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Search Results (1,631)

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19 pages, 7718 KB  
Article
Myeloid GHSR Deficiency Protects Against Endotoxemia via Macrophage Mitochondrial Reprogramming
by Da Mi Kim, Zheng Shen, Quan Pan, Zeyu Liu, Wanbao Yang, Natividad R. Fuentes, Robert S. Chapkin, Gus A. Wright, Bhimanagouda Patil, Shaodong Guo and Yuxiang Sun
Biomedicines 2026, 14(8), 1668; https://doi.org/10.3390/biomedicines14081668 - 24 Jul 2026
Viewed by 151
Abstract
Background: Endotoxemia is a severe inflammatory condition that is characterized by acute immune responses and oxidative stress; endotoxemia can further develop into a cytokine storm and sepsis leading to severe organ damage. Our recent studies revealed that the growth hormone secretagogue receptor [...] Read more.
Background: Endotoxemia is a severe inflammatory condition that is characterized by acute immune responses and oxidative stress; endotoxemia can further develop into a cytokine storm and sepsis leading to severe organ damage. Our recent studies revealed that the growth hormone secretagogue receptor (GHSR) regulates macrophage polarization in obesity- and aging-associated chronic inflammation. However, its role in acute inflammation during endotoxemia remains unclear. Methods: We subjected myeloid-specific Ghsr knockout mice (LysM-Cre;Ghsrf/f) to lipopolysaccharide (LPS)-induced endotoxemia in vivo and treated bone marrow-derived macrophages (BMDMs) with LPS in vitro. Subsequently, mouse survival rate and inflammatory signatures in the blood, peritoneal cavity, liver, and BMDM were assessed. In the ex vivo study, conditioned medium (CM) from BMDMs was applied to primary hepatocytes to assess how BMDM-derived CM influences hepatocyte inflammatory responses. Results: Myeloid-specific Ghsr knockout mice exhibited a significantly improved survival rate following LPS-induced endotoxemia, accompanied by reduced systemic inflammation, evident in the blood, peritoneal macrophages, and liver. In addition, Ghsr deficiency suppressed LPS-induced caspase-1 activation and pro-inflammatory cytokine secretion in macrophages. Consistent with these results, conditioned media from Ghsr-deficient BMDMs attenuated the inflammatory responses of primary hepatocytes. Mechanistically, LPS increased GHSR expression in BMDMs, and Ghsr-deficient BMDMs activated mitochondrial respiration and suppressed production of mitochondrial reactive oxygen species (ROS), resulting in downregulation of inflammatory activation of macrophages following LPS exposure. Conclusions: These data demonstrate that macrophage GHSR promotes systemic and tissue inflammation during endotoxemia by regulating mitochondria-associated macrophage polarization. The findings suggest that macrophage GHSR may represent a promising immunomodulatory target for acute inflammatory states, including endotoxemia and sepsis. Full article
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17 pages, 887 KB  
Review
Autophagy–Lysosomal Dysfunction as a Converging Mechanism of Cardiomyopathy in Lysosomal Storage Disorders: From Pathobiology to Targeted Therapy
by Chung-Lin Lee, Chih-Kuang Chuang, Ya-Hui Chang, Huei-Ching Chiu, Yuan-Rong Tu, Yun-Ting Lo, Jun-Yi Wu, Hsiang-Yu Lin and Shuan-Pei Lin
Int. J. Mol. Sci. 2026, 27(14), 6418; https://doi.org/10.3390/ijms27146418 - 19 Jul 2026
Viewed by 704
Abstract
Cardiac disease is a leading cause of morbidity and early death across several lysosomal storage disorders (LSDs); however, the cardiomyopathies of Fabry, Pompe, and Danon disease are still largely treated as separate, substrate-specific disorders. We argue that they are better understood as variations [...] Read more.
