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The role of skeletal muscle Akt in the regulation of muscle mass and glucose homeostasis

OBJECTIVE: Skeletal muscle insulin signaling is a major determinant of muscle growth and glucose homeostasis. Protein kinase B/Akt plays a prominent role in mediating many of the metabolic effects of insulin. Mice and humans harboring systemic loss-of-function mutations in Akt2, the most abundant Ak...

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Autores principales: Jaiswal, N., Gavin, M.G., Quinn, W.J., Luongo, T.S., Gelfer, R.G., Baur, J.A., Titchenell, P.M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6822261/
https://www.ncbi.nlm.nih.gov/pubmed/31444134
http://dx.doi.org/10.1016/j.molmet.2019.08.001
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author Jaiswal, N.
Gavin, M.G.
Quinn, W.J.
Luongo, T.S.
Gelfer, R.G.
Baur, J.A.
Titchenell, P.M.
author_facet Jaiswal, N.
Gavin, M.G.
Quinn, W.J.
Luongo, T.S.
Gelfer, R.G.
Baur, J.A.
Titchenell, P.M.
author_sort Jaiswal, N.
collection PubMed
description OBJECTIVE: Skeletal muscle insulin signaling is a major determinant of muscle growth and glucose homeostasis. Protein kinase B/Akt plays a prominent role in mediating many of the metabolic effects of insulin. Mice and humans harboring systemic loss-of-function mutations in Akt2, the most abundant Akt isoform in metabolic tissues, are glucose intolerant and insulin resistant. Since the skeletal muscle accounts for a significant amount of postprandial glucose disposal, a popular hypothesis in the diabetes field suggests that a reduction in Akt, specifically in skeletal muscle, leads to systemic glucose intolerance and insulin resistance. Despite this common belief, the specific role of skeletal muscle Akt in muscle growth and insulin sensitivity remains undefined. METHODS: We generated multiple mouse models of skeletal muscle Akt deficiency to evaluate the role of muscle Akt signaling in vivo. The effects of these genetic perturbations on muscle mass, glucose homeostasis and insulin sensitivity were assessed using both in vivo and ex vivo assays. RESULTS: Surprisingly, mice lacking Akt2 alone in skeletal muscle displayed normal skeletal muscle insulin signaling, glucose tolerance, and insulin sensitivity despite a dramatic reduction in phosphorylated Akt. In contrast, deletion of both Akt isoforms (M-AktDKO) prevented downstream signaling and resulted in muscle atrophy. Despite the absence of Akt signaling, in vivo and ex vivo insulin-stimulated glucose uptake were normal in M-AktDKO mice. Similar effects on insulin sensitivity were observed in mice with prolonged deletion (4 weeks) of both skeletal muscle Akt isoforms selectively in adulthood. Conversely, short term deletion (2 weeks) of skeletal muscle specific Akt in adult muscles impaired insulin tolerance paralleling the effect observed by acute pharmacological inhibition of Akt in vitro. Mechanistically, chronic ablation of Akt induced mitochondrial dysfunction and activation of AMPK, which was required for insulin-stimulated glucose uptake in the absence of Akt. CONCLUSIONS: Together, these data indicate that chronic reduction in Akt activity alone in skeletal muscle is not sufficient to induce insulin resistance or prevent glucose uptake in all conditions. Therefore, since insulin-stimulated glucose disposal in skeletal muscle is markedly impaired in insulin-resistant states, we hypothesize that alterations in signaling molecules in addition to skeletal muscle Akt are necessary to perturb glucose tolerance and insulin sensitivity in vivo.
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spelling pubmed-68222612019-11-06 The role of skeletal muscle Akt in the regulation of muscle mass and glucose homeostasis Jaiswal, N. Gavin, M.G. Quinn, W.J. Luongo, T.S. Gelfer, R.G. Baur, J.A. Titchenell, P.M. Mol Metab Original Article OBJECTIVE: Skeletal muscle insulin signaling is a major determinant of muscle growth and glucose homeostasis. Protein kinase B/Akt plays a prominent role in mediating many of the metabolic effects of insulin. Mice and humans harboring systemic loss-of-function mutations in Akt2, the most abundant Akt isoform in metabolic tissues, are glucose intolerant and insulin resistant. Since the skeletal muscle accounts for a significant amount of postprandial glucose disposal, a popular hypothesis in the diabetes field suggests that a reduction in Akt, specifically in skeletal muscle, leads to systemic glucose intolerance and insulin resistance. Despite this common belief, the specific role of skeletal muscle Akt in muscle growth and insulin sensitivity remains undefined. METHODS: We generated multiple mouse models of skeletal muscle Akt deficiency to evaluate the role of muscle Akt signaling in vivo. The effects of these genetic perturbations on muscle mass, glucose homeostasis and insulin sensitivity were assessed using both in vivo and ex vivo assays. RESULTS: Surprisingly, mice lacking Akt2 alone in skeletal muscle displayed normal skeletal muscle insulin signaling, glucose tolerance, and insulin sensitivity despite a dramatic reduction in phosphorylated Akt. In contrast, deletion of both Akt isoforms (M-AktDKO) prevented downstream signaling and resulted in muscle atrophy. Despite the absence of Akt signaling, in vivo and ex vivo insulin-stimulated glucose uptake were normal in M-AktDKO mice. Similar effects on insulin sensitivity were observed in mice with prolonged deletion (4 weeks) of both skeletal muscle Akt isoforms selectively in adulthood. Conversely, short term deletion (2 weeks) of skeletal muscle specific Akt in adult muscles impaired insulin tolerance paralleling the effect observed by acute pharmacological inhibition of Akt in vitro. Mechanistically, chronic ablation of Akt induced mitochondrial dysfunction and activation of AMPK, which was required for insulin-stimulated glucose uptake in the absence of Akt. CONCLUSIONS: Together, these data indicate that chronic reduction in Akt activity alone in skeletal muscle is not sufficient to induce insulin resistance or prevent glucose uptake in all conditions. Therefore, since insulin-stimulated glucose disposal in skeletal muscle is markedly impaired in insulin-resistant states, we hypothesize that alterations in signaling molecules in addition to skeletal muscle Akt are necessary to perturb glucose tolerance and insulin sensitivity in vivo. Elsevier 2019-08-05 /pmc/articles/PMC6822261/ /pubmed/31444134 http://dx.doi.org/10.1016/j.molmet.2019.08.001 Text en © 2019 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Article
Jaiswal, N.
Gavin, M.G.
Quinn, W.J.
Luongo, T.S.
Gelfer, R.G.
Baur, J.A.
Titchenell, P.M.
The role of skeletal muscle Akt in the regulation of muscle mass and glucose homeostasis
title The role of skeletal muscle Akt in the regulation of muscle mass and glucose homeostasis
title_full The role of skeletal muscle Akt in the regulation of muscle mass and glucose homeostasis
title_fullStr The role of skeletal muscle Akt in the regulation of muscle mass and glucose homeostasis
title_full_unstemmed The role of skeletal muscle Akt in the regulation of muscle mass and glucose homeostasis
title_short The role of skeletal muscle Akt in the regulation of muscle mass and glucose homeostasis
title_sort role of skeletal muscle akt in the regulation of muscle mass and glucose homeostasis
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6822261/
https://www.ncbi.nlm.nih.gov/pubmed/31444134
http://dx.doi.org/10.1016/j.molmet.2019.08.001
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