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Rett syndrome: a mitochondrial disease?

Six girls between 2 years 9 months and 15 years of age with Rett syndrome were thoroughly investigated. Blood ammonia levels varied between 42 and 123 mumol/L, and serum lactate concentration was slightly elevated in two girls. Electroencephalograms showed a dysrhythmic pattern during wakefulness; during drowsiness and light sleep, bilateral bursts of spike or multispike-and-wave activity were seen in all but the oldest girl. In one of the younger girls, slight cortical atrophy was found on computed tomographic scan. Muscle biopsy was performed on all girls, and electron microscopy revealed abnormal mitochondria. Physical signs such as somatic hypotrophy with extremely small muscle mass, and unsatisfactory weight gain in spite of good appetite are found in Rett syndrome. These attributes, as well as reports of ornithine carbamoyltransferase deficiency, may support a mitochondrial dysfunction. The mitochondrial changes indicate either a mitochondrial mutation or more probably an X-borne modulator gene mutation. Another genetic possibility discussed is the "metabolic interference" of an X-borne allele. Further delineation of such mitochondrial changes may clarify the causal metabolic defect in Rett syndrome.

Adolescent↗

Metabolic and non-metabolic factors determining troglitazone hepatotoxicity: a review.

Troglitazone (TGZ), a thiazolidinedione class of antidiabetic agent, causes serious idiosyncratic hepatotoxicity. TGZ is metabolized into reactive metabolites that covalently bind to cellular macromolecules, one of which is oxidation at the chromane ring, a unique structure of TGZ, and another involves oxidative cleavage of the thiazolidinedione ring, a structure common to less hepatotoxic antidiabetics, rosiglitazone and pioglitazone. TGZ is cytotoxic to HepG2 cells and rat and human hepatocytes. However, the role of the reactive metabolite on the TGZ toxicity is controversial, because there was no correlation of the generation of the reactive metabolites with susceptibility to the TGZ cytotoxicity, and chemical inhibitors of drug metabolizing enzymes could not protect the cells against the toxicity. Mitochondrial dysfunction, especially mitochondrial permeability transition, may be a pathophysiological event, which is mediated by TGZ itself and is a major non-metabolic factor. Other events such as apoptosis and PPARgamma-dependent steatosis could be also mediated by TGZ, while inhibition of bile salt export pump, a cause of TGZ-induced cholestasis, may be caused by the TGZ sulfate. In conclusion, although the TGZ is biotransformed into chemically reactive metabolites, there is currently no potential evidence for involvement of the reactive metabolite in the TGZ-induced liver injury.

Animals↗

Emodin Induces AIF-Associated Apoptosis and Suppresses Wnt/β-Catenin Signaling in Colorectal Cancer Stem-Like Cells.

Colorectal cancer (CRC) remains a major cause of cancer-related mortality due to therapeutic resistance. Because colorectal cancer stem-like cells (CRCSCs) play a central role in tumor initiation and progression, therapeutic strategies addressing CSC-enriched populations are urgently needed. In this study, we investigated the anticancer effects of emodin, a natural anthraquinone, in CSC-enriched tumorsphere models. Emodin significantly suppressed the viability and self-renewal capacity of HCT116- and SW480-derived CSCs. It induced G0/G1 cell cycle arrest and markedly downregulated stemness-associated markers (CD44, CD133, ALDH1A1, SOX2, NANOG, and OCT4). Importantly, emodin-induced cell death was characterized by mitochondrial dysfunction, increased mitochondrial reactive oxygen species, loss of membrane potential, and nuclear translocation of apoptosis-inducing factor (AIF). This cytotoxicity was not rescued by the pan-caspase inhibitor Z-VAD-FMK, confirming caspase-independent apoptosis. Furthermore, network pharmacology and experimental validation identified GSK3β as a key target. Emodin reduced Wnt/β-catenin signaling by decreasing β-catenin stabilization and nuclear accumulation. Crucially, a rescue experiment utilizing LiCl confirmed that emodin's suppressive effects are mechanistically dependent on the GSK3β/Wnt/β-catenin axis. Collectively, emodin suppresses CRCSC characteristics in vitro by downregulating Wnt/β-catenin signaling and inducing AIF-associated caspase-independent apoptosis, highlighting its therapeutic potential against CRC.

Apoptosis-inducing factor (AIF)↗

The effect of low birth weight as an intrauterine exposure on the early onset of sarcopenia through possible molecular pathways.