Cardiac disease is a leading cause of morbidity and early death across several lysosomal storage disorders (LSDs); however, the cardiomyopathies of Fabry, Pompe, and Danon disease are still largely treated as separate, substrate-specific disorders. We argue that they are better understood as variations on a single theme: the breakdown of the autophagy–lysosome system within cardiomyocytes. In the healthy heart, this system clears damaged proteins and organelles and is regulated by mTORC1 and the master regulator TFEB. Once lysosomal degradation or autophagosome–lysosome fusion fails, undegraded substrates and defective mitochondria accumulate, driving hypertrophy, interstitial fibrosis, and conduction disease. Danon disease, resulting from the loss of LAMP2, is the clearest example of a primary defect in autophagic flux, whereas the glycogen storage of Pompe disease and the globotriaosylceramide accumulation of Fabry disease impair flux through different upstream mechanisms that converge on the same downstream injury. The same framework extends to other storage disorders with cardiac involvement, such as mucopolysaccharidosis (MPS). We trace this shared pathobiology from molecule to bedside, examine biomarkers that reflect lysosomal and autophagic dysfunction rather than storage alone, and re-examine treatment in that light: why enzyme replacement therapy corrects substrate accumulation but leaves much of the autophagic and mitochondrial damage unresolved, and why gene therapy—particularly AAV9-LAMP2B for Danon disease—together with autophagy- and TFEB-directed strategies may help close that gap. Viewing these disorders through a single mechanistic lens reshapes how we monitor them and where future therapies should be directed. Full article
(This article belongs to the Special Issue Novel Insights into Cardiac Diseases)
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21 pages, 1264 KB  
Review
Redox Control of Metabolism: How Fgr Kinase Shapes Mitochondrial Function and Cellular Adaptation
by Rebeca Acín-Pérez, Marta Pérez-Hernández, Pablo Hernansanz-Agustín and José Antonio Enríquez
Kinases Phosphatases 2026, 4(3), 18; https://doi.org/10.3390/kinasesphosphatases4030018 - 18 Jul 2026
Viewed by 189
Abstract
Mitochondria coordinate cellular energy production, metabolism, and signalling through the organization of the electron transport chain (ETC) and formation of respiratory supercomplexes. These structures facilitate efficient electron transfer and enable coenzyme Q (CoQ) channelling, allowing differential regulation of NADH- and succinate-driven respiration while [...] Read more.
Mitochondria coordinate cellular energy production, metabolism, and signalling through the organization of the electron transport chain (ETC) and formation of respiratory supercomplexes. These structures facilitate efficient electron transfer and enable coenzyme Q (CoQ) channelling, allowing differential regulation of NADH- and succinate-driven respiration while modulating reactive oxygen species (ROS) production. Beyond their damaging potential, ROS act as key signalling molecules that regulate mitochondrial function through redox-sensitive modifications. Mitochondrial protein kinases add an additional layer of control, with Src-family kinases playing a central role. In particular, the mitochondrial tyrosine-kinase Fgr is activated by H2O2 and promotes phosphorylation of succinate dehydrogenase, boosting complex II activity, delivering more electrons to CoQ and inducing reverse electron transfer (RET) through CI, in a ROS-induced ROS generation amplification cycle. This induces a metabolic rewiring aimed at supporting stress adaptation, immune cell activation, and macrophage polarization. Overall, the interplay between supercomplex organization, ROS signalling, and kinase activity is critical for metabolic flexibility and represents a promising target for therapeutic intervention. Full article
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28 pages, 1786 KB  
Review
Curcumin’s Protective Effects Against H2O2- and AAPH-Induced Oxidative Damage in Red Blood Cells: Mechanisms, Evidence Synthesis, and Perspectives on Translational Applications
by Tianzhu Yu, Fengyan Hou, Xiyao Yin, Jianjun Dong, Xia Wang, Jie Jiao and Zuobin Wang
Molecules 2026, 31(14), 2464; https://doi.org/10.3390/molecules31142464 - 14 Jul 2026
Viewed by 391
Abstract
Red blood cells (RBCs) are the most abundant cells in peripheral blood and perform critical functions including oxygen and carbon dioxide transport, acid base buffering, regulation of hemorheology, and modulation of immune signaling. Due to their high content of hemoglobin and labile iron, [...] Read more.
