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Pathogenic POLRMT variants in mice impair mtDNA transcription and affect perinatal survival.

Mitochondrial gene expression is essential for oxidative phosphorylation that generates the bulk of the cellular ATP, and mitochondrial dysfunction is a common cause of human metabolic diseases. Recently, the first pathogenic variants in the only known mitochondrial RNA polymerase (POLRMT) were described in patients presenting with a wide variety of clinical manifestations, including hypotonia, short stature, and developmental delay. Here, we modeled two human pathogenic POLRMT variants by creating the corresponding substitutions in mice: the dominant S582F and the recessive R984C variant. Mice homozygous for the R984C variant showed perinatal lethality without apparent embryonic developmental defects, a finding consistent with a failure to adapt to the metabolic transition to oxidative metabolism at birth. Mice carrying the S582F variant were viable and exhibited decreased mitochondrial transcript levels due to impaired de novo transcription. However, mtDNA levels and in organello mtDNA replication remained normal, which recapitulates the molecular phenotypes observed in patients. Altogether, our findings indicate that the conserved arginine near the active site is essential for POLRMT function, while the serine in the intercalating hairpin of the N-terminal domain is required for near-genome length transcription but not primase activity. This study highlights genotype-phenotype differences and provides new insights into POLRMT function.

Animals

Beneficial effects of cyclosporine on postischemic liver injury in rats.

The discovery of cyclosporine has had a significant impact on preventing the rejection of transplanted organs in humans. In this study, we present another positive aspect of cyclosporine. Rats were pretreated with cyclosporine (10 mg/kg, i.v.), or untreated. After 2-hr ischemia or 1 hr of reperfusion following 2-hr ischemia, livers were isolated and liver adenine nucleotide concentrations were determined. Liver mitochondria were prepared and their function was estimated polarographically. Leakage of AST, ALT, LDH, and adenine nucleotides into the hepatic vein just after reperfusion was also measured. Cyclosporine treatment did not affect ischemia-induced mitochondrial dysfunction, nor did it prevent the associated decrease in adenosine triphosphate concentration. However, treatment with cyclosporine accelerated the recovery of mitochondrial function and of tissue adenosine triphosphate concentrations. Cyclosporine treatment also mitigated leakage of AST, ALT, LDH, and adenine nucleotides after reperfusion. These results indicate that cyclosporine shows a potent protective effect on ischemia-reperfusion-related liver injury.

Adenine Nucleotides

Mitochondrial encephalomyopathies: defects of nuclear DNA.

The term "mitochondrial diseases" encompasses a heterogeneous group of disorders in which a primary mitochondrial dysfunction is suspected or proven by morphologic, genetic, or biochemical criteria. Clinically, these progressive disorders usually affect muscle, either alone (mitochondrial myopathies) or in combination with other systems, most often brain (encephalomyopathies). Mitochondria are unique among intracellular organelles in that mitochondrial proteins are encoded by two genomes, nuclear DNA (nDNA) and mitochondrial DNA (mtDNA). The vast majority of mitochondrial proteins are encoded by the nuclear genome, whereas mtDNA (a circular, double stranded 16.5 kb molecule) encodes only 13 polypeptides, all of them subunits of respiratory chain complexes. In addition to structural genes, mtDNA also codes for 22 transfer RNAs and two ribosomal RNAs. Our understanding of mitochondrial diseases has grown at an impressive rate in the past few years, and most of the progress has been in the area of mtDNA genetics, where several mtDNA mutations have been associated with specific diseases (reviewed in this issue by Zeviani et al.). In comparison, our understanding of mitochondrial disorders due to nDNA lesions has lagged behind and, to date, molecular defects of nuclear genes have been documented in only a few patients. We will review which alterations in the nuclear genome can cause mitochondrial disorders and which criteria are useful in identifying such mutations. While several examples will be provided, this is not intended as a complete review of the subject.

Cell Nucleus

Mitochondrial DNA mutations and disturbances of energy metabolism in myocardium.

