bims-mipsyp Biomed News
on Mitochondrial Psychopathology
Issue of 2026–08–30
seven papers selected by
João Henrique Chrusciel, Aarhus Universitet



  1. Genes (Basel). 2026 Jul 24. pii: 859. [Epub ahead of print]17(8):
       BACKGROUND/OBJECTIVES: Mitochondrial DNA (mtDNA) variations are linked to psychiatric disorders, but their association with internet gaming addiction (IGA) remains unexplored. We investigated mitochondrial D-loop D310 and D514 regions and mtDNA copy number (mtCN) in male adolescents with and without IGA, exploring their associations with leukocyte telomere length (LTL).
    METHODS: Questionnaires assessed IGA in 206 male adolescents. Blood samples were analyzed for (C)n repeats at D310 and (CA)n repeats at D514. Relative mtCN and LTL were measured using quantitative PCR.
    RESULTS: D310 polymorphism distribution differed significantly between the IGA and non-IGA groups (p = 0.040). Among the (C)n repeats, (C)8 frequency at D310 was significantly lower in the IGA group than in the non-IGA group (p = 0.017). Multivariable logistic regression initially identified the (C)8 polymorphism as an independent predictor reducing IGA likelihood (OR = 0.474, p = 0.014), although this nominal association did not remain statistically significant after formal Bonferroni correction. mtCN differences were not significant (p = 0.247). Notably, LTL was significantly shorter in the IGA group among carriers of (C)8 and (CA)5 polymorphisms (both p = 0.001). Multivariable linear regression confirmed that IGA remained robustly associated with shorter LTL (B = -40.180, p < 0.001), while (C)8 and (CA)5 repeats were not independently associated with LTL shortening.
    CONCLUSIONS: While the (C)8 polymorphism's direct genetic contribution to IGA susceptibility remains preliminary and hypothesis-generating due to multiple testing attenuation, IGA exhibits a robust, independent association with LTL shortening. Mitochondrial genomic backgrounds may play a subtle, modulatory role in behavioral addiction pathways, warranting further longitudinal validation.
    Keywords:  D-loop; copy number; internet gaming addiction; mitochondrial DNA; polymorphism; telomere length
    DOI:  https://doi.org/10.3390/genes17080859
  2. Front Aging Neurosci. 2026 ;18 1885815
      Delirium Superimposed on Dementia (DSD) is a common neuropsychiatric disorder in hospitalized elderly populations with poor prognosis, which can accelerate cognitive decline and increase mortality. Despite its clinical significance, there is a lack of effective therapeutic methods in clinical practice. Mitochondrial dysfunction, characterized by impaired energy metabolism, excessive reactive oxygen species (ROS) production and neuroinflammation activation, has been suggested as a potentially critical pathogenic link in DSD. As an emerging organelle-based therapy, mitochondrial transplantation (MTT) restores cellular energy homeostasis and mitigates oxidative stress by delivering functional mitochondria into damaged cells, thus holding promising potential as a future strategy for DSD treatment. This review systematically summarizes the hypothesized pathological role of mitochondrial dysfunction in DSD and the technical system of MTT, including mitochondrial isolation, purification, preservation and delivery strategies. We further elaborate on the plausible neuroprotective mechanisms of MTT and its preclinical evidence in neurodegenerative disease models relevant to, but distinct from, DSD. Additionally, we comprehensively analyze the technical, immunological and clinical challenges of MTT in DSD treatment, and propose targeted solutions and future research directions. This review constructs a theoretical framework for the hypothetical translation of MTT from basic research to clinical application in DSD, and provides novel insights for the development of future etiological therapies for this devastating disorder.
    Keywords:  delirium superimposed on dementia; mitochondrial dysfunction; mitochondrial transplantation; neurodegenerative diseases; neuroprotection
    DOI:  https://doi.org/10.3389/fnagi.2026.1885815
  3. Brain Sci. 2026 Aug 20. pii: 890. [Epub ahead of print]16(8):
       BACKGROUND/OBJECTIVES: Mitochondrial Complex V (Complex V [CX-V], or ATP synthase) is the terminal enzyme of oxidative phosphorylation and is responsible for the majority of cellular ATP production. An increasing body of evidence suggests that CX-V dysfunction may contribute to mitochondrial impairment observed in neurodegenerative disease. This review evaluated current research on the structure, regulation, and function of CX-V, examined the consequences of CX-V dysfunction, and assessed its proposed role in neurodegenerative disorders.
