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  3. Molecular networks in skeletal muscle plasticity.
 

Molecular networks in skeletal muscle plasticity.

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BORIS DOI
10.7892/boris.95136
Date of Publication
January 2016
Publication Type
Article
Division/Institute

Institut für Anatomie...

Contributor
Hoppeler, Hans-Heinrich
Institut für Anatomie
Subject(s)

600 - Technology::610...

Series
Journal of Experimental Biology
ISSN or ISBN (if monograph)
0022-0949
Publisher
Company of Biologists
Language
English
Publisher DOI
10.1242/jeb.128207
PubMed ID
26792332
Uncontrolled Keywords

Capillary

Endurance

Mitochondria

Molecular

Myofibrils

Pathways

Skeletal muscle

Strength

Description
The skeletal muscle phenotype is subject to considerable malleability depending on use as well as internal and external cues. In humans, low-load endurance-type exercise leads to qualitative changes of muscle tissue characterized by an increase in structures supporting oxygen delivery and consumption, such as capillaries and mitochondria. High-load strength-type exercise leads to growth of muscle fibers dominated by an increase in contractile proteins. In endurance exercise, stress-induced signaling leads to transcriptional upregulation of genes, with Ca(2+) signaling and the energy status of the muscle cells sensed through AMPK being major input determinants. Several interrelated signaling pathways converge on the transcriptional co-activator PGC-1α, perceived to be the coordinator of much of the transcriptional and post-transcriptional processes. Strength training is dominated by a translational upregulation controlled by mTORC1. mTORC1 is mainly regulated by an insulin- and/or growth-factor-dependent signaling cascade as well as mechanical and nutritional cues. Muscle growth is further supported by DNA recruitment through activation and incorporation of satellite cells. In addition, there are several negative regulators of muscle mass. We currently have a good descriptive understanding of the molecular mechanisms controlling the muscle phenotype. The topology of signaling networks seems highly conserved among species, with the signaling outcome being dependent on the particular way individual species make use of the options offered by the multi-nodal networks. As a consequence, muscle structural and functional modifications can be achieved by an almost unlimited combination of inputs and downstream signaling events.
Handle
https://boris-portal.unibe.ch/handle/20.500.12422/149621
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