Sarcopenia, a musculoskeletal disease characterized by the progressive loss of skeletal muscle mass, strength, and physical performance, presents significant challenges to global public health due to its adverse effects on mobility, morbidity, mortality, and healthcare costs. This comprehensive review explores the intricate connections between sarcopenia and low birth weight (LBW), emphasizing the developmental origins of health and disease (DOHaD) hypothesis, inflammatory processes (inflammaging), mitochondrial dysfunction, circadian rhythm disruptions, epigenetic mechanisms, and genetic variations revealed through genome-wide studies (GWAS). A systematic search strategy was developed using PubMed to identify relevant English-language publications on sarcopenia, LBW, DOHaD, inflammaging, mitochondrial dysfunction, circadian disruption, epigenetic mechanisms, and GWAS. The publications consist of 46.2% reviews, 21.2% cohort studies, 4.8% systematic reviews, 1.9% cross-sectional studies, 13.4% animal studies, 4.8% genome-wide studies, 5.8% epigenome-wide studies, and 1.9% book chapters. The review identified key factors contributing to sarcopenia development, including the DOHaD hypothesis, LBW impact on muscle mass, inflammaging, mitochondrial dysfunction, the influence of clock genes, the role of epigenetic mechanisms, and genetic variations revealed through GWAS. The DOHaD theory suggests that LBW induces epigenetic alterations during foetal development, impacting long-term health outcomes, including the early onset of sarcopenia. LBW correlates with reduced muscle mass, grip strength, and lean body mass in adulthood, increasing the risk of sarcopenia. Chronic inflammation (inflammaging) and mitochondrial dysfunction contribute to sarcopenia, with LBW linked to increased oxidative stress and dysfunction. Disrupted circadian rhythms, regulated by genes such as BMAL1 and CLOCK, are associated with both LBW and sarcopenia, impacting lipid metabolism, muscle mass, and the ageing process. Early-life exposures, including LBW, induce epigenetic modifications like DNA methylation (DNAm) and histone changes, playing a pivotal role in sarcopenia development. Genome-wide studies have identified candidate genes and variants associated with lean body mass, muscle weakness, and sarcopenia, providing insights into genetic factors contributing to the disorder. LBW emerges as a potential early predictor of sarcopenia development, reflecting the impact of intrauterine exposures on long-term health outcomes. Understanding the complex interplay between LBW with inflammaging, mitochondrial dysfunction, circadian disruption, and epigenetic factors is essential for elucidating the pathogenesis of sarcopenia and developing targeted interventions. Future research on GWAS and the underlying mechanisms of LBW-associated sarcopenia is warranted to inform preventive strategies and improve public health outcomes.

Humans↗

Long-lived C. elegans mitochondrial mutants as a model for human mitochondrial-associated diseases.

Mitochondria play a pivotal role in the life of cells, controlling diverse processes ranging from energy production to the regulation of cell death. In humans, numerous pathological conditions have been linked to mitochondrial dysfunction. Cancer, diabetes, obesity, neurodegeneration, cardiomyopathy and even aging are all associated with mitochondrial dysfunction. Over 400 mutations in mitochondrial DNA result directly in pathology and many more disorders associated with mitochondrial dysfunction arise from mutations in nuclear DNA. It is counter-intuitive then, that a class of mitochondrially defective mutants in the nematode Caenorhabditis elegans, the so called Mit (Mitochondrial) mutants, in fact live longer than wild-type animals. In this review, we will reconcile this paradox and provide support for the idea that the Mit mutants are in fact an excellent model for studying human mitochondrial associated diseases (HMADs). In the context of the 'Mitochondrial Threshold Effect Theory', we propose that the kinds of processes induced to counteract mitochondrial mutations in the Mit mutants (and which mediate their life extension), are very likely the same ones activated in many HMADs to delay disease appearance. The identification of such compensatory pathways opens a window of possibility for future preventative therapies for many HMADs. They may also provide a way of potentially extending human life span.

Aging↗

In vitro evidence of inhibition of mitochondrial protease processing by HIV-1 protease inhibitors in yeast: a possible contribution to lipodystrophy syndrome.