    METHODS: A comprehensive review of the published literature was carried out, with emphasis on primary research investigating CX-V structure and function, inherited CX-V disorders, and experimental evidence linking CX-V dysfunction to neurodegenerative disease. The reviewed studies used a range of experimental approaches, including structural biology, biochemical studies, patient-derived cellular models, animal models and post-mortem human tissue.
    RESULTS: Current evidence demonstrates that disruption of CX-V impairs ATP production, alters mitochondrial membrane potential, and oxidative phosphorylation, and that pathogenic variants cause primary mitochondrial disease. Across Alzheimer's disease, Parkinson's disease, Huntington's disease, amyotrophic lateral sclerosis/frontotemporal dementia, glaucoma and inherited optic neuropathies, alterations in CX-V activity, regulation and structural integrity are consistently associated with mitochondrial dysfunction. Direct evidence supporting CX-V as a primary driver of neurodegeneration remains very limited, with many observations originating from broader studies of general mitochondrial dysfunction.
    CONCLUSIONS: CX-V dysfunction represents a recurring feature of mitochondrial impairment across a variety of neurodegenerative disorders and may exacerbate neuronal vulnerability by disrupting cellular bioenergetics. Current evidence indicates that CX-V may serve as a common downstream target of multiple pathological pathways rather than acting as a primary pathological factor. Future studies require direct assessment of CX-V activity in clinically relevant human models and patient tissues to determine its contribution to disease progression and examine its potential as a therapeutic target.
    Keywords:  ATP hydrolysis; ATP synthase; ATP synthesis; Complex V; bioenergetics; mitochondria; neurodegeneration
    DOI:  https://doi.org/10.3390/brainsci16080890
  4. Curr Opin Pharmacol. 2026 Aug 27. pii: S1471-4892(26)00058-5. [Epub ahead of print]90 102662
      Mitochondrial dysfunction has emerged as a convergent pathogenic mechanism across inflammatory and degenerative disorders, functioning not as a passive consequence but as an active amplifier of tissue injury, immune dysregulation, and impaired repair. Consistently observed mitochondrial abnormalities include excessive reactive oxygen species production, impaired oxidative phosphorylation, defective mitophagy, altered fission-fusion dynamics, and release of mitochondrial danger-associated molecular patterns, particularly cell-free mitochondrial DNA (cf-mtDNA), which serves both as a proinflammatory mediator and a potential circulating biomarker of disease activity. These alterations create self-reinforcing networks in which mitochondrial stress promotes innate immune activation, sustains inflammatory signaling, and accelerates structural or functional decline in vulnerable tissues. Mitochondria-targeted pharmacology has expanded rapidly, encompassing organelle-directed antioxidants, modulators of mitochondrial quality control, biogenesis or metabolic enhancers, nano-enabled delivery platforms, and emerging mitochondrial replacement strategies. Despite strong mechanistic appeal and encouraging preclinical data, clinical translation remains limited by the absence of validated pharmacodynamic biomarkers, an incomplete understanding of disease endotypes, inconsistent tissue target engagement, delivery barriers to mitochondria-rich compartments, and poor predictive value of animal models for human disease biology. The cf-mtDNA and related mitochondrial signatures are increasingly attracting attention for patient stratification, phenotyping, and therapeutic monitoring, although assay standardization remains unresolved. This review focuses on the core mechanisms that link mitochondrial dysfunction to disease progression. It also examines biomarker development and the major barriers to translation. Emerging approaches such as nanotechnology and mitochondrial replacement are discussed as supplementary strategies, not as the main focus of the review.
