In mammalian skeletal muscle, phosphorylation of TOMM22 by protein kinase CSNK2/CK2 controls mitophagy

Bojana Kravic1, Angelika B Harbauer2, Vanina Romanello3

  • 1a Institute of Biochemistry, Medical Faculty , Friedrich-Alexander-University of Erlangen-Nürnberg , Erlangen , Germany.

Autophagy
|November 23, 2017
PubMed

Insights

Mammalian protein kinase CSNK2/CK2 phosphorylation of TOMM22 is crucial for mitophagy, impacting muscle metabolism and integrity. Restoring TOMM22 phosphorylation normalizes mitochondrial function and muscle health.

Area of Science:

  • Mitochondrial biology
  • Cellular signaling
  • Muscle physiology

Background:

  • Tom22 is essential for mitochondrial protein import in yeast, regulated by CK2 phosphorylation.
  • The role of mammalian CK2 in TOMM complex function and mitochondrial protein import is largely unknown.
  • Investigating CSNK2/CK2's role in mammalian mitochondrial health is critical.

Purpose of the Study:

  • To investigate the function of protein kinase CSNK2/CK2 in mammalian skeletal muscle.
  • To determine if CSNK2-dependent phosphorylation of TOMM22 impacts mitochondrial function and mitophagy.
  • To elucidate the physiological role of TOMM22 phosphorylation in muscle integrity and metabolism.

Main Methods:

  • Utilized a skeletal muscle-specific Csnk2b/Ck2β-conditional knockout (cKO) mouse model.
  • Analyzed muscle strength, metabolic activity, and mitochondrial protein import in cKO mice.
  • Investigated TOMM22 phosphorylation, PINK1 accumulation, mitophagy, and oxygen consumption rates.

Main Results:

  • Skeletal muscle Csnk2b cKO mice exhibited reduced muscle strength and impaired oxidative muscle fiber metabolism, indicating mitochondrial dysfunction.
  • CSNK2-mediated phosphorylation of TOMM22 was reduced in cKO mice, affecting its binding affinity for precursor proteins.
  • PINK1 accumulated in cKO fibers, leading to increased mitophagy, which was normalized by phosphomimetic TOMM22 interventions.

Conclusions:

  • Mammalian CSNK2-dependent phosphorylation of TOMM22 acts as a critical regulator of mitophagy.
  • This phosphorylation pathway has significant physiological implications for muscle metabolism, integrity, and behavior.
  • Targeting TOMM22 phosphorylation offers a potential strategy for addressing mitochondrial dysfunction in muscle.

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