The progression of myocardial ischemia-reperfusion injury (MIRI) is orchestrated by a decisive, bidirectional dialogue between mitochondrial reactive oxygen species (mtROS) and mitophagy. This review advances the concept of a dynamic “mtROS-mitophagy axis” as the central redox hub determining cardiomyocyte fate. We systematically dissect how moderate mtROS initiates protective mitophagy via key pathways (e.g., PINK1/Parkin, FUNDC1) and reinforces endogenous defenses through the Sirt3-FoxO3a integrator. Conversely, an mtROS burst disrupts this axis, triggering a vicious cycle of oxidative damage, impaired autophagic flux, and Drp1-mediated pathological fission. Critically, we emphasize the double-edged and temporally governed nature of this axis, arguing that its precise spatiotemporal modulation represents the next frontier in cardioprotection. Beyond mechanism, this synthesis provides a unified framework for developing novel therapies and for evaluating the cardiac safety of pharmacological agents, directly aligning with the core pursuits of cardiovascular redox biology and toxicology.
Background and aims Diabetes accelerates atherosclerosis progression by disrupting multiple metabolic pathways. However, the role and mechanisms of lactate—a glycolytic byproduct significantly elevated in diabetic patients—in atherosclerosis remain poorly understood. We hypothesized that lactate promotes atherosclerosis by regulating macrophage foam cell formation through histone lactylation. Methods We evaluated the association between lactate levels, lipid metabolism disorders, and atherosclerotic progression using clinical samples and mouse models. The thoracic aortas of atherosclerotic mice were subjected to ex vivo culture to investigate the impact of lactate on the microenvironment within atherosclerotic plaques. Foam cell models were established using human and murine macrophages, and intracellular lipid accumulation, inflammatory responses, and apoptosis were assessed following lactate treatment. RNA sequencing was performed to dissect the molecular mechanisms underlying lactate-induced foam cell formation. Results Results demonstrated that lactate promoted foam cell formation and contributed to atherosclerotic progression by enhancing intracellular lipid accumulation, pro-inflammatory cytokine secretion, and apoptosis in macrophages. RNA-seq analysis revealed that lactate significantly modulated pathways related to atherosclerosis and lipid metabolism, specifically inhibiting cholesterol efflux pathways during foam cell formation. Lactate increased H3K18la enrichment at the promoters of cholesterol efflux genes, accompanied by reduced expression of ABCA1, ABCG1, and SR-B1 and enhanced lipid accumulation. Notably, magnesium ions attenuated these lactate-associated effects and reduced intracellular lactate accumulation in macrophages. Conclusions Lactate contributes to atherosclerosis progression by enhancing foam cell formation and histone lactylation in macrophages, an effect mitigated by Mg2+. These findings identify lactate as a potential contributor to atherosclerosis progression and provide mechanistic insights into lactate-associated metabolic regulation in macrophages.
Amyotrophic lateral sclerosis (ALS) is categorized into ~10% familial and ~90% sporadic cases. While familial ALS is caused by mutations in many genes of diverse functions, the underlying pathogenic mechanisms of ALS, especially in sporadic ALS (sALS), are largely unknown. Notably, about half of the cases with sALS showed defects in mitochondrial respiratory complex IV (CIV). To determine the causal role of this defect in ALS, we used transcription activator-like effector-based mitochondrial genome editing to introduce mutations in CIV subunits in rat neurons. Our results demonstrate that neuronal CIV deficiency is sufficient to cause a number of ALS-like phenotypes, including cytosolic TAR DNA-binding protein 43 redistribution, selective motor neuron loss and paralysis. These results highlight CIV deficiency as a potential cause of sALS and shed light on the specific vulnerability of motor neurons, marking an important advance in understanding and therapeutic development of sALS.
Gain-of-function variants in stimulator of interferon genes (STING1) are known to cause STING-associated vasculopathy with onset in infancy (SAVI), a disorder characterized by cutaneous vasculopathy, interstitial lung disease (ILD), and systemic inflammation. Here, we report a novel STING1 N188H variant in a patient who met the classification criteria for systemic lupus erythematosus (SLE) but lacked typical SAVI features. In vitro assays demonstrated that the N188H variant drives constitutive STING activation and enhances type I interferon signaling. Consistent with this, the patient exhibited elevated interferon-stimulated genes (ISGs) expression, and RNA sequencing confirmed significant upregulation of type I IFN signaling compared to healthy controls. Our findings expand the molecular spectrum of STING-associated disease.