Since mitochondria occupy a pivotal position in energy metabolism, mitochondrial dysfunction is directly linked with disturbances in cellular function. Mitochondria possess their own DNA, which codes 13 subunits of the mitochondrial energy transducing system; the other subunits are coded by nuclear DNA. Recent advances in gene technology, especially the polymerase chain reaction (PCR), permit us to analyze mitochondrial DNA mutations in a small quantity of tissue. We devised rapid and accurate methods to detect mitochondrial DNA mutations, i.e., the primer shift PCR method and the PCR-Southern method. We also developed a method to determine DNA sequences directly without cloning. Using these methods, we revealed that multiple mitochondrial DNA mutations exist in the myocardium of patients with cardiomyopathy. One mutation was based on the following directly repeated sequence: 5'-CATCAACAACCG-3'. This sequence exists in both the ATPase6 gene and the D-loop region, and pseudo-recombination occurs at that directly repeated sequence resulting in a 7.4 kbp deletion. Accordingly, some subunits of the mitochondrial energy transducing system can not be biosynthesized by these deleted mitochondrial DNA, and energy transduction is substantially depleted. Even without reduction of blood supply, mitochondrial DNA mutations can induce a chronic ischemia-like state in the myocardium, which might be a factor in the genesis of cardiomyopathy.

Adenosine Triphosphate

Form and function of actin impacts actin health and aging.

The actin cytoskeleton is a fundamental and highly conserved structure that functions in diverse cellular processes, yet its direct contribution to organismal aging remains unclear. Here, we systematically interrogated how genetic and pharmacologic perturbations of actin structure and function influence lifespan and various hallmarks of aging in Caenorhabditis elegans. Whole-animal and tissue-specific knockdown of actin and key actin-binding proteins (ABPs)-arx-2 (Arp2/3), unc-60 (cofilin), and lev-11 (tropomyosin)-led to premature disruption of filament organization, reduced lifespan, and tissue-specific physiological defects. Actin dysfunction also displayed a more "aged" transcriptome using previously validated transcriptomics clocks, and broadly exacerbated many age-associated phenotypes, including mitochondrial dysfunction, lipid dysregulation, loss of proteostasis, impaired autophagy, and intestinal barrier failure. Pharmacological destabilization with Latrunculin A mirrored genetic knockdowns, while mild stabilization with Jasplakinolide modestly extended lifespan, emphasizing that optimal and finely tuned actin function is critical for healthy aging. Finally, analysis of human genome-wide association data revealed that common ACTB polymorphisms correlate with differences in age-related decline in gait speed, suggesting some links between aging and actin across organisms. Taken together, our results provide a comprehensive and publicly accessible resource that maps, for the first time, how changes in actin integrity correlate with diverse aging phenotypes across tissues. This descriptive framework is intended to enable future mechanistic discovery by offering a deep, unbiased dataset that can be integrated with emerging studies to define how actin dynamics can potentially influence aging.

actin

Mitochondrial Haplotype Shapes the Trajectory of Ovarian Aging in Genetically Heterogeneous Rats.

Ovarian aging leads to permanent reproductive senescence and systemic hormonal changes that predispose women to age-associated comorbidities. Despite these observations, the intrinsic mechanisms driving age-related ovarian decline are poorly defined. Mitochondrial DNA (mtDNA) mutations and instability are strongly associated with aging; however, it remains unknown if naturally occurring mitochondrial genetic variation influences the trajectory of ovarian aging. To address this, we compared two genetically heterogeneous rat cohorts (OKC-HETB and OKC-HETW) that differ in mitochondrial haplotype on a randomized but equivalently distributed nuclear background. The OKC-HETW haplotype was associated with accelerated loss of primordial follicles and pathological remodeling marked by fibrosis, macrophage infiltration, and multinucleated giant cells. These tissue-level pathologies were paralleled by mitochondrial dysfunction, characterized by decreased respiratory complex activity, ATP production, and mtDNA copy number. Mechanistically, we identified a haplotype-specific defect in mitochondrial genome maintenance. Although TFAM expression was normal, and total TFAM protein was elevated, OKC-HETW ovaries showed reduced mitochondrial TFAM abundance, TFAM-mtDNA binding, and TOMM20, suggesting that impaired TOMM20-mediated import is associated with compromised mitochondrial genomic stability. Longitudinal transcriptomic and proteomic analyses further indicate that mitochondrial haplotype influences the rate of ovarian aging, with OKC-HETW ovaries showing accelerated activation of inflammatory and fibrotic pathways alongside suppressed proteostasis and mitochondrial function. These defects corresponded to impairments in ovulation and a trend toward worsening oocyte quality. Collectively, our findings identify mitochondrial haplotype as a heritable modifier of ovarian aging rate that acts in concert with the nuclear genome, and a putative target for preserving ovarian function and female healthspan.

Animals

A digitized-fluorescence-imaging study of mitochondrial Ca2+ increase by doxorubicin in cardiac myocytes.

