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.

Biology Open
|August 30, 2024
PubMed

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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