Juvenile systemic sclerosis (jSSc) can lead to permanent and irreversible anatomical or physiological dysfunction. The Scleroderma Clinical Trials Consortium-Damage Index (SCTC-DI), which has been employed and validated in adult patients, can quantify organ damage and predict mortality and morbidity. However, its application in paediatric patients remains unexplored. Clinical data, laboratory results, and prognostic information were collected for patients with jSSc at Peking Union Medical College Hospital (PUMCH) from January 2012 and January 2024. Differences between the SCTC-DI and the juvenile systemic sclerosis severity score (J4S) were recorded and compared. Furthermore, we compared the SCTC-DI between jSSc and adult systemic sclerosis (SSc) patients. A total of 64 jSSc patients were included. Facet joint contractures, fingertip ulcers and interstitial lung disease are common manifestations. Compared with adult SSc patients, jSSc patients had a lower incidence of gastrointestinal and urinary system involvement. The baseline J4S levels were significantly correlated with SCTC-DI levels at follow-up. A higher baseline SCTC-DI score was associated with a greater progression of organ damage (P = 0.001). There are differences in clinical presentations between adult SSc patients and jSSc patients. The SCTC-DI can be applied to JSSc patients, and it is recommended that JSSc patients undergo regular evaluations of the J4S as well as the SCTC-DI.
Arrhythmogenic right ventricular cardiomyopathy (ARVC) is a rare inherited cardiomyopathy featured by life-threatening arrhythmias. While TMEM43 has been identified as an ARVC-associated gene, molecular links between TMEM43 mutations and electrophysiological abnormalities in ARVC remain largely elusive. Here, using induced-pluripotent-stem-cell-derived cardiomyocytes (iPSC-CMs) and knock-in mice as models, it is demonstrated that a novel TMEM43 mutation (TMEM43-P386S) causes Ca2+ dysregulation that leads to arrhythmic phenotypes in ARVC, which can be prevented by flecainide. Mechanistically, TMEM43 interacts with lamin B2, and the TMEM43-P386S mutation induces lamin B2 mislocalization and abnormal nuclear envelope structure in ARVC iPSC-CMs, resulting in decreased chromatin opening of promoters associated with downregulated genes, including ryanodine receptor 2 (RYR2). RYR2s are downregulated and grouped into smaller clusters in ARVC iPSC-CMs, as revealed by Tau-STED super-resolution imaging, contributing to enhanced RYR2-mediated sarcoplasmic reticulum Ca2+ leak. These findings represent a novel mechanism underlying arrhythmogenesis in TMEM43-related ARVC and point to RYR2 stabilization as a potential therapeutic strategy.
Efferocytosis and metabolic reprogramming of macrophages play crucial roles in myocardial infarction (MI) repair. TREM2 has been proven to participate in phagocytosis and metabolism, but how it modulates myocardial infarction remains unclear. In this study, we showed that macrophage-specific TREM2 deficiency worsened cardiac function and impaired post-MI repair. Using RNA-seq, protein and molecular docking, and Targeted Metabolomics (LC–MS), our data demonstrated that macrophages expressing TREM2 exhibited decreased SLC25A53 transcription through the SYK-SMAD4 signaling pathway after efferocytosis, which impaired NAD + transport into mitochondria, downregulated SLC25A53 thereby causing the breakpoint in the TCA cycle and subsequently increased itaconate production. In vitro experiments confirmed that itaconate secreted by TREM2 + macrophages inhibited cardiomyocyte apoptosis and promoted fibroblast proliferation. Conversely, overexpression of TREM2 in macrophages could improve cardiac function. In summary, our study reveals a novel role for macrophage-specific TREM2 in MI, connecting efferocytosis to immune metabolism during cardiac repair.