The objective of the present study was to investigate the role of mitochondrial Ca2+ in doxorubicin-induced cell injury. The effect of doxorubicin on cultured cells was investigated by digitized fluorescence imaging. The Ca2+ sensitive fluorescent dye fura-2 was used to estimate cytosolic, mitochondrial and total cellular Ca2+. Rhodamine 123 was used to estimate the mitochondrial membrane potential, and cellular ATP was determined by h.p.l.c. The data showed that doxorubicin induced greater-than-2-fold increases in mitochondrial Ca2+ before changes in cytosolic Ca2+ could be detected. An increase in mitochondrial Ca2+ paralleled the observed dissipation in mitochondrial membrane potential. Cellular ATP levels appeared to decrease as a result of mitochondrial dysfunction, which in turn produced greater-than-2-fold increases in cytosolic Ca2+. The data suggest that doxorubicin-induced alterations in mitochondrial Ca2+ homoeostasis are associated with a dissipation in energy conservation, which may result in cell injury.

Adenosine Triphosphate

Structural and functional mitochondrial abnormalities associated with high levels of partially deleted mitochondrial DNAs in somatic cell hybrids.

Kearns-Sayre syndrome (KSS) is a progressive and ultimately fatal human encephalomyopathy that is associated with large-scale deletions of mitochondrial DNA (mtDNA). To gain new insights into the developmental pathobiology of this disease, we studied the maintenance and expression of deleted mtDNAs (delta-mtDNAs) in somatic cell hybrids generated by fusion of HeLacot cells with a KSS fibroblast clone containing both wild-type and delta-mtDNAs. We observed that delta-mtDNAs were preferentially maintained over the KSS wild-type mtDNAs (wt-mtDNAs) in almost all isolated hybrid clones. Mitochondrial metabolism was not compromised in hybrids containing as much as 70-79% delta-mtDNAs. Two clones containing more than 99% delta-mtDNA were severely deficient in oxidative phosphorylation and exhibited abnormal, enlarged mitochondria. These clones had undetectable levels of mtDNA-encoded polypeptides, but contained normal amounts of a nuclear DNA-encoded mitochondrial protein. The data suggest a nonrandom pattern of mtDNA segregation in the triplasmic hybrids and a correlation among delta-mtDNA, structural mitochondrial abnormalities, and mitochondrial dysfunction.

Cell Division

Muscle mitochondrial DNA in encephalomyopathy and ragged red fibres: a Southern blot analysis and literature review.

Various mitochondrial DNA abnormalities have been described in patients with encephalomyopathies. We performed Southern blot analysis of skeletal muscle mitochondrial DNA in nine adult patients with clinical features and ragged red fibres suggesting mitochondrial dysfunction. Two patients with encephalomyopathy and two with the MERRF syndrome (myoclonus epilepsy with ragged red fibres) had the normal PvuII restriction pattern of muscle mitochondrial DNA. In contrast, mitochondrial DNA deletion was observed in two of six patients with ophthalmoplegia. One suffered from typical Kearns-Sayre syndrome and the other from isolated external ophthalmoplegia. None of these patients had affected relatives. The detection of mitochondrial DNA deletion in external ophthalmoplegia and their site and size support previously reported data.

Blotting, Southern

Postischaemic reperfusion injury in the isolated rat heart: effect of ruthenium red.

STUDY OBJECTIVE: The aim was to investigate the effect of attenuating mitochondrial calcium uptake with ruthenium red on myocardial function and the resultant necrosis following prolonged ischaemia and reperfusion in isolated rat hearts. Mitochondrial dysfunction, secondary to increased calcium uptake, has been implicated as an important mediator of reperfusion injury in the heart. DESIGN: To examine the role of mitochondrial calcium uptake in mediating ischaemic and reperfusion injury, isolated rat hearts were perfused with ruthenium red (n = 6), a polysaccharide dye which inhibits calcium uptake by mitochondria, and were compared to control perfused hearts (n = 7). After stabilisation, hearts were subjected to 60 min no flow ischaemia, immediately followed by 40 min reperfusion. EXPERIMENTAL MATERIAL: Hearts were used from male Wistar rats weighing 300-350 g. MEASUREMENTS AND MAIN RESULTS: Cardiac high energy phosphates (ATP, phosphocreatine, inorganic phosphate) and pH were continuously monitored during ischaemia and reperfusion using phosphorus magnetic resonance spectroscopy. Contractility (dP/dT), coronary flow, creatine kinase release, and the time to the onset of ischaemic contracture were also measured. No differences in metabolic abnormalities or time to peak contraction during ischaemia were found between groups, suggesting that ruthenium red does not alter the metabolic consequences of ischaemia. However, upon reperfusion, the following differences in the ruthenium red perfused hearts were observed when compared to control hearts (p less than 0.05): ATP and phosphocreatine recovery were more complete, myocardial contractility was greater, coronary flow was greater, and myocyte necrosis was attenuated. CONCLUSIONS: Combined with the known inhibitory effect of ruthenium red on mitochondrial calcium uptake, these data suggest that an important component of myocardial injury following ischaemia and reperfusion in the isolated rat heart is the result of mitochondrial calcium accumulation.