Red blood cells (RBCs) are the most abundant cells in peripheral blood and perform critical functions including oxygen and carbon dioxide transport, acid base buffering, regulation of hemorheology, and modulation of immune signaling. Due to their high content of hemoglobin and labile iron, prolonged exposure to high oxygen tension, membrane enrichment with polyunsaturated fatty acids, and the absence of both nucleus and mitochondria, mature RBCs have limited capacity for damage repair and protein re-synthesis, making them highly susceptible to attack by reactive oxygen species (ROS) and reactive nitrogen species (RNS). Hydrogen peroxide (H2O2) and 2,2′-azobis(2-methylpropionamidine) dihydrochloride (AAPH) are the two most commonly used inducers in the in vitro models of RBC oxidative injury: H2O2 primarily generates hydroxyl radicals via hemoglobin/ferrous ion-dependent Fenton reactions, simulating acute oxidative stress. AAPH releases peroxyl radicals upon thermal decomposition, mimicking persistent lipid peroxidation in cell membranes. Curcumin, a representative polyphenolic compound derived from turmeric, exerts multiple effects including free radical scavenging, metal ion chelation, membrane stabilization, anti-inflammatory activity, and regulation of redox homeostasis. This review systematically summarizes the pathological basis of RBC oxidative damage and the protective effects of curcumin on membrane systems, antioxidant defenses, morphology, and function, based on the core evidence chain “H2O2/AAPH—RBCs—curcumin”, integrating recent experimental findings on H2O2, AAPH, blood storage-induced injury, and curcumin formulations. It emphasizes that mature RBCs lack nuclei and mitochondria, and therefore mechanisms such as Nrf2/ARE signaling, HO-1 induction, mitochondrial apoptosis, caspase cascades, and inflammasome activation should not be directly equated with transcriptional regulatory pathways within mature RBCs, but rather interpreted as indirect evidence originating from nucleated cells, erythroid progenitors, or the blood microenvironment. The article further proposes that future research should focus on standardized RBC models, physiologically relevant dosages, nanodelivery systems, and translational applications in blood storage, to facilitate the transition of curcumin’s in vitro antioxidant evidence into clinical transfusion medicine and precision nutritional interventions. Full article
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24 pages, 333 KB  
Article
Adverse Obstetrical Outcomes with In-Utero Exposure to Indoor Macrocyclic Trichothecenes, Stachybotrys, and Trichoderma
by Irene H. Grant, Noemi Olivo and Harriet Ammann
J. Fungi 2026, 12(7), 513; https://doi.org/10.3390/jof12070513 - 13 Jul 2026
Viewed by 311
Abstract
Background: Produced by indoor Stachybotrys and Trichoderma spp., macrocyclic trichothecenes (MTs), a type of cytotoxic respirable molecule (<0.01–0.03 µm), inhibit protein/DNA/RNA production, damage mitochondria, and induce apoptosis. Dust-bound MTs remain toxic despite remediation/disinfection. Inhaled MTs easily cross tissue barriers, potentially reaching the placenta [...] Read more.
Background: Produced by indoor Stachybotrys and Trichoderma spp., macrocyclic trichothecenes (MTs), a type of cytotoxic respirable molecule (<0.01–0.03 µm), inhibit protein/DNA/RNA production, damage mitochondria, and induce apoptosis. Dust-bound MTs remain toxic despite remediation/disinfection. Inhaled MTs easily cross tissue barriers, potentially reaching the placenta and the unborn. Methods: Retrospective medical record abstraction of pregnant females and offspring cohort exposed to indoor MTs, Stachybotrys, or Trichoderma to correlate professional indoor testing, exposure variables, mold species, environmental MTs, medical symptomatology, outcomes, and urine/milk MTs excretion. Results: In eight women from seven MT/mold-contaminated homes, with 21 pregnancies, complications occurred in 19 (90%) pregnancies, including miscarriages (38%) and premature labor (33%). Placental abnormalities in two women (25%) from the same home (calcification, chronic villitis, placental infarcts, double placenta, gritty membranitis). Birth defects in infants (38%) included renal hypertrophy, levocardia, patent foramen ovale, ventriculoseptal defect, ptosis, teeth, and “goosebump” black/grey skin discoloration. Later abnormalities included developmental delay, oropharyngeal hypotonic dysphagia, refractory eczema, and refractory perirectal rash progressing to intussusception. Lactation difficulties included grey-black oronasal drainage, thrush, projectile vomiting, choking, oropharyngeal neurologic damage, apnea, and respiratory arrest. Aspergillus +/− Penicillium exposure was documented in all, Stachybotrys (75%), Chaetomium (62%), Trichoderma (38%), and indoor MT contamination exposure (75%). Conclusions: In-utero indoor MTs and Stachybotrys exposure correlate strongly with adverse gestational, neonatal complications (miscarriage, congenital defects, and placental abnormalities). Exposure timing and severity correlate with adverse outcomes. Breastfeeding with indoor exposure appears hazardous. Environmental/human MTs testing appears useful for identifying MT contaminaion and/or exposure. Full article
(This article belongs to the Special Issue Clinical and Epidemiological Study of Mycoses, 2nd Edition)
48 pages, 2736 KB  
Review
Mitochondrial Dysfunction in Metabolic-Syndrome-Related MASLD/MASH: Metabolic Mechanisms and Therapeutic Perspectives
by Jin Jin and Yang Cheng
Metabolites 2026, 16(7), 489; https://doi.org/10.3390/metabo16070489 - 11 Jul 2026
Viewed by 489
Abstract
Background/Objectives: Metabolic-dysfunction-associated steatotic liver disease (MASLD) and metabolic-dysfunction-associated steatohepatitis (MASH) arise in the setting of obesity, insulin resistance, type 2 diabetes, and metabolic syndrome. This review examines how mitochondrial dysfunction participates in the transition from lipid accumulation to hepatocyte injury, inflammation, and fibrosis, [...] Read more.