Limited alliinase resources cause difficulties in the biosynthesis of thiosulfinates (e.g., allicin), restricting their applications in the agricultural and food industries. To effectively biosynthesize thiosulfinates, this study aimed to excavate bacterial alliinase resources and elucidate their catalytic properties. Two bacterial cystathionine beta-lyases (MetCs) possessing high alliinase activity (>60 U mg (-1)) toward L-(-)-alliin were identified from Allium sativum rhizosphere isolates. Metagenomic exploration revealed that cystathionine beta-lyase from Bacillus cereus (BcPatB) possessed high activity toward both L-(+/-)-alliin and L-(+)-alliin (208.6 and 225.1 U mg (-1)), respectively. Although these enzymes all preferred l-cysteine S-conjugate sulfoxides as substrates, BcPatB had a closer phylogenetic relationship with Allium alliinases and shared several similar features with A. sativum alliinase. Interestingly, the Trp(30)Ile(31)Ala(32)Asp(33) Met(34) motif in a cuspate loop of BcPatB, especially sites 31 and 32 at the top of the motif, was modeled to locate near the sulfoxide of L-(+)-alliin and is important for substrate stereospecificity. Moreover, the stereoselectivity and activity of mutants I31V and A32G were higher toward L-(+)-alliin than those of mutant I31L/D33E toward L-(-)-alliin. Using bacterial alliinases and chemically synthesized substrates, we obtained thiosulfinates with high antimicrobial and antinematode activities that could provide insights into the protection of crops and food.
AIFM1 is a mitochondrial flavoprotein involved in caspase-independent cell death and regulation of respiratory chain complex biogenesis. Mutations in the AIFM1 gene have been associated with multiple clinical phenotypes, but the effectiveness of riboflavin treatment remains controversial. Furthermore, few studies explored the reasons underlying this controversy. We reported a 7-year-old boy with ataxia, sensorimotor neuropathy and muscle weakness. Genetic and histopathological analyses were conducted, along with assessments of mitochondrial function and apoptosis level induced by staurosporine. Riboflavin deficiency and supplementation experiments were performed using fibroblasts. A missense c.1019T > C (p. Met340Thr) variant of AIFM1 was detected in the proband, which caused reduced expression of AIFM1 protein and mitochondrial dysfunction as evidenced by downregulation of mitochondrial complex subunits, respiratory deficiency and collapse of ΔΨm. The proportion of apoptotic cells in mutant fibroblasts was lower than controls after induction of apoptosis. Riboflavin deficiency resulted in decreased AIFM1 protein levels, while supplementation with high concentrations of riboflavin partially increased AIFM1 protein levels in variant fibroblasts. In addition, mitochondrial respiratory function of mutant fibroblasts was partly improved after riboflavin supplementation. Our study elucidated the pathogenicity of the AIFM1 c.1019T > C variant and revealed mutant fibroblasts was intolerant to riboflavin deficiency. Riboflavin supplementation is helpful in maintaining the level of AIFM1 protein and mitochondrial respiratory function. Early riboflavin treatment may serve as a valuable attempt for patients with AIFM1 variant.
ABSTRACT Objective To explore the clinical characteristics of mitochondrial encephalomyopathy, lactic acidosis, and stroke‐like episodes (MELAS) caused by mitochondrial DNA‐encoded complex I subunit (mt‐ND) variants. Methods In this retrospective study, the clinical, myopathological and brain MRI features of patients with MELAS caused by mt‐ND variants (MELAS‐mtND) were collected and compared with those of MELAS patients carrying the m.3243A > G variant (MELAS‐A3243G). Result A total of 18 MELAS‐mtND patients (female: 7; median age: 24.5 years) represented 15.9% (n = 113) of all patients with MELAS caused by mtDNA variants in our neuromuscular center from January 2012 to June 2022. In this MELAS‐mtND cohort, the two most common variants were m.10191 T > C (4/18, 22.2%) and m.13513 G > A (3/18, 16.7%). The most frequent symptoms were seizures (14/18, 77.8%) and muscle weakness (11/18, 61.1%). Compared with 87 MELAS‐A3243G patients, MELAS‐mtND patients were significantly more likely to have a variant that was absent in blood cells (40% vs. 1.4%). Furthermore, MELAS‐mtND patients had a significantly lower MDC score (7.8 ± 2.7 vs. 9.8 ± 1.9); less hearing loss (27.8% vs. 54.0%), diabetes (11.1% vs. 37.9%), and migraine (33.3% vs. 62.1%); less short stature (males ≤ 165 cm; females ≤ 155 cm; 23.1% vs. 60.8%) and higher body mass index (20.4 ± 2.5 vs. 17.8 ± 2.7). MELAS‐mtND patients had significantly more normal muscle pathology (31.3% vs. 4.1%) and fewer RRFs/RBFs (62.5% vs. 91.9%), COX‐deficient fibers/blue fibers (25.0% vs. 85.1%) and SSVs (50.0% vs. 81.1%). Moreover, brain MRI evaluated at the first stroke‐like episode showed significantly more small cortical lesions in MELAS‐mtND patients (66.7% vs. 12.2%). Interpretation Our results suggested that MELAS‐mtND patients have distinct clinical, myopathological and brain MRI features compared with MELAS‐A3243G patients.
