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Updated: Feb 18, 2026

Measurement of Protein Import Capacity of Skeletal Muscle Mitochondria
Published on: January 7, 2022
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.
Abstract:
In yeast, Tom22, the central component of the TOMM (translocase of outer mitochondrial membrane) receptor complex, is responsible for the recognition and translocation of synthesized mitochondrial precursor proteins, and its protein kinase CK2-dependent phosphorylation is mandatory for TOMM complex biogenesis and proper mitochondrial protein import. In mammals, the biological function of protein kinase CSNK2/CK2 remains vastly elusive and it is unknown whether CSNK2-dependent phosphorylation of TOMM protein subunits has a similar role as that in yeast. To address this issue, we used a skeletal muscle-specific Csnk2b/Ck2β-conditional knockout (cKO) mouse model. Phenotypically, these skeletal muscle Csnk2b cKO mice showed reduced muscle strength and abnormal metabolic activity of mainly oxidative muscle fibers, which point towards mitochondrial dysfunction. Enzymatically, active muscle lysates from skeletal muscle Csnk2b cKO mice phosphorylate murine TOMM22, the mammalian ortholog of yeast Tom22, to a lower extent than lysates prepared from controls. Mechanistically, CSNK2-mediated phosphorylation of TOMM22 changes its binding affinity for mitochondrial precursor proteins. However, in contrast to yeast, mitochondrial protein import seems not to be affected in vitro using mitochondria isolated from muscles of skeletal muscle Csnk2b cKO mice. PINK1, a mitochondrial health sensor that undergoes constitutive import under physiological conditions, accumulates within skeletal muscle Csnk2b cKO fibers and labels abnormal mitochondria for removal by mitophagy as demonstrated by the appearance of mitochondria-containing autophagosomes through electron microscopy. Mitophagy can be normalized by either introduction of a phosphomimetic TOMM22 mutant in cultured myotubes, or by in vivo electroporation of phosphomimetic Tomm22 into muscles of mice. Importantly, transfection of the phosphomimetic Tomm22 mutant in muscle cells with ablated Csnk2b restored their oxygen consumption rate comparable to wild-type levels. In sum, our data show that mammalian CSNK2-dependent phosphorylation of TOMM22 is a critical switch for mitophagy and reveal CSNK2-dependent physiological implications on metabolism, muscle integrity and behavior.
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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