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Published on: May 16, 2021
Activin A induces skeletal muscle catabolism via p38β mitogen-activated protein kinase
Hui Ding1,2, Guohua Zhang1, Ka Wai Thomas Sin1
1Department of Integrative Biology and Pharmacology, University of Texas Health Science Center, Houston, TX, 77030, USA.
Background:
Activation of type IIB activin receptor (ActRIIB) in skeletal muscle leads to muscle atrophy because of increased muscle protein degradation. However, the intracellular signalling mechanism that mediates ActRIIB-activated muscle catabolism is poorly defined.
Methods:
We investigated the role of p38β mitogen-activated protein kinases (MAPK) in mediating ActRIIB ligand activin A-activated muscle catabolic pathways in C2C12 myotubes and in mice with perturbation of this kinase pharmacologically and genetically.
Results:
Treatment of C2C12 myotubes with activin A or myostatin rapidly activated p38 MAPK and its effector C/EBPβ within 1 h. Paradoxically, Akt was activated at the same time through a p38 MAPK-independent mechanism. These events were followed by up-regulation of ubiquitin ligases atrogin1 (MAFbx) and UBR2 (E3α-II), as well as increase in LC3-II, a marker of autophagosome formation, leading to myofibrillar protein loss and myotube atrophy. The catabolic effects of activin A were abolished by p38α/β MAPK inhibitor SB202190. Using small interfering RNA-mediated gene knockdown, we found that the catabolic activity of activin A was dependent on p38β MAPK specifically. Importantly, systemic administration of activin A to mice similarly activated the catabolic pathways in vivo, and this effect was blocked by SB202190. Further, activin A failed to activate the catabolic pathways in mice with muscle-specific knockout of p38β MAPK. Interestingly, activin A up-regulated MuRF1 in a p38 MAPK-independent manner, and MuRF1 did not appear responsible for activin A-induced myosin heavy chain loss and muscle atrophy.
Conclusions:
ActRIIB-mediated activation of muscle catabolism is dependent on p38β MAPK-activated signalling.
Insights
Type IIB activin receptor (ActRIIB) activation causes muscle atrophy via increased protein breakdown. This study demonstrates that p38β mitogen-activated protein kinase (MAPK) is essential for ActRIIB-induced muscle catabolism.
Area of Science:
- Muscle physiology and molecular biology
- Cell signaling pathways
- Protein degradation mechanisms
Background:
- Activation of ActRIIB in skeletal muscle promotes muscle atrophy by increasing protein degradation.
- The precise intracellular signaling pathways mediating ActRIIB-induced muscle catabolism remain incompletely understood.
Purpose of the Study:
- To elucidate the role of p38β MAPK in the signaling cascade initiated by ActRIIB ligand activin A.
- To investigate the contribution of p38β MAPK to muscle catabolic pathways in both cellular and in vivo models.
Main Methods:
- Utilized C2C12 myotubes and mouse models to study activin A-induced muscle catabolism.
- Employed pharmacological inhibition (SB202190) and genetic knockdown (siRNA, muscle-specific knockout) of p38α/β MAPK.
- Assessed the expression of key proteins involved in muscle protein degradation, including atrogin1, UBR2, and LC3-II.
Main Results:
- Activin A rapidly activated p38 MAPK and C/EBPβ in myotubes, leading to upregulation of atrogin1, UBR2, and LC3-II, ultimately causing myotube atrophy.
- The catabolic effects of activin A were abolished by p38α/β MAPK inhibition and were specifically dependent on p38β MAPK.
- In vivo studies confirmed that activin A-induced muscle catabolism in mice was blocked by SB202190 and absent in p38β MAPK knockout mice.
Conclusions:
- ActRIIB-mediated muscle catabolism is critically dependent on signaling pathways activated by p38β MAPK.
- p38β MAPK is a key mediator of activin A-induced muscle wasting.
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