OBJECTIVE:Mitochondrial myopathy without extraocular muscles involvement (MiMy) represents a distinct form of mitochondrial disorder predominantly affecting proximal/distal or axial muscles, with its phenotypic, genotypic features, and long-term prognosis poorly understood.METHODS:A cross-sectional study conducted at a national diagnostic center for mitochondrial disease involved 47 MiMy patients, from a cohort of 643 mitochondrial disease cases followed up at Qilu Hospital from January 1, 2000, to January 1, 2021. We compared the clinical, pathological, and genetic features of MiMy to progressive external ophthalmoplegia (PEO) and mitochondrial encephalomyopathy, lactic acidosis, and stroke-like episodes (MELAS) patients.RESULTS:MiMy patients demonstrated a more pronounced muscle involvement syndrome, with lower 6MWT scores, higher FSS, and lower BMI compared to PEO and MELAS patients. Serum levels of creatinine kinase (CK), lactate, and growth and differentiation factor 15 (GDF15) were substantially elevated in MiMy patients. Nearly a third (31.9%) displayed signs of subclinical peripheral neuropathy, mostly axonal neuropathy. Muscle biopsies revealed that cytochrome c oxidase strong (COX-s) ragged-red fibers (RRFs) were a typical pathological feature in MiMy patients. Genetic analysis predominantly revealed mtDNA point pathogenic variants (59.6%) and less frequently single (12.8%) or multiple (4.2%) mtDNA deletions. During the follow-up, a majority (76.1%) of MiMy patients experienced stabilization or improvement after therapeutic intervention.CONCLUSIONS:This study provides a comprehensive profile of MiMy through a large patient cohort, elucidating its unique clinical, genetic, and pathological features. These findings offer significant insights into the diagnostic and therapeutic management of MiMy, ultimately aiming to ameliorate patient outcomes and enhance the quality of life.
Objective The pathophysiology of stroke-like episode (SLE) in mitochondrial myopathy, encephalopathy, lactic acidosis and stroke-like episodes (MELAS) was uncertain, though mitochondrial metabolic crisis of cortical neurons and mitochondrial proliferation in small vessels of brain have been considered. However, the involvement of major cerebral vessels was debated. We aimed to investigate whether major cerebral vessels participate in SLE. Methods We retrospectively collected the clinical and neuroimaging data of MELAS patients diagnosed in our center. Through follow-up, the cases harboring reversible cerebral artery constriction on brain magnetic resonance angiography (MRA) examination were included in this study. Results There were 20 patients with intact brain MRA data at acute and non-acute phases. Only 3 cases with m.3243A > G mutation were enrolled. They suffered once or twice SLEs manifesting headache, blurred vision, seizures or mental and behavior disorder. New lesions were present in temporo-parietal and/or temporo-occipital regions. Segmental stenosis at middle cerebral artery and/or posterior cerebral artery, proximal portions in particular, was ipsilateral to the lesions at acute phase in all the 3 patients, which was resolved during the subacute or chronic stages. Moreover, the SLEs lesions were located within the stenotic arteries territory. In addition, dilation at distal portions of the stenotic arteries was observed at acute phase as well in 2 patients. Conclusion Reversible constriction of cerebral arteries may contribute to SLE of MELAS. MELAS should be a differential diagnosis when stenosis of major cerebral vessels is present at acute phase of SLE.