Highly active antiretroviral therapy has been associated with the emergence of lipodystrophy syndromes that have clinical features commonly seen in patients with mitochondrial dysfunction. The effect of therapeutic protease inhibitors (PIs) on mitochondrial function is unknown. Mitochondrial matrix space proteins possess an amino-terminal leader peptide that is removed by the mitochondrial processing protease (MPP). Lack of cleavage could result in non- or dysfunctional mitochondrial proteins. The effects of different PIs on protease processing using pure MPP or yeast mitochondria, recognized models for mammalian counterparts, were examined in vitro. Multiple PIs were found to inhibit MPP, evidenced by accumulation of immature pALDH and decreased levels of processed ALDH. Both indinavir and amprenavir at 5.0 mg/ml resulted in significant inhibition of MPP. Although inhibition of MPP was also observed with ritonavir and saquinavir, the inhibition was difficult to quantify due to background inhibition of MPP by DMSO that was required to solubilize the drugs for the in vitro studies. Indinavir was also shown to inhibit MPP within yeast mitochondria. Lack of processing may impair mitochondrial function and contribute to the observed mitochondrial dysfunctions in patients receiving HAART and implicated in antiretroviral-associated lipodystrophy.

Journal Article↗

Mechanism of mitochondrial damage after coronary reperfusion.

We investigated the mechanism of the reperfusion-accelerated mitochondrial dysfunction. To clarify this mechanism, we performed the following experiments using 40 mongrel dogs. Experiment I: Prostaglandin (PG) E and F2 alpha levels in the great cardiac vein (GCV) were examined before, during occlusion and after reperfusion of the left anterior descending coronary artery (LAD). Experiment II: Heart mitochondria were prepared from the normal area and the occluded or the reperfused area after 15 min of the LAD occlusion, or after 5 min of reperfusion following the occlusion with or without premedication of indomethacin. The PGE level in the GCV did not change significantly during occlusion, but increased significantly soon after reperfusion. Mitochondrial dysfunction was caused by occlusion and further accelerated by reperfusion. The PG E level in mitochondria isolated from the reperfused area increased significantly. Indomethacin significantly prevented both the increase in PG E and the acceleration of mitochondrial dysfunction by reperfusion. These results suggest that the increase in PG E level is closely related to the reperfusion-accelerated mitochondrial dysfunction, and that premedication with indomethacin significantly prevented the extension of mitochondrial dysfunction induced by coronary reperfusion.

Animals↗

Pre-eclampsia--a mitochondrial disease?

Mitochondrial dysfunction is a newly found group of inborn errors of metabolism in which there is a failure in the aerobic energy production. Disorders of mitochondrial metabolism exhibit a wide range of clinical symptoms which are related to the nature, severity and tissue distribution of the metabolic defect. Most reported cases are published in the neurological literature. In this report we describe for the first time a family with mitochondrial dysfunction with a high incidence of pre-eclampsia/eclampsia. The diagnosis of a mitochondrial disorder is verified by electronmicroscopic, electromyographic, histochemical and biochemical examinations. During pregnancy, the energy demand is increased due to both fetal and maternal requirements. A mitochondrial dysfunction, clinically symptomless in the non-pregnant state, may therefore become manifest during pregnancy. Characteristic features of pre-eclampsia such as disturbed ion transport, disturbed prostaglandin synthesis, vasoconstriction, platelet aggregation and hyperuricemia may be explained by mitochondrial dysfunction.

Adult↗

[Value of skin fibroblasts in culture for the diagnosis of mitochondrial cell dysfunction. Apropos of 5 cases with cytochrome c oxidase deficiency].

Mitochondrial respiratory chain dysfunction has been studied by two complementary methods using cultured skin fibroblasts from five patients with muscular cytochrome c oxidase (complex IV) deficiency: first, a screening test measuring lactate to pyruvate ratio (L/P) after supplementation of cultured cells; secondly, measurement of complex IV activity in whole cells. Respiratory chain defect (increased L/P ratio with decreased complex IV activity) was expressed in fibroblasts of four of the five patients. Our results show that skin fibroblasts can be helpful for biochemical diagnosis of mitochondrial respiratory chain defects.

Cells, Cultured↗

Lipid-lowering drugs and mitochondrial function: effects of HMG-CoA reductase inhibitors on serum ubiquinone and blood lactate/pyruvate ratio.