Adenosine Triphosphate

Reactive oxygen and DNA damage in mitochondria.

During the last decade the importance of reactive oxygen species as major contributors to various types of cancer, heart diseases, cataracts, Parkinson's and other degenerative diseases that come with age, and to natural aging has become apparent. Mitochondria are the most important intracellular source of reactive oxygen. Mitochondrial DNA is heavily damaged by reactive oxygen at the bases, as indicated by the high steady-state level of 8-hydroxydeoxyguanosine, the presence of which causes mispairing and point mutations. Mitochondrial DNA is also oxidatively fragmented to a certain extent. Conceivably, such fragmentation relates to deletions found in mitochondrial DNA. Point mutations and deletions have recently been shown to be etiologically linked to several human diseases and natural aging. Future studies should address the causal relationship between mitochondrial dysfunction, production of reactive oxygen species, and aging.

Aging

Beneficial effect of fluorocarbon reperfusion on postoperative cardiac dysfunction of transplanted heart.

Fluosol DA 20% (Fluosol) perfusion was used to protect ischemic donor hearts of mongrel dogs from reperfusion injury. Fifteen orthotopically transplanted hearts, eight in the control group and seven in the Fluosol group, were studied for 3 hours after weaning from cardiopulmonary bypass. Donor hearts were arrested and immersed in 4 degrees C St. Thomas's Hospital Solution for 4 hours. The mean total ischemic time was 323 minutes (range, 298 to 345 minutes). In the Fluosol group, 200 ml of oxygenated Fluosol (37 degrees C; PO2 650 mm Hg; PCO2 35 mm Hg) was infused into the aortic root at approximately 100 ml/min just before aortic unclamping. Coronary sinus blood was analyzed for the MB fraction of creatine kinase, reduced glutathione, and oxidized glutathione. Hemodynamic and biochemical results were obtained at 30 minutes, 1 hour, and 3 hours after bypass. In the control group, during the second 30 minutes of the period after bypass, left ventricular end-diastolic pressure and stroke volume showed progressive deterioration, 54.8% increased (p less than 0.01) and 28.4% decreased (p less than 0.05), respectively. The MB fraction of creatine kinase and oxidized glutathione were increased, and reduced glutathione had declined, from 39.3 to 135.3 IU/L (p less than 0.01), from 28.0 to 33.4 micrograms/ml (p less than 0.05) and from 4.4 to 2.5 micrograms/ml (p less than 0.01), respectively. These parameters failed to recover during the next 2 hours, and massive mitochondrial degeneration was observed by electron microscopy. In the Fluosol group, these parameters maintained their baseline values, and electron microscopy showed well-preserved mitochondria. The data suggested that, in the control group, initial mitochondrial dysfunction was profound, persistent for at least 3 hours, and associated with membrane hyperpermeability, leading to cardiac dysfunction. Oxygenated Fluosol perfusion better preserved cardiac and mitochondrial function.

Animals

The Thyroid-Brain Network: Exploring Inflammation, Immune Mechanisms and Common Triggers in Thyroid-Related Neurological Dysfunction.