Background/Objectives: Metabolic-dysfunction-associated steatotic liver disease (MASLD) and metabolic-dysfunction-associated steatohepatitis (MASH) arise in the setting of obesity, insulin resistance, type 2 diabetes, and metabolic syndrome. This review examines how mitochondrial dysfunction participates in the transition from lipid accumulation to hepatocyte injury, inflammation, and fibrosis, and how evidence from human, animal, and in vitro studies should be interpreted. Methods: We provide a narrative synthesis of mechanistic, translational, and clinical studies on hepatic mitochondrial metabolism, fatty acid oxidation, oxidative phosphorylation, redox stress, organelle crosstalk, mitophagy, mitochondrial biogenesis and proteostasis, mitochondrial danger signals, the gut-liver-mitochondria axis, and mitochondria-related therapeutic strategies. Results: In early metabolic overload, mitochondrial oxidation may increase as an adaptive response. With persistent substrate pressure, this adaptation can become inefficient, with impaired fatty acid disposal, less efficient oxidative phosphorylation, reactive oxygen species production, redox imbalance, defective mitochondrial quality control, altered mitochondrial biogenesis, mitochondrial unfolded protein response (UPRmt)-related proteostatic stress and mtDNA instability. Mitochondrial DNA and RNA released from damaged organelles may also activate cyclic GMP-AMP synthase-stimulator of interferon genes (cGAS-STING), inflammasome, and RNA-sensing pathways, linking hepatocyte stress to macrophage activation, stellate cell activation, extracellular matrix deposition, and fibrosis. Conclusions: The current evidence supports mitochondria as a stage-dependent amplifier of metabolic liver injury rather than a uniform initiating event. Clinically, the strongest evidence remains with upstream metabolic unloading and liver-directed metabolic therapy, whereas direct mitochondrial restoration and quality-control targeting remain promising but less mature. Full article
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28 pages, 1313 KB  
Review
Mitochondrial Dysfunction: From Molecular Mechanisms to Modern Approaches for Basic and Clinical Research
by Tatiana V. Kirichenko, Yaroslav D. Tolkachev, Stepan M. Bessonov, Alexander M. Markin and Yuliya V. Markina
Biomedicines 2026, 14(7), 1521; https://doi.org/10.3390/biomedicines14071521 - 7 Jul 2026
Viewed by 592
Abstract
Mitochondria play a vital role in fundamental cellular processes, serving as key regulators of energy metabolism, apoptosis, oxidative stress, calcium homeostasis. Mitochondrial dysfunction is widely regarded as a common pathogenic pathway in the development of widespread chronic diseases, such as metabolic disorders, cardiovascular [...] Read more.
Mitochondria play a vital role in fundamental cellular processes, serving as key regulators of energy metabolism, apoptosis, oxidative stress, calcium homeostasis. Mitochondrial dysfunction is widely regarded as a common pathogenic pathway in the development of widespread chronic diseases, such as metabolic disorders, cardiovascular disease, neurodegeneration, and malignancies. Modern research examines mitochondrial dynamics, mitophagy, mitochondrial biogenesis, mtDNA damage, and the role of reactive oxygen species not only for in-depth understanding of disease pathogenesis but also for identifying diagnostic markers and therapeutic targets. Determining mitochondrial dysfunction is a significant challenge and should involve a comprehensive approach with reliable assessment methods that take into account the dynamic state, number, and localization of mitochondria. The review summarizes the results of the studies exploring the pathogenetic role of mitochondrial dysfunction in the development of widespread chronic diseases and current methods of its evaluation for the integration of mitochondrial dysfunction biomarkers into modern diagnostic strategies and development of mitochondria-target treatment approaches. Full article
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14 pages, 3165 KB  
Article
MIT-001, a Mitochondria-Targeted ROS Scavenger, Ameliorates DSS-Induced Colitis and Is Associated with Reduced HMGB1 and IL-1β Expression
by Dongwoo Kim, Soon Ha Kim, Jung Wan Choe, Seung Young Kim, Jong Jin Hyun, Sung Woo Jung, Young Kul Jung, Hyung Joon Yim and Ja Seol Koo
Int. J. Mol. Sci. 2026, 27(13), 6051; https://doi.org/10.3390/ijms27136051 - 6 Jul 2026
Viewed by 388
Abstract
Inflammatory bowel disease (IBD) is characterized by chronic intestinal inflammation in which excessive cell death and the release of damage-associated molecular patterns (DAMPs) such as high-mobility group box 1 (HMGB1) amplify mucosal injury. Although necrosis—particularly regulated forms including necroptosis and ferroptosis—has emerged as [...] Read more.