1. Statins inhibit synthesis of mevalonate, a precursor of ubiquinone that is a central compound of the mitochondrial respiratory chain. The main adverse effect of statins is a toxic myopathy possibly related to mitochondrial dysfunction. 2. This study was designed to evaluate the effect of lipid-lowering drugs on ubiquinone (coenzyme Q10) serum level and on mitochondrial function assessed by blood lactate/pyruvate ratio. 3. Eighty hypercholesterolaemic patients (40 treated by statins, 20 treated by fibrates, and 20 untreated patients, all 80 having total cholesterol levels > 6.0 mmol l-1) and 20 healthy controls were included. Ubiquinone serum level and blood lactate/pyruvate ratio used as a test for mitochondrial dysfunction were evaluated in all subjects. 4. Lactate/pyruvate ratios were significantly higher in patients treated by statins than in untreated hypercholesterolaemic patients or in healthy controls (P < 0.05 and P < 0.001). The difference was not significant between fibratetreated patients and untreated patients. 5. Ubiquinone serum levels were lower in statin-treated patients (0.75 mg l-1 +/- 0.04) than in untreated hypercholesterolaemic patients (0.95 mg l-1 +/- 0.09; P < 0.05). 6. We conclude that statin therapy can be associated with high blood lactate/ pyruvate ratio suggestive of mitochondrial dysfunction. It is uncertain to what extent low serum levels of ubiquinone could explain the mitochondrial dysfunction.

Adult↗

Protective effect of FK506 on ischemia/reperfusion-induced myocardial damage in canine heart.

We investigated the cardioprotective effect of FK506, a newly developed immunosuppressive agent, on ischemia-reperfusion-induced myocardial damage and the inhibitory effect of FK506 on superoxide radical formation by neutrophils. Open-chest anesthetized dogs were divided into two groups: group 1, 2-h occlusion of the coronary artery followed by 1-h reperfusion; and group 2, 2-h occlusion followed by 1-h reperfusion with preadministration of FK506 (0.5 mg/kg). After reperfusion, heart mitochondria were prepared from the normal and reperfused areas and mitochondrial function and mitochondrial GSH (the reduced form of glutathione) and GSSG (the oxidized form of glutathione) concentrations were measured. In addition, neutrophils were collected from normal healthy dogs, and the inhibitory effect of FK506 on superoxide radical formation by neutrophils was also investigated. One-hour reperfusion after 2-h coronary occlusion induced significant mitochondrial dysfunction associated with a marked depletion of mitochondrial GSH concentration. FK506 reduced mitochondrial dysfunction, depletion of mitochondrial GSH concentration, and development of reperfusion arrhythmias. FK506 also reduced stimulant-induced superoxide radical formation by normal neutrophils dose dependently. Radical scavenging activity decreased in association with reperfusion, and FK506 reduced superoxide radical formation by neutrophils, which might contribute to lessening ischemia-reperfusion damage.

Animals↗

The role of calcium in ischemic myocardial injury.

Hypoxia and ischemia produce depression of myocardial contractile function and alterations in calcium homeostasis. Although both functional abnormalities and alterations in calcium handling are reversible under some conditions, reoxygenation or reperfusion can also lead to paradoxical augmentation of injury. Under many conditions of ischemia and reperfusion, however, a causal relation between altered calcium handling and cellular injury has been difficult to establish. Calcium entry through specific calcium channels during and after hypoxic insult can account for only a fraction of the observed pathologic transsarcolemmal calcium flux; sodium-calcium exchange also appears to contribute to calcium influx but to a limited degree. During reoxygenation calcium also appears to enter through nonspecific sarcolemmal permeability changes. The hypothesis that mitochondria are calcium loaded by hypoxia and reoxygenation and that the calcium loading produces mitochondrial dysfunction has not been substantiated convincingly. Brief hypoxia can produce mitochondrial dysfunction without mitochondrial calcium overload, whereas calcium overload per se does not initially produce irreversible cellular injury. Under conditions of prolonged ischemic insult, with or without reperfusion, it is likely that disturbed calcium homeostasis does play a role in ultimate cellular injury. However, available data fall short of establishing intracellular calcium overload as a necessary or sufficient condition to produce irreversible myocardial cell injury.

Animals↗

Granulopoietic Dysregulation in a Patient-Tailored Mouse Model of Barth Syndrome.

