondrial ultrastructure while leaving respiratory capacity largely preserved. Strikingly, mitochondria from both knockdown animals accumulated larger Ca2+ loads, consistent with an impaired CICR. This was accompanied by near-complete loss of ecdysone, the Ca2+-dependent master hormone of metamorphosis. Neuron-specific knockdown flies displayed defective mitochondrial Ca2+ efflux and altered synaptic organization at the neuromuscular junction. Altogether, our findings establish that ATP synthase functions as a CICR channel controlling Ca2+ homeostasis, endocrine signaling and development in Drosophila.
    DOI:  https://doi.org/10.1038/s41418-026-01869-5
  39. Proc Natl Acad Sci U S A. 2026 Sep 22. 123(38): e2611776123
      Locally broken symmetries are used across fields to transport matter, particles, and information in preferential directions. Beyond local mechanisms, spatially distributed nonlinearities in crystalline media have enabled nonreciprocal transport, a rectification mechanism that operates continuously across scales and frequencies. Here, we show that this concept applies beyond condensed matter, to fluid transport in living organisms and artificial systems. We take the example of the lymphatic vascular system, which transports interstitial fluid in mammals, and demonstrate that distributed leaflets act as continuous broken symmetries. We build an artificial model of a collecting lymphatic and investigate the naturally richer dynamics of unidirectional transport that arises from spatiotemporal excitations. We observe robust and scalable transport across a broad range of waveshapes and external pressure gradients. We show experimentally and theoretically that the contraction wavelength, directionality, and pulsatility control the flow rate. In particular, we counterintuitively find waveshapes that maximize transport when propagating against the direction of the flow. Overall, our findings advance the understanding of unidirectional fluid transport in living systems and beyond, and reveal how coupling nonlinearities with spatiotemporal excitations can tune such transport across fields.
    Keywords:  bioinspiration; flow rectification; fluid mechanics; nonreciprocal transport
    DOI:  https://doi.org/10.1073/pnas.2611776123
  40. Nat Commun. 2026 Sep 18. pii: 9740. [Epub ahead of print]17(1):
      Mutant isocitrate dehydrogenase 1 (mIDH1) catalyzes 2-hydroxyglutarate (2HG) production which leads to epigenetic reprogramming in astrocytomas with tumor protein p53 (TP53)/α-thalassemia/mental retardation, X-linked (ATRX) loss. RNA-sequencing, single-cell RNA-sequencing, and Chromatin Immunoprecipitation sequencing (ChIP-seq) followed by bioinformatics analysis shows that human and mouse mIDH1 gliomas exhibit downregulated gene ontologies (GOs) related to mitochondrial metabolism and upregulated autophagy-related GOs. Decreased mitochondrial metabolism is accompanied by decreased glycolysis, rendering autophagy as a source of energy in mIDH1 gliomas. Mutant IDH1 glioma cells exhibit increased expression of autophagy-related proteins and enhanced microtubule-associated protein 1 light chain 3 (LC3) I/II conversion, indicating augmented autophagy. Inhibiting autophagy in vivo by administration of synthetic protein nanoparticles (SPNPs) encapsulating autophagy related gene 7 (ATG7) silencing RNA sensitizes mIDH1 glioma cells to radiation, resulting in tumor regression, long-term survival, and immunological memory. This work uncovers autophagy as a critical pathway for survival in mIDH1 gliomas and its inhibition elicits radiosensitivity in vitro in human and mouse mIDH1 glioma cells, and in vivo in mIDH1 models.
    DOI:  https://doi.org/10.1038/s41467-026-77320-7
  41. Stem Cell Reports. 2026 Sep 17. pii: S2213-6711(26)00291-2. [Epub ahead of print] 103080
      Peroxisomes are metabolic organelles that undergo fission to maintain peroxisome number for lipid homeostasis and cellular function. The peroxisomal fission machinery is shared with mitochondria, and although mitochondrial fission regulates neural cell fate decisions during human neurogenesis, it remains unclear whether peroxisomal fission independently influences human neural development. PEX11β selectively regulates peroxisomal fission by promoting membrane deformation, elongation, and downstream fission factor recruitment. To uncouple mitochondrial and peroxisomal fission in early human neurogenesis, we generated PEX11β knockout iPSCs and tracked differentiation into neural progenitors and neural rosettes. At the cellular level, perturbing PEX11β selectively impaired peroxisomal lipid metabolism, characterized by reduced ether-linked phospholipids. At the tissue level, PEX11β deficiency altered neural rosette architecture, resulting in enlarged central lumens and expanded neural progenitor populations. This human neural model uncouples mitochondrial and peroxisomal fission and positions PEX11β as a distinct regulator of lipid metabolism and neural progenitor fate during human neurogenesis.
    Keywords:  DRP1; PEX11β; fission; induced pluripotent stem cells; neural progenitor cells; neurogenesis; peroxisomes
    DOI:  https://doi.org/10.1016/j.stemcr.2026.103080
  42. Cell Rep. 2026 Sep 17. pii: S2211-1247(26)01094-6. [Epub ahead of print]45(10): 118016
      KRAS(ON) and KRAS(OFF) inhibitors have improved the treatment of KRAS-driven tumors, yet resistance remains a major challenge. Here, we identify PADI1 and PADI3 as negative prognostic markers in KRAS-mutant colorectal and pancreatic cancers. KRAS-driven metabolic rewiring sustains their expression through an enhancer within the PADI1 locus. Although KRAS inhibition suppresses PADI1/3 expression in sensitive cells, resistant models maintain elevated PADI1/3 expression and accumulate intracellular calcium, sustaining PADI-dependent adaptive survival. Pharmacological inhibition of PADIs synergizes with KRAS(ON) and KRAS(OFF) inhibitors in two- and three-dimensional cancer models, restores sensitivity in resistant cells, and enhances antitumor activity in vivo. Integrated transcriptomic and proteomic analyses identify HSPA9/Mortalin as a critical citrullinated effector. PADI3-mediated citrullination enhances Mortalin ATPase activity and ATP/ADP cycling, whereas loss of citrullination correlates with apoptosis. Disruption of this adaptive circuitry triggers mitochondrial dysfunction, caspase activation, and non-lytic apoptosis without detectable DAMP release, revealing a therapeutic vulnerability of KRAS-driven tumors.
    Keywords:  CP: cancer; KRAS; KRAS(OFF); KRAS(ON); Mortalin; PADI1; PADI3; citrullination; colorectal cancer; pancreatic ductal adenocarcinoma; zoldonrasib
    DOI:  https://doi.org/10.1016/j.celrep.2026.118016