Background Leber's hereditary optic neuropathy (LHON) is a common mitochondrial disease. More than 30 variants in the mitochondrial DNA (mtDNA) have been previously described in LHON. However, the pathogenicity of some variants remains unclear. Herein, we report a 19-year-old boy presenting unique LHON plus dystonia syndrome with the rare m.4136A > G and m.4160 T > C variants and elucidate the molecular pathomechanisms of the m.4160 T > C mutation. Methods We performed clinical, molecular genetic analysis, and biochemical investigation in the patient's different tissues and cybrid cell lines. Results The optical coherence tomography (OCT) and optical coherence tomography angiography (OCTA) of the patient showed typical pathological changes-a significant decrease in the 17 thickness of the retinal nerve fiber layer (RNFL) and the ganglion cell complex (GCC). Brain magnetic resonance imaging (MRI) found noteworthy abnormal signals in the basal ganglia region. The genetic analysis revealed that the m.4160 T > C variant was heteroplasmic in the blood ( 80.2%), urine sediment (90.8%), and oral mucosal (81.7%) samples of the patient. In contrast, the m.4136A > G variant was homoplasmic in all available tissues. Biochemical and bioenergetic investigations showed decreased mitochondrial protein levels and mitochondrial respiration deficiency in cybrid cells harboring these variants. Conclusions This research provided more comprehensive data to help gain insight into the pathogenicity of the m.4160 T > C variant and broaden our view on the LHON plus phenotype.
Mitochondrial disorders are clinically heterogeneous diseases associated with impaired oxidative phosphorylation (OXPHOS) activity. POLG, which encodes the DNA polymerase-γ (Polγ) catalytic subunit, is the most commonly mutated nuclear gene associated with mitochondrial disorders. We carried out whole-exome sequencing (WES) to identify the gene associated with progressive external ophthalmoplegia (PEO). We then performed histopathological analyses, assessed mitochondrial biology, and executed functional studies to evaluate the potential pathogenicity of the identified genetic mutations. Novel biallelic POLG mutations, including a large deletion mutation (exons 7–21) and a missense variant c.1796C>T (p.Thr599Ile) were detected in the proband. Histopathological analysis of a biopsied muscle sample from this patient revealed the presence of approximately 20% COX-negative fibers. Bioinformatics analyses confirmed that the detected mutations were pathogenic. Furthermore, levels of mitochondrial complex I, II, and IV subunit protein expressions were found to be decreased in the proband, and marked impairment of mitochondrial respiration was evident in cells harboring these mutations. This study expands the spectrum of known POLG variants associated with PEO and advances current understanding regarding the structural and functional impacts of these mutations.
Objective To report a Chinese family with combined m.14459G>A mutation and m.6064A>T mutation of which the female proband presenting unique Leber hereditary optic neuropathy and dystonia (LDYT) overlapping mitochondrial encephalomyopathy with lactic acidosis and stroke-like episodes (MELAS) phenotype. Methods Clinical information of the pedigree was collected. We performed muscle biopsy and whole-length mitochondrial DNA (mtDNA) sequencing on the proband. The activity of respiratory chain complexes in immortalized lymphoblasts was determined. Results The current 23-year-old proband suffered from vision decline at age 15 and developed seizures and dystonia with bilateral lesions in precentral gyri at age 18. When she was 21, the lesions in bilateral putamen were found with elevated cerebrospinal fluid lactate. Her mother had optic atrophy; one of her brother died at age 4 with respiratory distress; and the other 8-year-old brother was asymptomatic. Muscle biopsy of the proband was unremarkable. The mtDNA sequencing revealed a heteroplasmic m.14459G>A mutation and a previously unreported m.6064A>T mutation. The respiratory chain complex I activity in the proband's immortalized lymphoblasts was 50% less than the normal control; while there was no statistical difference between the proband and the normal control in the activity of complex IV. Conclusions We presented the first case exhibiting LDYT and MELAS phenotype with m.14459G>A mutation, and the decreased complex I activity contributed to the pathogenicity. Our study expanded the clinical spectrum of m.14459G>A mutation.
