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GRAF1 Acts as a Downstream Mediator of Parkin to Regulate Mitophagy in Cardiomyocytes.

Publication ,  Journal Article
Zhu, Q; Combs, ME; Bowles, DE; Gross, RT; Mendiola Pla, M; Mack, CP; Taylor, JM
Published in: Cells
March 4, 2024

Cardiomyocytes rely on proper mitochondrial homeostasis to maintain contractility and achieve optimal cardiac performance. Mitochondrial homeostasis is controlled by mitochondrial fission, fusion, and mitochondrial autophagy (mitophagy). Mitophagy plays a particularly important role in promoting the degradation of dysfunctional mitochondria in terminally differentiated cells. However, the precise mechanisms by which this is achieved in cardiomyocytes remain opaque. Our study identifies GRAF1 as an important mediator in PINK1-Parkin pathway-dependent mitophagy. Depletion of GRAF1 (Arhgap26) in cardiomyocytes results in actin remodeling defects, suboptimal mitochondria clustering, and clearance. Mechanistically, GRAF1 promotes Parkin-LC3 complex formation and directs autophagosomes to damaged mitochondria. Herein, we found that these functions are regulated, at least in part, by the direct binding of GRAF1 to phosphoinositides (PI(3)P, PI(4)P, and PI(5)P) on autophagosomes. In addition, PINK1-dependent phosphorylation of Parkin promotes Parkin-GRAF1-LC3 complex formation, and PINK1-dependent phosphorylation of GRAF1 (on S668 and S671) facilitates the clustering and clearance of mitochondria. Herein, we developed new phosphor-specific antibodies to these sites and showed that these post-translational modifications are differentially modified in human hypertrophic cardiomyopathy and dilated cardiomyopathy. Furthermore, our metabolic studies using serum collected from isoproterenol-treated WT and GRAF1CKO mice revealed defects in mitophagy-dependent cardiomyocyte fuel flexibility that have widespread impacts on systemic metabolism. In summary, our study reveals that GRAF1 co-regulates actin and membrane dynamics to promote cardiomyocyte mitophagy and that dysregulation of GRAF1 post-translational modifications may underlie cardiac disease pathogenesis.

Duke Scholars

Published In

Cells

DOI

EISSN

2073-4409

Publication Date

March 4, 2024

Volume

13

Issue

5

Location

Switzerland

Related Subject Headings

  • Ubiquitin-Protein Ligases
  • Protein Kinases
  • Phosphatidylinositol Phosphates
  • Myocytes, Cardiac
  • Mitophagy
  • Mice
  • Humans
  • GTPase-Activating Proteins
  • Animals
  • Actins
 

Citation

APA
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ICMJE
MLA
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Zhu, Q., Combs, M. E., Bowles, D. E., Gross, R. T., Mendiola Pla, M., Mack, C. P., & Taylor, J. M. (2024). GRAF1 Acts as a Downstream Mediator of Parkin to Regulate Mitophagy in Cardiomyocytes. Cells, 13(5). https://doi.org/10.3390/cells13050448
Zhu, Qiang, Matthew E. Combs, Dawn E. Bowles, Ryan T. Gross, Michelle Mendiola Pla, Christopher P. Mack, and Joan M. Taylor. “GRAF1 Acts as a Downstream Mediator of Parkin to Regulate Mitophagy in Cardiomyocytes.Cells 13, no. 5 (March 4, 2024). https://doi.org/10.3390/cells13050448.
Zhu Q, Combs ME, Bowles DE, Gross RT, Mendiola Pla M, Mack CP, et al. GRAF1 Acts as a Downstream Mediator of Parkin to Regulate Mitophagy in Cardiomyocytes. Cells. 2024 Mar 4;13(5).
Zhu, Qiang, et al. “GRAF1 Acts as a Downstream Mediator of Parkin to Regulate Mitophagy in Cardiomyocytes.Cells, vol. 13, no. 5, Mar. 2024. Pubmed, doi:10.3390/cells13050448.
Zhu Q, Combs ME, Bowles DE, Gross RT, Mendiola Pla M, Mack CP, Taylor JM. GRAF1 Acts as a Downstream Mediator of Parkin to Regulate Mitophagy in Cardiomyocytes. Cells. 2024 Mar 4;13(5).

Published In

Cells

DOI

EISSN

2073-4409

Publication Date

March 4, 2024

Volume

13

Issue

5

Location

Switzerland

Related Subject Headings

  • Ubiquitin-Protein Ligases
  • Protein Kinases
  • Phosphatidylinositol Phosphates
  • Myocytes, Cardiac
  • Mitophagy
  • Mice
  • Humans
  • GTPase-Activating Proteins
  • Animals
  • Actins