Inflammatory bowel disease (IBD) is characterized by chronic intestinal inflammation in which excessive cell death and the release of damage-associated molecular patterns (DAMPs) such as high-mobility group box 1 (HMGB1) amplify mucosal injury. Although necrosis—particularly regulated forms including necroptosis and ferroptosis—has emerged as a contributor to IBD pathogenesis, the therapeutic potential of targeting necrotic cell death remains incompletely explored. We investigated whether MIT-001 (previously known as NecroX-7), a mitochondria-targeted reactive oxygen species (ROS) scavenger with anti-necrotic activity, ameliorates intestinal inflammation in an acute dextran sulfate sodium (DSS)-induced colitis model. In vitro, MIT-001 reduced hydrogen peroxide-induced necrotic cell death in IEC-18 intestinal epithelial cells and was associated with a qualitative reduction in the 55-kDa cleaved poly(ADP-ribose) polymerase-1 (PARP-1) fragment (a marker of necrosis), with no apparent change in the apoptosis-related 89-kDa fragment. In vivo, oral administration of MIT-001 to C57BL/6 mice with DSS-induced colitis was associated with preservation of colon length, reduced histological injury, and a marked decrease in HMGB1-positive cells in colonic tissue. Among pro-inflammatory cytokines, IL-1β expression was significantly reduced, while IL-12, monocyte chemoattractant protein-1 (MCP-1), and TNF-α showed non-significant downward trends. These findings indicate that MIT-001 ameliorates DSS-induced colitis in association with reduced HMGB1 and IL-1β expression, supporting further investigation of mitochondria-targeted anti-necrotic strategies as a potential adjunctive approach in IBD. Full article
(This article belongs to the Section Molecular Biology)
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33 pages, 11825 KB  
Review
Lysosomes in Ferroptosis: Regulatory Mechanisms and Molecular Targets
by Tingrui Luo, Chenyu Wang, Nanhao Zhou, Yuansheng Zhang and Xianbo Mou
Molecules 2026, 31(13), 2373; https://doi.org/10.3390/molecules31132373 - 6 Jul 2026
Viewed by 517
Abstract
Ferroptosis is a regulated form of cell death characterized by iron-dependent lipid peroxidation and membrane damage, with broad relevance to human disease. Accumulating evidence suggests that ferroptosis is governed by coordinated organelle-level regulation, among which lysosomes have emerged as central hubs. By controlling [...] Read more.
Ferroptosis is a regulated form of cell death characterized by iron-dependent lipid peroxidation and membrane damage, with broad relevance to human disease. Accumulating evidence suggests that ferroptosis is governed by coordinated organelle-level regulation, among which lysosomes have emerged as central hubs. By controlling endolysosomal iron processing, transport, and degradation pathways, lysosomes shape the intracellular distribution and reactivity of iron, thereby modulating iron-driven lipid peroxidation. The acidic, iron-rich microenvironment and limited local antioxidant capacity render lysosomal membranes highly susceptible to oxidative injury, positioning lysosomes as initiation and amplification sites of lipid peroxidation. Meanwhile, lysosome-dependent selective autophagy pathways actively remodel iron homeostasis, lipid metabolism, and cellular antioxidant defenses, thereby dynamically modulating ferroptotic sensitivity. Mitochondria–lysosome crosstalk further redistributes iron, reactive oxygen species, and lipid substrates, linking lysosomal activity to interorganelle control of ferroptosis. Lysosomal stress-responsive signaling also coordinates metabolic adaptation and redox control. This review summarizes and integrates current evidence on lysosome-centered mechanisms that organize iron metabolism, lipid peroxidation, selective autophagy, organelle crosstalk, and stress-responsive signaling during ferroptosis, and further discusses their disease-specific roles, therapeutic potential, and translational challenges. Full article
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28 pages, 2422 KB  
Review
Mechanisms by Which Plant Extracts Ameliorate Bovine Mastitis Through the Regulation of Mitochondrial Function: A Review
by Zhuojia Li, Jie Song, Changjin Ao, Lifang Wang, Tenglong Zhang, Yabo Zhao, Chenyang Guo, Huachen Zhong and Jialin Liu
Cells 2026, 15(13), 1222; https://doi.org/10.3390/cells15131222 - 6 Jul 2026
Viewed by 446
Abstract
Mastitis is recognized worldwide as one of the most expensive and common bovine diseases, severely affecting bovine health and milk quality. Mitochondria, known to play important roles in bovine mammary epithelial cells (BMECs), not only provide energy for milk synthesis but also participate [...] Read more.