Both mitochondrial and nuclear gene mutations can cause cytochrome c oxidase (COX, complex.) dysfunction, leading to mitochondrial diseases. Although numerous diseases caused by defects of the COX subunits or COX assembly factors have been documented, clinical cases directly related to mitochondrial cytochrome c oxidase subunit 3 gene (MT-CO3) mutations are relatively rare. Here, we report a 47-year-old female patient presented with mitochondrial encephalopathy, lactic acidosis, and stroke-like episodes (MELAS) syndrome. Muscle pathology revealed ragged-red fibres and remarkable COX-deficient muscle fibres. Muscle mitochondrial DNA sequencing analysis identified a novel MT-CO3 variant (m.9553G>A) that changed a highly conserved amino acid to a stop codon (p.Trp116*). This variant was heteroplasmic in multiple tissues, where the mutation load was 13% in oral epithelial cells, 89% in muscle samples, and not detectable in the peripheral blood lymphocytes. Single muscle fiber PCR analysis showed clear segregation of the mutation load with COX deficient fibres. Western blot analysis of the muscle samples revealed a significant decrease in the levels of COX1, COX2, COX3, COX4 and UQCRC2. COX respiration activity was remarkably reduced (58.84%) relative to the controls according to spectrophotometric assays. Taken together, our results indicated that this m.9553G>A variant may be responsible for the MELAS symdrome in the proband by affecting the stability and function of COX. The study expands the clinical and molecular spectrum of COX3-specific mitochondrial diseases. (C) 2021 Elsevier B.V. All rights reserved.
Using a high-throughput mitochondrial phenotyping platform to quantify multiple mitochondrial features among molecularly defined immune cell subtypes, we quantify the natural variation in mitochondrial DNA copy number (mtDNAcn), citrate synthase, and respiratory chain enzymatic activities in human neutrophils, monocytes, B cells, and naïve and memory T lymphocyte subtypes. In mixed peripheral blood mononuclear cells (PBMCs) from the same individuals, we show to what extent mitochondrial measures are confounded by both cell type distributions and contaminating platelets. Cell subtype-specific measures among women and men spanning four decades of life indicate potential age- and sex-related differences, including an age-related elevation in mtDNAcn, which are masked or blunted in mixed PBMCs. Finally, a proof-of-concept, repeated-measures study in a single individual validates cell type differences and also reveals week-to-week changes in mitochondrial activities. Larger studies are required to validate and mechanistically extend these findings. These mitochondrial phenotyping data build upon established immunometabolic differences among leukocyte subpopulations, and provide foundational quantitative knowledge to develop interpretable blood-based assays of mitochondrial health.
The mitochondrial tRNALys (mt-tRNALys) mutation is initially associated with myoclonic epilepsy and ragged-red fibers (MERRF). The clinical, laboratory, morphologic and molecular findings from 22 mt-tRNALys mutation carriers from local database in East China were analyzed retrospectively. We identified 13 symptomatic and 9 asymptomatic individuals with a known pathogenic mitochondrial tRNALys mutation. The most common mutations were m.8344 A>G (81.8%), m.8363G>A (9.1%), m.8356 T>C (4.5%) and m.8356 T>G (4.5%). The degree of mutation heteroplasmy in blood was high both in symptomatic (mean 64.5%, range 41–82%) and asymptomatic individuals (mean 53.1%, range 21–78%). Age at onset ranged from 6 year-old to the age of 66 years (mean 35.8 ± 16.4 years old). The most frequent symptoms were muscle weakness (76.9%), exercise intolerance (76.9%), elevated creatine kinase levels (61.5%), peripheral neuropathy (69.2%) and cerebellar ataxia (61.5%), while myoclonus was only present in 23.1% of symptomatic patients. A diagnosis of mitochondrial myopathy (MM) and neuropathy ataxia and retinitis pigmentosa (NARP/NARP-like) syndrome was made in 77% of symptomatic patients, whereas the classic syndrome of myoclonic epilepsy with ragged-red fibers (MERRF) was rare (23%). In this cohort of patients with mt-tRNALys mutation, more than one third of our patients did not develop signs and symptoms of central nervous system involvement even in later stages of the disease, indicating the necessity to investigate the mt-tRNALys gene in ‘pure’ mitochondrial ‘myo-neuropathy’.