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Analysis of potential TAK1/Map3k7 phosphorylation targets in hypertrophy and cachexia models of skeletal muscle
Fatemeh Nasehi1, Cameron Rylance1, Erin Schnell2
1Department of Bioengineering, Clemson University, 68 President Street, Charleston, SC 29425, USA.
Abstract:
TGFβ-activated kinase-1 (TAK1) is phosphorylated during both muscle growth and muscle wasting. To understand how this can lead to such opposite effects, we first performed multiplex kinase array of mouse embryonic stem cells with and without stimulation of TAK1 to determine its potential downstream targets. The phosphorylation of these targets was then compared in three different models: hypertrophic longissimus muscle of Texel sheep, tibialis anterior muscle of mice with cancer-induced cachexia and C2C12-derived myofibers, with and without blockade of TAK1 phosphorylation. In both Texel sheep and in cancer-induced cachexia, phosphorylation of both TAK1 and p38 was increased. Whereas p90RSK was increased in Texel sheep but not cachexia and the phosphorylation of HSP27 and total Jnk were increased in cachexia but not Texel. To understand this further, we examined the expression of these proteins in C2C12 cells as they differentiated into myotubes, with and without blockade of TAK1 phosphorylation. In C2C12 cells, decreased phosphorylation of TAK1 leads to reduced phosphorylation of p38, JNK, and HSP27 after 16 h and muscle fiber hypertrophy after 3 days. However, continuous blockade of this pathway leads to muscle fiber failure, suggesting that the timing of TAK1 activation controls the expression of context-dependent targets.
Insights
TGFβ-activated kinase-1 (TAK1) phosphorylation impacts muscle growth and wasting. Its timing controls context-dependent targets, influencing muscle fiber hypertrophy and failure.
Area of Science:
- Muscle physiology
- Cell signaling
- Biochemistry
Background:
- TGFβ-activated kinase-1 (TAK1) phosphorylation is observed in both muscle growth and wasting.
- The dual role of TAK1 in opposing muscle conditions necessitates understanding its regulatory mechanisms.
Purpose of the Study:
- To elucidate the downstream targets of TAK1 and their differential phosphorylation patterns.
- To investigate the role of TAK1 phosphorylation timing in muscle hypertrophy and atrophy.
Main Methods:
- Multiplex kinase array analysis of mouse embryonic stem cells.
- Comparative analysis of TAK1 and downstream target phosphorylation in Texel sheep, cachectic mice, and C2C12 myotubes.
- Pharmacological blockade of TAK1 phosphorylation in C2C12 cells.
Main Results:
- TAK1 and p38 phosphorylation increased in both hypertrophic sheep muscle and cachectic mouse muscle.
- Specific downstream targets like p90RSK, HSP27, and JNK showed differential phosphorylation patterns across models.
- In C2C12 cells, TAK1 blockade reduced p38, JNK, and HSP27 phosphorylation, impairing hypertrophy but leading to fiber failure with continuous blockade.
Conclusions:
- TAK1 activation is crucial for muscle hypertrophy, but its continuous blockade results in muscle fiber failure.
- The temporal regulation of TAK1 phosphorylation dictates its context-dependent downstream effects on muscle fibers.
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