Mastitis is recognized worldwide as one of the most expensive and common bovine diseases, severely affecting bovine health and milk quality. Mitochondria, known to play important roles in bovine mammary epithelial cells (BMECs), not only provide energy for milk synthesis but also participate in the regulation of the intracellular redox balance, inflammatory reactions, calcium signal transduction, and apoptosis. Mastitis destroys the dynamic balance between the intrinsic repair and damage mechanisms of mitochondria, which leads to mitochondrial dysfunction and aggravation of mammary cell injury or apoptosis. Plant extracts are rich in bioactive substances and are promising antibiotic substitutes for alleviating bovine mastitis. This paper reviews the mechanism through which plant extracts promote mitochondrial repair by interfering with mitophagy, dynamic balance and biogenesis, and alleviate mitochondrial damage by inhibiting mitochondrial ROS, calcium homeostasis imbalance and permeability changes, resulting in the regulation of the mitochondrial function of mammary cells under inflammation and oxidative stress. Elucidation of these mechanisms can provide new strategies for the targeted control of bovine mastitis. Full article
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33 pages, 1151 KB  
Review
Mitochondria-Targeting Metal Complexes: Design Principles, Mechanisms of Action, and Translational Perspectives
by Donatella Coradduzza, Giacomo Senzacqua, Rosita Cappai and Serenella Medici
Biomolecules 2026, 16(7), 987; https://doi.org/10.3390/biom16070987 - 4 Jul 2026
Viewed by 333
Abstract
Mitochondria-targeting metal complexes (MTMCs) are a mechanistically distinct class of metallopharmaceuticals. Unlike first-generation platinum drugs that form nuclear DNA adducts, MTMCs exploit organelle-specific vulnerabilities such as hyperpolarised mitochondrial membrane potential (ΔΨm), elevated reactive oxygen species (ROS), limited mitochondrial DNA (mtDNA) repair capacity, and [...] Read more.
Mitochondria-targeting metal complexes (MTMCs) are a mechanistically distinct class of metallopharmaceuticals. Unlike first-generation platinum drugs that form nuclear DNA adducts, MTMCs exploit organelle-specific vulnerabilities such as hyperpolarised mitochondrial membrane potential (ΔΨm), elevated reactive oxygen species (ROS), limited mitochondrial DNA (mtDNA) repair capacity, and redox-dependent enzymes such as thioredoxin reductase (TrxR). We systematically searched PubMed, Web of Science, Scopus, and Google Scholar databases for studies published between 2016 and 2026, applying predefined inclusion criteria that included subcellular localization evidence and functional bioenergetic endpoints. The search identified 147 studies covering Pt(II/IV), Ru(II/III), Au(I/III), Ir(III), Os(II), Re(I), and V(IV/V) complexes and metal–organic framework nanoplatforms. Mechanistic evidence converges on four intramitochondrial target categories: inhibition of ETC (Electron Transport Chain) Complexes I/III with consequent ATP depletion; ROS overproduction, coupled with glutathione and TrxR depletion; outer mitochondrial membrane permeabilization and intrinsic apoptotic cascade activation; and mtDNA damage within a compartment limited to base excision repair. Multi-modal cell death—the co-occurrence of apoptosis, ferroptosis, necroptosis, and autophagic cell death—was a recurrent finding across the reviewed studies. This review thoroughly surveys the latest trends in MTMC drug design (metals, ligand structures, and mechanisms of action) and summarises analytical techniques for speciation, pharmacokinetics, safe monitoring, and resistance, while critically analysing translational barriers and clinical failures. To address the field’s inconsistent terminology, we introduce an explicit localization evidence hierarchy that distinguishes mitochondria-targeting complexes (through quantitative ICP-MS fractionation or co-localization with defined Pearson/Manders coefficients) from simply mitochondria-localising or mitochondria-perturbing agents, and we apply it throughout. We also point out that the idea of selectivity being purely driven by membrane voltage (ΔΨm) and thermodynamics is constrained by membrane and protein binding, as well as the transmembrane pH gradient, kinetic limitations, and demonstrated heterogeneity of cancer-cell membrane potential, and, as such, the functional mitochondrial effects must not be equated with mitochondrial accumulation. Since elemental quantification cannot distinguish intact complex from protein adducts and decomposition products, speciation-aware pharmacokinetics emerges as a prerequisite for a credible exposure–response interpretation. The translational progress will depend less on new chemotypes than on this analytical and pharmacokinetic rigour, together with organelle-level safety monitoring and biomarker-guided patient selection. Full article
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22 pages, 2266 KB  
Review
Promoting Bone Health in Layer Chickens from the Perspective of Mitochondrial Energy Metabolism in Osteoclasts
by Zhiyu Su, Shuo Tian, Ruilong Song, Zongping Liu and Xishuai Tong
Animals 2026, 16(13), 2046; https://doi.org/10.3390/ani16132046 - 3 Jul 2026
Viewed by 435
Abstract
Layer chickens have dual physiological demands for rapid growth and continuous egg production. The maintenance of skeletal homeostasis in layer chickens relies on the precise coordination among OCs, osteoblasts (OBs), and osteocytes. The imbalances in the supply of nutrients such as calcium (Ca) [...] Read more.