Barth syndrome (BTHS) is an X-linked recessive disorder characterized by cardiomyopathy, skeletal muscle myopathy and fatigue, growth restriction, and neutropenia. Neutropenia increases the risk of life-threatening bacterial infections, a major cause of death in individuals with BTHS. Currently, there is no curative treatment for BTHS or associated neutropenia. The development of therapeutic strategies to correct BTHS-associated neutropenia has been hindered by a limited understanding of the underlying molecular mechanisms involved. BTHS is caused by a mutation in the Tafazzin gene encoding a transacylase required for the maturation of cardiolipin, an inner mitochondrial membrane phospholipid crucial for mitochondrial structure and function. We introduced a BTHS patient's point mutation (TAZD75H) into the mouse Tafazzin enzyme's critical acyltransferase site using CRISPR/Cas9-mediated genome editing, resulting in a patient-tailored point mutant knock-in BTHS model (TazD75H) that expresses a stable mutant TazD75H protein lacking transacylase activity. TazD75H&#xa0;mice were then used to investigate how loss of Tafazzin enzymatic activity impacts hematopoiesis. Male TazD75H mice exhibited impaired granulopoiesis and neutropenia secondary to impaired function of hematopoietic progenitors. Furthermore, they demonstrated age-dependent neutrophil maturation impairment reflecting the variable neutropenia observed in BTHS patients. Additionally, male TazD75H mice exhibit chronic lymphopenia that persists post TazD75H bone marrow transplantation. Mechanistically, the TAZD75H point mutation caused hematopoietic cell mitochondrial dysfunction in patient-derived immortalized TAZD75H lymphoblasts, increasing reactive oxygen species production and mitochondrial membrane depolarization. Likewise, Cyclosporine A treatment rescued these mitochondrial phenotypes in vitro, confirming TAZD75H mitochondrial dysfunction. Overall, our findings demonstrate that mitochondrial dysfunction secondary to TAFAZZIN loss of enzymatic function underlies BTHS-associated neutropenia and lymphopenia.

Animals↗

Laboratory approach to mitochondrial diseases.

Dysfunction in mitochondrial processes has been related to several pathologies. In these disorders, the cell suffers oxidative imbalance that is mostly due to defects in pyruvate metabolism, mitochondrial fatty acids oxidation, the citric acid cycle or electron transport by the mitochondrial respiratory chain. These metabolic alterations produce mitochondrial diseases that have been related to inherited syndromes, such as MERRF or MELAS. The main affected organs are brain, skeletal muscle, kidney, heart and liver, because of the high energetic demand and the oxidative metabolism. Moreover, the relationship between mitochondrial dysfunction and neurodegenerative processes, such as Parkinson disease or Alzheimer disease, as well as ageing, has been shown. Because mitochondrias are the target of several xenobiotics, such as aspirin, AZT or alcohol consumption, mitochondrial impairment has also been proposed as a mechanism of toxicity. Most laboratory tests that are available in the diagnosis of mitochondrial illness are assayed in tissue biopsies and are usually difficult to interpret. Recently, it has been shown that non-invasive techniques, such as nuclear magnetic resonance or the 2-keto[1-(13)C]isocaproic acid breath test, may be useful to assess mitochondrial function. This article attempts to show the laboratory approach to mitochondrial diseases, reviewing new techniques that could be of great value in the research of mitochondrial function, such as the 2-keto[1-(13)C]isocaproic breath test.

Breath Tests↗

The mechanism of acute cytotoxicity of triethylphosphine gold(I) complexes. III. Chlorotriethylphosphine gold(I)-induced alterations in isolated rat liver mitochondrial function.

Chlorotriethylphosphine gold(I) (TEPAu) is an organo-gold compound that has therapeutic activity in animal models of rheumatoid arthritis. Initial studies have suggested that TEPAu is a potent cytotoxic compound in vitro against a variety of cultured cell types and isolated hepatocytes. Mitochondrial dysfunction induced by this compound has been suggested as a primary biochemical alteration which may result in lethal cell injury in isolated hepatocytes. The purpose of this study was, therefore, to determine the mechanism of TEPAu-induced dysfunction of isolated rat liver mitochondria. TEPAu induced a rapid, concentration-related collapse of the mitochondrial inner membrane potential (EC50 = 24.7 +/- 2.5 microM) which was potentiated in Ca2+ loaded mitochondria (EC50 = 11.3 +/- 3.8 microM). TEPAu-induced collapse of the membrane potential was partially inhibited in the presence of ruthenium red or EGTA. TEPAu caused the rapid release of mitochondrially sequestered Ca2+ which was not inhibited by ruthenium red and, thus, was not via a reversal of the Ca2+ uniporter. TEPAu caused mitochondrial swelling, increased permeability of the inner membrane, and the oxidation/hydrolysis of endogenous mitochondrial pyridine nucleotides. Addition of exogenous ATP slightly reversed the effects of TEPAu on pyridine nucleotides. TEPAu-induced mitochondrial alterations were reversed or inhibited by exposure to the sulfhydryl reducing agent, dithiothreitol. Also, the TEPAu-induced collapse of the mitochondrial membrane potential was partially inhibited by dibucaine, a non-specific inhibitor of phospholipases. These data suggest that TEPAu-induced mitochondrial dysfunction is sulfhydryl dependent. TEPAu-induced mitochondrial dysfunction results in dissipation of the potential difference across the inner mitochondrial membrane which inhibits mitochondrial oxidative phosphorylation. The mechanism by which TEPAu induces the collapse of the membrane potential may be mediated by a sulfhydryl-dependent increase in permeability of the inner membrane to protons.