    DOI:  https://doi.org/10.1016/j.coph.2026.102662
  5. MedComm (2020). 2026 Sep;7(9): e70911
      Apoptosis is a core program regulating organismal homeostasis and plays a pivotal role in the onset and progression of most diseases. Increasing evidence in recent years indicates that mitochondria are not only central to cellular metabolism but also play a pivotal role in regulating apoptosis. However, no systematic review elucidating how mitochondria finely regulate apoptotic processes through multidimensional mechanisms, including apoptosis-resistant diseases such as cancer. This paper systematically summarizes the molecular mechanisms by which mitochondria mediate apoptosis. We focus on the regulation of cytochrome c (Cyt c) release by the Bcl-2 protein family and the activation of downstream caspase cascades. Furthermore, we provide an in-depth analysis of intrinsic factors, including mitochondrial structural remodeling (membrane rupture, cristae remodeling, and membrane lipid redistribution), dynamics imbalance (fusion, fission, and mitophagy), and mitochondrial DNA abnormalities, as well as extrinsic factors involving interorganelle interactions with the endoplasmic reticulum, lysosomes, and other organelles. Additionally, we review clinical and preclinical advances in drugs targeting these pathways. This review aims to provide a comprehensive perspective on the complex network of mitochondrial regulation of apoptosis and offer valuable insights for developing novel clinical therapeutic strategies for cancer and other diseases.
    Keywords:  MAM; MOMP; apoptosis; mitochondria; mitochondrial autophagy; mitochondrial transplantation; mtDNA
    DOI:  https://doi.org/10.1002/mco2.70911
  6. Front Cell Dev Biol. 2026 ;14 1866640
      Cellular senescence is a stable cell-cycle arrest program accompanied by extensive metabolic remodeling and acquisition of a senescence-associated secretory phenotype (SASP). Emerging evidence indicates that senescence is not a uniform endpoint but a heterogeneous spectrum of cell states shaped by the nature of the initiating stimulus. Mitochondria have recently emerged as central regulators of this heterogeneity by integrating metabolic, redox, and inflammatory signaling. Senescent cells share common mitochondrial features-including increased mitochondrial mass, elevated reactive oxygen species (ROS), impaired mitophagy, and altered metabolic programs-yet distinct senescence subtypes exhibit unique mitochondrial adaptations. Replicative senescence is governed by a telomere-mitochondria feedback loop, whereas stress- and oncogene-induced senescence involve rapid mitochondrial stress responses and stimulus-specific metabolic rewiring. Therapy-induced senescence further introduces context-dependent mitochondrial dependencies that influence therapeutic resistance and senolytic vulnerability. In this review, we synthesize current understanding of mitochondrial regulation across senescence subtypes and highlight how mitochondrial dysfunction actively drives senescence heterogeneity. We further discuss emerging therapeutic strategies that exploit mitochondrial vulnerabilities to selectively modulate or eliminate senescent cells. Understanding mitochondrial control of senescence heterogeneity provides a conceptual framework for developing precision interventions in aging and cancer.
    Keywords:  cellular senescence; metabolic reprogramming; mitochondrial dysfunction; mitophagy; reactive oxygen species (ROS); senescence heterogeneity; senescence-associated secretory phenotype (SASP); senolytics
    DOI:  https://doi.org/10.3389/fcell.2026.1866640
  7. Biomolecules. 2026 Jul 30. pii: 1116. [Epub ahead of print]16(8):
      Mitochondrial quality control (QC) comprises interconnected pathways that preserve organelle function by detecting damage and mediating repair, remodelling, or elimination of defective components. Although many sub-organellar QC mechanisms are well characterised, stress is often sensed first at the level of mitochondrial function rather than at individual molecular targets. Functional domains such as oxidative folding, bioenergetics, redox balance, pH, and thermogenesis act as sensory portals that detect perturbations and trigger adaptive reprogramming of mitochondrial activity. In this perspective, we provide a conceptual perspective for mitochondrial QC as a mechanistically integrated network, emphasising how changes in these functional states couple diverse QC modules-including proteases, antioxidant systems, mitochondrial dynamics, mitophagy, and mitochondrial-derived vesicles-into a unified surveillance system. We propose that primary stressors, such as redox imbalance, are progressively converted into secondary stress signals, including reactive oxygen species accumulation, membrane depolarisation, metabolite redistribution, and altered lipid or nucleic-acid structure. These secondary signals propagate across mitochondrial and cytosolic compartments, amplifying QC by coordinating the engagement of repair, remodelling, and organelle-elimination pathways. This cascading transformation of stress signals not only limits the impact of the initial insult but also enhances adaptive capacity by driving synergistic deployment of QC processes across multiple mechanistic layers.
    Keywords:  cell cycle; electron transport chain; mitochondria; quality control; signalling pathways
    DOI:  https://doi.org/10.3390/biom16081116