Layer chickens have dual physiological demands for rapid growth and continuous egg production. The maintenance of skeletal homeostasis in layer chickens relies on the precise coordination among OCs, osteoblasts (OBs), and osteocytes. The imbalances in the supply of nutrients such as calcium (Ca) and phosphorus (P), as well as dysfunction of the “gut–bone” axis, can disrupt normal bone development in layer chickens, leading to bone diseases such as tibial dyschondroplasia (TD) and osteoporosis (OP), seriously damaging the production performance of layer chickens. This review systematically summarizes the knowledge background of the metabolic reprogramming of OCs in layer chickens, especially mitochondria-mediated biological processes, including oxidative phosphorylation (OXPHOS), glycolysis, reactive oxygen species (ROS) signaling, mitophagy, etc. Notably, the co-culture system of OCs derived from the bone marrow cavity of embryos in vitro has been established in laying chickens. However, there are few reports on the study of mitochondrial metabolism of OCs using this model. Therefore, this review particular focuses on the bone metabolism mediated by OCs in layer chickens and proposes future research priorities, including the application of gene editing and multi-omics methods to ultimately achieve targeted nutritional or pharmacological interventions for optimizing mitochondrial function and promoting bone health. Full article
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30 pages, 1256 KB  
Review
Mitochondrial Quality Control in Age-Related Diseases: From Molecular Architecture to Precision Therapeutics
by Jingmin Che, Ye Sun, Fang Wang, Qing Feng, Cuixiang Xu and Xuhui Li
Antioxidants 2026, 15(7), 830; https://doi.org/10.3390/antiox15070830 - 30 Jun 2026
Viewed by 374
Abstract
Background: Mitochondria are the primary organelles that regulate cellular bioenergetic metabolism and maintain homeostasis, providing essential structural support for optimal cell survival. Nonetheless, advancing age leads to cumulative damage to mitochondrial structure and functional integrity, which is a defining characteristic of biological aging [...] Read more.
Background: Mitochondria are the primary organelles that regulate cellular bioenergetic metabolism and maintain homeostasis, providing essential structural support for optimal cell survival. Nonetheless, advancing age leads to cumulative damage to mitochondrial structure and functional integrity, which is a defining characteristic of biological aging and is closely linked to the emergence and progression of numerous age-related diseases, including neurodegenerative disorders, cardiovascular diseases, and metabolic disorders. Scope of review: This article offers a thorough summary and review of mitochondrial quality control (MQC), emphasizing numerous critical processes, including mitochondrial biosynthesis, dynamic remodeling (fusion and fission), and mitophagy. We thoroughly elucidate the molecular pathways that regulate MQC and demonstrate how age-related dysregulation precipitates cellular senescence, highlighting the transition from physiological maintenance to pathological malfunction, which ultimately culminates in cellular aging. Conclusions and implications: This study systematically elaborates the pathophysiological mechanisms in the field, comprehensively evaluates the clinical translational potential of targeting the MQC pathway, highlights the key objectives of “restoring mitochondrial plasticity and removing dysfunctional mitochondria”, and explores novel intervention strategies. The restoration of normal mitochondrial function in cells throughout aging is a very promising path for precision medicine therapeutics with great translational potential, according to recent state-of-the-art research. The development of novel therapeutic approaches to improve functional healthy mitochondria can effectively delay aging and reduce the rising global burden of age-related diseases. Full article
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22 pages, 3999 KB  
Review
Mitochondrial Immunometabolism in Sepsis: From Oxidative Stress and mtDAMP Signaling to Biomarker-Guided Therapy
by Minsoo Kim, Phyu Phyu Khin, Hyeran Jung, Chang Woo Chae, Byeong Hwa Jeon and Cuk-Seong Kim
Int. J. Mol. Sci. 2026, 27(13), 5918; https://doi.org/10.3390/ijms27135918 - 30 Jun 2026
Viewed by 337
Abstract
Sepsis is a life-threatening syndrome characterized by a dysregulated host response to infection and progressive organ dysfunction. Although early antimicrobial therapy, source control, hemodynamic resuscitation, and organ support remain the foundations of care, these approaches do not directly reverse the cellular mechanisms that [...] Read more.