Animals↗

Cytochrome c oxidase deficiencies in the muscle of patients with inflammatory myopathies.

We studied mitochondrial function in inflammatory myopathies, using cytochrome c oxidase (COX) reaction on muscle biopsy samples from 30 patients (15 with dermatomyositis, 12 with polymyositis, and 3 with inclusion body myositis) and 30 age-matched controls. We also performed immunocytochemistry for COX II and COX IV subunits in 7 of these patients who had COX deficiency. COX-deficient fibers were a constant finding in patients or controls older than 65 years and the percentage of COX-deficient fibers correlated with age in both patients and controls. Focal COX deficiency was found in 24 patients (13 of 15 with dermatomyositis, 8 of 12 with polymyositis, and 3 of 3 with inclusion body myositis) and 18 controls. The percentages of COX-deficient fibers were higher in patients with inflammatory myopathies (range: 0-4.7%; mean: 1.2%) than in age-matched controls (range: 0-1.9%; mean: 0.4%) (P < 0.01). In the subgroup of patients under age 65, COX-deficient fibers were more frequent in dermatomyositis than in polymyositis (mean: 0.8% vs 0.2%, P = 0.02). In patients with dermatomyositis, capillary loss correlated positively with COX deficiency (P < 0.02). Immunocytochemistry for COX II and IV showed that 82% of COX-negative fibers were COX II-negative and 26% were COX IV-negative, suggesting that proteins encoded by mitochondrial DNA are predominantly, but not exclusively, involved in COX deficiency. We conclude that mitochondrial dysfunction and COX deficiency can occur in inflammatory myopathies. Such a mitochondrial dysfunction is not solely related to the aging process. We suggest that muscle ischemia contributes to mitochondrial dysfunction in dermatomyositis.

Adult↗

Neuroprotective effects of ischemic preconditioning in brain mitochondria following cerebral ischemia.

Numerous studies support the hypothesis that reperfusion following cerebral ischemia contributes substantially to ischemic injury and that mitochondrial dysfunction plays a central role. Defining the mechanisms by which mitochondrial dysfunction occurs may be important for the development of new therapies against delayed neuronal cell death. Ischemic preconditioning (IP) increases an organ's resistance to ischemic injury. There are two windows for IPC, one that requires several hours to develop and another one with a rapid setting (rapid window). However, the rapid window only provides neuroprotection for few days. We have recently determined that this lack of chronic protection by the rapid window was due to lack of protection against mitochondrial dysfunction.

Adaptation, Physiological↗

Progressive accumulation of mitochondrial DNA mutations and decline in mitochondrial function lead to beta-cell failure.

A key adaptation enabling the fetus to survive in a limited energy environment may be the reprogramming of mitochondrial function, which can have deleterious effects. Critical questions are whether mitochondrial dysfunction progressively declines after birth, and if so, what mechanism might underlie this process. To address this, we developed a model of intrauterine growth retardation (IUGR) in the rat that leads to diabetes in adulthood. Reactive oxygen species (ROS) production and oxidative stress gradually increased in IUGR islets. ATP production was impaired and continued to deteriorate with age. The activities of complex I and III of the electron transport chain progressively declined in IUGR islets. Mitochondrial DNA point mutations accumulated with age and were associated with decreased mitochondrial DNA content and reduced expression of mitochondria-encoded genes in IUGR islets. Mitochondrial dysfunction resulted in impaired insulin secretion. These results demonstrate that IUGR induces mitochondrial dysfunction in the fetal beta-cell, leading to increased production of ROS, which in turn damage mitochondrial DNA. A self-reinforcing cycle of progressive deterioration in mitochondrial function leads to a corresponding decline in beta-cell function. Finally, a threshold in mitochondrial dysfunction and ROS production is reached, and diabetes ensues.

Adenosine Triphosphate↗