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1.
Elife ; 122023 Dec 27.
Artículo en Inglés | MEDLINE | ID: mdl-38149844

RESUMEN

Insulin resistance (IR) is a complex metabolic disorder that underlies several human diseases, including type 2 diabetes and cardiovascular disease. Despite extensive research, the precise mechanisms underlying IR development remain poorly understood. Previously we showed that deficiency of coenzyme Q (CoQ) is necessary and sufficient for IR in adipocytes and skeletal muscle (Fazakerley et al., 2018). Here, we provide new insights into the mechanistic connections between cellular alterations associated with IR, including increased ceramides, CoQ deficiency, mitochondrial dysfunction, and oxidative stress. We demonstrate that elevated levels of ceramide in the mitochondria of skeletal muscle cells result in CoQ depletion and loss of mitochondrial respiratory chain components, leading to mitochondrial dysfunction and IR. Further, decreasing mitochondrial ceramide levels in vitro and in animal models (mice, C57BL/6J) (under chow and high-fat diet) increased CoQ levels and was protective against IR. CoQ supplementation also rescued ceramide-associated IR. Examination of the mitochondrial proteome from human muscle biopsies revealed a strong correlation between the respirasome system and mitochondrial ceramide as key determinants of insulin sensitivity. Our findings highlight the mitochondrial ceramide-CoQ-respiratory chain nexus as a potential foundation of an IR pathway that may also play a critical role in other conditions associated with ceramide accumulation and mitochondrial dysfunction, such as heart failure, cancer, and aging. These insights may have important clinical implications for the development of novel therapeutic strategies for the treatment of IR and related metabolic disorders.


Asunto(s)
Diabetes Mellitus Tipo 2 , Resistencia a la Insulina , Enfermedades Mitocondriales , Humanos , Ratones , Animales , Ubiquinona , Transporte de Electrón , Diabetes Mellitus Tipo 2/metabolismo , Ceramidas/metabolismo , Ratones Endogámicos C57BL , Músculo Esquelético/metabolismo , Enfermedades Mitocondriales/patología
2.
J Biol Chem ; 295(38): 13250-13266, 2020 09 18.
Artículo en Inglés | MEDLINE | ID: mdl-32723868

RESUMEN

Adipose tissue is essential for metabolic homeostasis, balancing lipid storage and mobilization based on nutritional status. This is coordinated by insulin, which triggers kinase signaling cascades to modulate numerous metabolic proteins, leading to increased glucose uptake and anabolic processes like lipogenesis. Given recent evidence that glucose is dispensable for adipocyte respiration, we sought to test whether glucose is necessary for insulin-stimulated anabolism. Examining lipogenesis in cultured adipocytes, glucose was essential for insulin to stimulate the synthesis of fatty acids and glyceride-glycerol. Importantly, glucose was dispensable for lipogenesis in the absence of insulin, suggesting that distinct carbon sources are used with or without insulin. Metabolic tracing studies revealed that glucose was required for insulin to stimulate pathways providing carbon substrate, NADPH, and glycerol 3-phosphate for lipid synthesis and storage. Glucose also displaced leucine as a lipogenic substrate and was necessary to suppress fatty acid oxidation. Together, glucose provided substrates and metabolic control for insulin to promote lipogenesis in adipocytes. This contrasted with the suppression of lipolysis by insulin signaling, which occurred independently of glucose. Given previous observations that signal transduction acts primarily before glucose uptake in adipocytes, these data are consistent with a model whereby insulin initially utilizes protein phosphorylation to stimulate lipid anabolism, which is sustained by subsequent glucose metabolism. Consequently, lipid abundance was sensitive to glucose availability, both during adipogenesis and in Drosophila flies in vivo Together, these data highlight the importance of glucose metabolism to support insulin action, providing a complementary regulatory mechanism to signal transduction to stimulate adipose anabolism.


Asunto(s)
Adipocitos/metabolismo , Proteínas de Drosophila/metabolismo , Glucosa/metabolismo , Insulina/metabolismo , Lipogénesis , Transducción de Señal , Células 3T3-L1 , Animales , Drosophila melanogaster , Glicerofosfatos/metabolismo , Ratones , NADP/metabolismo
3.
Cell Rep ; 29(6): 1524-1538.e6, 2019 11 05.
Artículo en Inglés | MEDLINE | ID: mdl-31693893

RESUMEN

Exercise engages signaling networks to control the release of circulating factors beneficial to health. However, the nature of these networks remains undefined. Using high-throughput phosphoproteomics, we quantify 20,249 phosphorylation sites in skeletal muscle-like myotube cells and monitor their responses to a panel of cell stressors targeting aspects of exercise signaling in vivo. Integrating these in-depth phosphoproteomes with the phosphoproteome of acute aerobic exercise in human skeletal muscle suggests that co-administration of ß-adrenergic and calcium agonists would activate complementary signaling relevant to this exercise context. The phosphoproteome of cells treated with this combination reveals a surprising divergence in signaling from the individual treatments. Remarkably, only the combination treatment promotes multisite phosphorylation of SERBP1, a regulator of Serpine1 mRNA stability, a pro-fibrotic secreted protein. Secretome analysis reveals that the combined treatments decrease secretion of SERPINE1 and other deleterious factors. This study provides a framework for dissecting phosphorylation-based signaling relevant to acute exercise.


Asunto(s)
Ejercicio Físico/fisiología , Músculo Esquelético/metabolismo , Fosfoproteínas/metabolismo , Proteínas Quinasas/metabolismo , Proteoma/metabolismo , Transducción de Señal/fisiología , Estrés Fisiológico/genética , Quinasas de la Proteína-Quinasa Activada por el AMP , Agonistas Adrenérgicos beta/metabolismo , Animales , Aripiprazol/metabolismo , Aripiprazol/farmacología , Calcio/agonistas , Calcio/metabolismo , Interacciones Farmacológicas , Humanos , Isoproterenol/metabolismo , Isoproterenol/farmacología , Espectrometría de Masas , Ratones , Fosfoproteínas/química , Fosforilación , Inhibidor 1 de Activador Plasminogénico/genética , Inhibidor 1 de Activador Plasminogénico/metabolismo , Sistemas de Translocación de Proteínas/genética , Sistemas de Translocación de Proteínas/metabolismo , Proteoma/química , Proteínas de Unión al ARN/genética , Proteínas de Unión al ARN/metabolismo , Ratas , Estrés Fisiológico/fisiología , Tapsigargina/metabolismo , Tapsigargina/farmacología
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