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1.
Biochem J ; 480(21): 1767-1789, 2023 11 15.
Artículo en Inglés | MEDLINE | ID: mdl-37965929

RESUMEN

Mitochondrial dysfunction in skeletal muscle fibres occurs with both healthy aging and a range of neuromuscular diseases. The impact of mitochondrial dysfunction in skeletal muscle and the way muscle fibres adapt to this dysfunction is important to understand disease mechanisms and to develop therapeutic interventions. Furthermore, interactions between mitochondrial dysfunction and skeletal muscle biology, in mitochondrial myopathy, likely have important implications for normal muscle function and physiology. In this review, we will try to give an overview of what is known to date about these interactions including metabolic remodelling, mitochondrial morphology, mitochondrial turnover, cellular processes and muscle cell structure and function. Each of these topics is at a different stage of understanding, with some being well researched and understood, and others in their infancy. Furthermore, some of what we know comes from disease models. Whilst some findings are confirmed in humans, where this is not yet the case, we must be cautious in interpreting findings in the context of human muscle and disease. Here, our goal is to discuss what is known, highlight what is unknown and give a perspective on the future direction of research in this area.


Asunto(s)
Miopatías Mitocondriales , Músculo Esquelético , Humanos , Músculo Esquelético/metabolismo , Miopatías Mitocondriales/genética , Miopatías Mitocondriales/metabolismo , Mitocondrias/metabolismo , Recambio Mitocondrial , Biología
2.
Nucleic Acids Res ; 50(19): 11154-11174, 2022 10 28.
Artículo en Inglés | MEDLINE | ID: mdl-36215039

RESUMEN

Genetic processes require the activity of multiple topoisomerases, essential enzymes that remove topological tension and intermolecular linkages in DNA. We have investigated the subcellular localisation and activity of the six human topoisomerases with a view to understanding the topological maintenance of human mitochondrial DNA. Our results indicate that mitochondria contain two topoisomerases, TOP1MT and TOP3A. Using molecular, genomic and biochemical methods we find that both proteins contribute to mtDNA replication, in addition to the decatenation role of TOP3A, and that TOP1MT is stimulated by mtSSB. Loss of TOP3A or TOP1MT also dysregulates mitochondrial gene expression, and both proteins promote transcription elongation in vitro. We find no evidence for TOP2 localisation to mitochondria, and TOP2B knockout does not affect mtDNA maintenance or expression. Our results suggest a division of labour between TOP3A and TOP1MT in mtDNA topology control that is required for the proper maintenance and expression of human mtDNA.


Asunto(s)
ADN Mitocondrial , Mitocondrias , Humanos , Mitocondrias/metabolismo , ADN Mitocondrial/metabolismo , ADN-Topoisomerasas de Tipo I/metabolismo , Replicación del ADN/genética , ADN-Topoisomerasas/genética
3.
Biochim Biophys Acta Mol Basis Dis ; 1870(5): 167131, 2024 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-38521420

RESUMEN

Mitochondrial DNA (mtDNA) deletions which clonally expand in skeletal muscle of patients with mtDNA maintenance disorders, impair mitochondrial oxidative phosphorylation dysfunction. Previously we have shown that these mtDNA deletions arise and accumulate in perinuclear mitochondria causing localised mitochondrial dysfunction before spreading through the muscle fibre. We believe that mito-nuclear signalling is a key contributor in the accumulation and spread of mtDNA deletions, and that knowledge of how muscle fibres respond to mitochondrial dysfunction is key to our understanding of disease mechanisms. To understand the contribution of mito-nuclear signalling to the spread of mitochondrial dysfunction, we use imaging mass cytometry. We characterise the levels of mitochondrial Oxidative Phosphorylation proteins alongside a mitochondrial mass marker, in a cohort of patients with mtDNA maintenance disorders. Our expanded panel included protein markers of key signalling pathways, allowing us to investigate cellular responses to different combinations of oxidative phosphorylation dysfunction and ragged red fibres. We find combined Complex I and IV deficiency to be most common. Interestingly, in fibres deficient for one or more complexes, the remaining complexes are often upregulated beyond the increase of mitochondrial mass typically observed in ragged red fibres. We further find that oxidative phosphorylation deficient fibres exhibit an increase in the abundance of proteins involved in proteostasis, e.g. HSP60 and LONP1, and regulation of mitochondrial metabolism (including oxidative phosphorylation and proteolysis, e.g. PHB1). Our analysis suggests that the cellular response to mitochondrial dysfunction changes depending on the combination of deficient oxidative phosphorylation complexes in each fibre.