Sepsis is a life-threatening syndrome characterized by a dysregulated host response to infection and progressive organ dysfunction. Although early antimicrobial therapy, source control, hemodynamic resuscitation, and organ support remain the foundations of care, these approaches do not directly reverse the cellular mechanisms that connect systemic inflammation to multi-organ failure. Mitochondrial dysfunction has emerged as a central mechanism linking impaired oxygen utilization, oxidative and nitrosative stress, immune-cell metabolic reprogramming, inflammatory amplification, and organ injury. During sepsis, inflammatory mediators, nitric oxide, microcirculatory abnormalities, calcium dysregulation, and metabolic stress converge on mitochondria, impairing oxidative phosphorylation and promoting mitochondrial reactive oxygen species/reactive nitrogen species (ROS/RNS) generation. When mitochondrial quality-control programs, including fission, fusion, mitophagy, and mitochondrial biogenesis, fail to restore network integrity, damaged mitochondria accumulate and become persistent sources of oxidative stress and danger signals. Mitochondrial damage-associated molecular patterns, particularly mitochondrial DNA, oxidized mitochondrial DNA, cardiolipin, ATP, and N-formyl peptides, activate innate immune pathways such as TLR9-MyD88-NF-kappaB, the NLRP3 inflammasome, and cGAS-STING signaling. In parallel, mitochondrial metabolism shapes macrophage activation, neutrophil function, T-cell competence, pyruvate-lactate handling through the pyruvate dehydrogenase complex, and the transition between hyperinflammation and immunosuppression. Clinical translation remains challenging because sepsis is biologically heterogeneous and mitochondrial dysfunction is dynamic, tissue-specific, and influenced by disease stage. This review synthesizes current knowledge on mitochondrial dysfunction in sepsis, emphasizing oxidative and nitrosative stress, mitochondrial quality control, mitochondrial damage-associated molecular pattern (DAMP) signaling, immunometabolism, organ-specific injury, candidate biomarkers, clinical translational strategies for mitochondria-targeted therapy, and future approaches based on multi-omics and artificial intelligence-assisted patient stratification. We argue that future therapeutic development should move beyond nonspecific antioxidant supplementation toward time-sensitive, phenotype-informed, and biomarker-guided mitochondrial medicine. Full article
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27 pages, 35576 KB  
Article
Multiple Roles of G3BP1 in Regulating STING-Dependent Interferon and Cytokine Induction by Cytosolic dsDNA and HSV-1 Infection
by Trupti Devale, Praveen Manivannan and Krishnamurthy Malathi
Viruses 2026, 18(7), 719; https://doi.org/10.3390/v18070719 - 30 Jun 2026
Viewed by 472
Abstract
Virus infection requires coordinated activation of pathogen-sensing, innate immune, and cellular stress response pathways to mount an effective antiviral defense. Recognition of nucleic acid pathogen-associated molecular patterns (PAMPs) by pattern recognition receptors (PRRs) initiates signaling cascades that drive the production of type I [...] Read more.
Virus infection requires coordinated activation of pathogen-sensing, innate immune, and cellular stress response pathways to mount an effective antiviral defense. Recognition of nucleic acid pathogen-associated molecular patterns (PAMPs) by pattern recognition receptors (PRRs) initiates signaling cascades that drive the production of type I interferons (IFNs) and proinflammatory cytokines. These responses are often accompanied by the activation of integrated stress response pathways that help optimize host defense. Cytosolic double-stranded dsDNA, generated during viral infection or released from damaged mitochondria, is sensed by cyclic GMP-AMP synthase (cGAS), which generates 2′3′-cGAMP to activate stimulator of interferon genes (STING). Activated STING translocates from the endoplasmic reticulum to the Golgi, where it drives TBK1-dependent IFN and cytokine production. Previous reports show that cGAS activity is enhanced by Ras-GAP SH3 domain binding protein 1 (G3BP1), a key nucleator of stress granules (SGs), independent of its role in SG assembly. Here, we identify a non-canonical role of G3BP1 as a regulator of DNA sensing responses at multiple levels, including STING intracellular trafficking, in addition to potentiating cGAS activity. Loss of G3BP1 impaired STING-dependent IFN and cytokine responses to HSV-1 infection and viral DNA. G3BP1-deficient cells showed reduced cGAMP-induced STING translocation to the Golgi, induction of type I IFN and proinflammatory cytokines, and activation of the ER stress kinase PERK and stress granule formation. Together, these findings demonstrate G3BP1-STING as a node linking DNA sensing, innate immunity, and stress signaling with broad implications for antiviral defense and diseases characterized by aberrant DNA sensing and stress responses, including neurodegeneration, fibrosis, and autoimmunity. Full article
(This article belongs to the Special Issue Signaling Pathways in Viral Infection and Antiviral Immunity 2026)
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