Autoimmune thyroid diseases (AITD), including Hashimoto's thyroiditis and Graves' disease, represent the most prevalent endocrine disorders worldwide, affecting hundreds of millions with profound but often under recognized neurological consequences. There are emerging lines of evidence establishing inflammation and immunity as the critical missing link connecting peripheral thyroid dysfunction to central nervous system manifestations. Thyroid hormones function as essential neuromodulators governing neurodevelopment, synaptic plasticity, and cognitive processing through integrated genomic and non-genomic mechanisms, with region-specific cerebral metabolic disturbances correlating with distinct neuropsychiatric symptoms. The immunological perspective reveals that AITD propagates neuroinflammation through convergent pathways: molecular mimicry enabling cross-reactivity between thyroid and neural antigens, cytokine-mediated disruption of neurotransmitter metabolism, HMGB1-driven glial activation, and blood-brain barrier compromise facilitating immune cell infiltration. The thyroid-gut-microbiota axis emerges as a critical mediator wherein dysbiosis perpetuates both thyroid autoimmunity and neuroinflammation through impaired serotonin precursor availability and increased intestinal permeability. Mitochondrial dysfunction represents an energetic common denominator, as thyroid hormone dysregulation directly impairs oxidative phosphorylation, producing region-specific cerebral metabolic disturbances. Simultaneous compromise of monoamine systems, cholinergic signaling abnormalities, and glutamate excitotoxicity creates a particularly toxic neurochemical state in untreated thyroid dysfunction. Common triggers such as psychological stress, gut dysbiosis, and mitochondrial impairment may activate interconnected pathways that simultaneously compromise thyroid and brain function, revealing that these disorders share fundamental mechanistic origins. These insights have been discussed in the current review to enhance the understanding of thyroid-brain function, the core mechanisms and consequences of functional deficits.

Journal Article

Morphometric studies on the rat liver in biliary obstruction.

The common bile ducts of the Wistar rats were ligated and severed, and liver biopsies were done weekly for 7 postoperative weeks. Light and electron microscopic specimens were prepared for the morphometric studies. The volume ratio of the hepatic parenchyma decline with the lapse of time after bile duct ligation. However, elevated mean sectional area of the nucleus, increased mitotic index and unchanged estimated weight of the hepatic parenchyma after biliary obstruction suggested that lost hepatocytes were compensated by regeneration. Mitochondrial swelling and curling of the cristae were noted in biliary obstruction in general. Moreover, both the number and volume ratio of the mitochondria were increased corresponding to the duration of biliary obstruction. These changes were interpreted as an adaptation process to mitochondrial dysfunction.

Animals

Oxygen radicals generated by the enzyme xanthine oxidase lyse rat pancreatic islet cells in vitro.

The endothelium-associated enzyme xanthine oxidase is known to generate reactive oxygen intermediates which may damage the surrounding tissue. We investigated whether reactive oxygen intermediates released by xanthine oxidase exert a toxic effect on isolated rat islet cells. The xanthine oxidase (25 mU/ml)/hypoxanthine (0.5 mmol/l) system released reactive oxygen intermediates in vitro as detected by luminol in a chemiluminescence analysing system. The addition of nicotinamide inhibited the release of reactive oxygen intermediates in a dose-dependent manner (50% inhibition at 20 mmol/l). Exposure of islet cells to enzyme generated reactive oxygen intermediates caused lysis of 39% of the cells within 15 h. Monitoring the mitochondrial function of islet cells by the conversion of tetrazolium bromide to its formazan product revealed a significant reduction of the respiratory activity down to 51% of that of the controls by 30 min after the initiation of the xanthine oxidase reaction. Mitochondrial dysfunction preceded plasma membrane damage. The addition of nicotinamide, a radical scavenger and inhibitor of the DNA repair enzyme poly(ADP-ribose) synthetase protected the islet cells from lysis and partially preserved their mitochondrial activity in the presence of reactive oxygen intermediates. We conclude that activation of the endothelial enzyme xanthine oxidase, known to be induced by mediators of immune cells or by episodes of ischaemia and reperfusion causes islet cell damage with subsequent cell death in early phases of pancreatic islet cell destruction.

Animals

Endothelial-mitochondrial coupling in mitochondrial disease: A systematic review and quantitative synthesis of vascular, biochemical, and oxidative bioenergetic dysfunction.