Asunto(s)
ADN Mitocondrial , Enfermedades Mitocondriales , Fosforilación Oxidativa , Prohibitinas , Humanos , ADN Mitocondrial/metabolismo , ADN Mitocondrial/genética , Masculino , Enfermedades Mitocondriales/metabolismo , Enfermedades Mitocondriales/patología , Enfermedades Mitocondriales/genética , Femenino , Adulto , Persona de Mediana Edad , Mitocondrias/metabolismo , Mitocondrias/patología , Mitocondrias/genética , Músculo Esquelético/metabolismo , Músculo Esquelético/patología , Fibras Musculares Esqueléticas/metabolismo , Fibras Musculares Esqueléticas/patología , Complejo IV de Transporte de Electrones/metabolismo , Complejo IV de Transporte de Electrones/genética , Complejo I de Transporte de Electrón/metabolismo , Complejo I de Transporte de Electrón/genética , Transducción de Señal , Mitocondrias Musculares/metabolismo , Mitocondrias Musculares/patología , Proteínas Mitocondriales/metabolismo , Proteínas Mitocondriales/genética
4.
Nat Genet ; 56(3): 395-407, 2024 Mar.
Artículo en Inglés | MEDLINE | ID: mdl-38429495

RESUMEN

In digenic inheritance, pathogenic variants in two genes must be inherited together to cause disease. Only very few examples of digenic inheritance have been described in the neuromuscular disease field. Here we show that predicted deleterious variants in SRPK3, encoding the X-linked serine/argenine protein kinase 3, lead to a progressive early onset skeletal muscle myopathy only when in combination with heterozygous variants in the TTN gene. The co-occurrence of predicted deleterious SRPK3/TTN variants was not seen among 76,702 healthy male individuals, and statistical modeling strongly supported digenic inheritance as the best-fitting model. Furthermore, double-mutant zebrafish (srpk3-/-; ttn.1+/-) replicated the myopathic phenotype and showed myofibrillar disorganization. Transcriptome data suggest that the interaction of srpk3 and ttn.1 in zebrafish occurs at a post-transcriptional level. We propose that digenic inheritance of deleterious changes impacting both the protein kinase SRPK3 and the giant muscle protein titin causes a skeletal myopathy and might serve as a model for other genetic diseases.


Asunto(s)
Enfermedades Musculares , Pez Cebra , Animales , Humanos , Masculino , Conectina/genética , Conectina/metabolismo , Músculo Esquelético , Enfermedades Musculares/genética , Enfermedades Musculares/metabolismo , Enfermedades Musculares/patología , Mutación , Pez Cebra/genética
5.
J Neuromuscul Dis ; 10(6): 1111-1126, 2023.
Artículo en Inglés | MEDLINE | ID: mdl-37638448

RESUMEN

BACKGROUND: Myotonic dystrophy type 1 (DM1) is a dominant autosomal neuromuscular disorder caused by the inheritance of a CTG triplet repeat expansion in the Dystrophia Myotonica Protein Kinase (DMPK) gene. At present, no cure currently exists for DM1 disease. OBJECTIVE: This study investigates the effects of 12-week resistance exercise training on mitochondrial oxidative phosphorylation in skeletal muscle in a cohort of DM1 patients (n = 11, men) in comparison to control muscle with normal oxidative phosphorylation. METHODS: Immunofluorescence was used to assess protein levels of key respiratory chain subunits of complex I (CI) and complex IV (CIV), and markers of mitochondrial mass and cell membrane in individual myofibres sampled from muscle biopsies. Using control's skeletal muscle fibers population, we classified each patient's fibers as having normal, low or high levels of CI and CIV and compared the proportions of fibers before and after exercise training. The significance of changes observed between pre- and post-exercise within patients was estimated using a permutation test. RESULTS: At baseline, DM1 patients present with significantly decreased mitochondrial mass, and isolated or combined CI and CIV deficiency. After resistance exercise training, in most patients a significant increase in mitochondrial mass was observed, and all patients showed a significant increase in CI and/or CIV protein levels. Moreover, improvements in mitochondrial mass were correlated with the one-repetition maximum strength evaluation. CONCLUSIONS: Remarkably, 12-week resistance exercise training is sufficient to partially rescue mitochondrial dysfunction in DM1 patients, suggesting that the response to exercise is in part be due to changes in mitochondria.


Asunto(s)
Distrofia Miotónica , Entrenamiento de Fuerza , Masculino , Humanos , Distrofia Miotónica/genética , Músculo Esquelético/patología , Ejercicio Físico/fisiología , Mitocondrias/metabolismo
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