INTRODUCTION: Mitochondrial diseases are multisystem disorders in which defects in oxidative phosphorylation disrupt cellular bioenergetics and redox signaling across the vasculature and heart. Because mitochondrial function is closely linked to endothelial nitric oxide (NO) production, we hypothesized that mitochondrial diseases manifest as a NO-deficiency endotheliopathy affecting conduit and microvascular function. To evaluate this, we performed a systematic review with quantitative synthesis of human studies reporting vascular reactivity, biochemical NO production, or myocardial metabolic imaging, aiming to define the magnitude of impairment and responsiveness to NO-precursor therapy (l-arginine or l-citrulline). METHODS: Following PRISMA 2020 guidelines, we conducted a comprehensive search (inception-October 2025) identifying clinical studies of genetically or clinically confirmed mitochondrial disease with quantitative endothelial or bioenergetic endpoints. Eligible measures included flow-mediated dilation (FMD), reactive hyperemia index (RHI), passive-leg-movement (PLM) hyperemia, absolute synthesis rate of NO metabolites (ASR NOm), and positron emission tomography (PET)-derived myocardial oxidative indices (k mono , DP/k mono ). Quantitative synthesis used Hedges g for between-group comparisons and standardized mean change (SMC) for within-subject responses. Risk of bias was evaluated using ROBINS-I and a modified Newcastle-Ottawa Scale. RESULTS: Seven studies met these inclusion criteria, comprising 76 mitochondrial-disease subjects and 81 controls (ages 8-63 years). Across all vascular and metabolic domains, mitochondrial disease was associated with marked endothelial and bioenergetic impairment. Macro- and microvascular dysfunction, reflected by reduced FMD, RHI, and PLM hyperemia, demonstrated severe endothelium-specific abnormalities. Biochemical assays showed diminished NO synthesis. Myocardial PET imaging revealed reduced oxidative rate constants and increased energetic inefficiency despite preserved perfusion. Nitric oxide synthesis-precursor therapy was associated with improved endothelial reactivity (increased FMD, RHI, and ASR NOm) and significant, modest improvements in myocardial oxidative metabolism, consistent with partial restoration of endothelial NO signaling. Effect sizes collectively supported a reversible NO-deficiency endotheliopathy. The risk-of-bias assessment indicated moderate-to-good methodological quality, with limitations primarily related to small sample sizes and nonrandomized designs. CONCLUSIONS: Mitochondrial disease is characterized by significant impairments in vascular reactivity, NO signaling, and myocardial bioenergetics. Improvements in endothelial function and NO synthesis following l-arginine or l-citrulline supplementation are consistent with a role for impaired endothelial NO signaling in the vascular manifestations of mitochondrial disease. These findings highlight the vascular endothelium as a potential therapeutic target and underscore the need for future clinical intervention trials that use standardized vascular and bioenergetic endpoints.

and stroke-like episodes (MELAS)

Expression and mutation characteristics of mitochondrial genes in PBMCs of SLE patients: Implications for SLE pathogenesis.

This study aimed to investigate mitochondrial gene mutations and expression in peripheral blood mononuclear cells (PBMCs) of systemic lupus erythematosus (SLE) patients, focusing on MT-ND5, and assess expression changes under lipopolysaccharide (LPS), tumor necrosis factor-α (TNF-α), and dexamethasone stimulation. Peripheral blood was collected from female SLE patients. Mitochondrial DNA (mtDNA) from PBMCs was sequenced using the HiSeq PE150 platform. Quantitative reverse transcription PCR and western blotting were used to evaluate mRNA and protein expression of the most frequently mutated mitochondrial genes. Cultured PBMCs were treated with LPS, TNF-α, or dexamethasone to examine regulatory effects. A total of 589 mtDNA mutation sites were detected in SLE patients. Among 13 protein-coding genes, MT-ND5, MT-CYB, MT-CO1, MT-ND4, and MT-CO3 exhibited the highest mutation frequencies. Expression analysis revealed significantly reduced mRNA and protein levels of these genes in SLE PBMCs compared with controls, with further decreases after stimulation with LPS, TNF-α, or dexamethasone. SLE PBMCs display extensive mitochondrial mutations and downregulation of key genes, particularly MT-ND5. Inflammatory and therapeutic stimuli exacerbate this suppression, suggesting mitochondrial dysfunction contributes to SLE susceptibility and progression.

Humans

Atypical riboflavin-responsive glutaric aciduria, and deficient peroxisomal glutaryl-CoA oxidase activity: a new peroxisomal disorder.

Investigation of cultured skin fibroblasts in a patient with atypical riboflavin-responsive glutaric acidura revealed a marked deficiency of peroxisomal glutaryl-CoA oxidase. This is the first patient to be reported with glutaric aciduria caused by a peroxisomal rather than a mitochondrial dysfunction. This enzyme appears to be specific for glutaryl-CoA, as lauryl-CoA and dodecanedioyl-CoA oxidase activities in the fibroblasts were both normal. The urinary excretion of glutaric acid (0.5 mmol mmol creatinine-1) suggests that the flux through this pathway is considerably less than the mitochondrial flux through glutaryl-CoA dehydrogenase. The elevated glutaric acid excretion (to 0.8 mmol mmol creatinine-1) in response to lysine loading suggests that lysine is a precursor.

Acyl-CoA Oxidase