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Drp1 regulates transcription of ribosomal protein genes in embryonic hearts

  • Qiancong Zhao
    ,
  • ,
  • Jin Lu
    ,
  • Danitra J. Parker
    ,
  • Huiying Wu
    ,
  • Qianchuang Sun
*Corresponding author for this work
  • University of Alabama at Birmingham
    ,
  • Jilin University
    ,
  • Johns Hopkins University
Scholary Output:
Contribution to journal
Article
Peer-review

Open access

Abstract

Mitochondrial dysfunction causes severe congenital cardiac abnormalities and prenatal/neonatal lethality. The lack of sufficient knowledge regarding how mitochondrial abnormalities affect cardiogenesis poses a major barrier for the development of clinical applications that target mitochondrial deficiency-induced inborn cardiomyopathies. Mitochondrial morphology, which is regulated by fission and fusion, plays a key role in determining mitochondrial activity. Dnm1l encodes a dynamin-related GTPase, Drp1, which is required for mitochondrial fission. To investigate the role of Drp1 in cardiogenesis during the embryonic metabolic shift period, we specifically inactivated Dnm1l in second heart fieldderived structures. Mutant cardiomyocytes in the right ventricle (RV) displayed severe defects in mitochondrial morphology, ultrastructure and activity. These defects caused increased cell death, decreased cell survival, disorganized cardiomyocytes and embryonic lethality. By characterizing this model, we reveal an AMPK-SIRT7- GABPB axis that relays the reduced cellular energy level to decrease transcription of ribosomal protein genes in cardiomyocytes. We therefore provide the first genetic evidence in mouse that Drp1 is essential for RV development. Our research provides further mechanistic insight into how mitochondrial dysfunction causes pathological molecular and cellular alterations during cardiogenesis.

Publication Information

Output type

Scholary Output:
Contribution to journal
Article
Peer-review

Original language

English (US)

Article number

jcs258956

Journal (Volume, Issue Number)

Journal of Cell Science (Volume 135, Issue 4)

Publication milestones

  • Published - 2022

Publication status

Published - 2022

ISSN

0021-9533

Publication IDs

  • Scopus: 85125000678
  • PubMed: 35099001

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3
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1
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Funding Details

for suggestions on measuring cardiomyocyte orientation; Dr S. Kubalak (Medical University of South Carolina) for providing the MLC2A antibody; and Dr S. H. Litovsky (UAB) for helping with analysis of TEM images. We thank the UAB Genomics Core Facility for performing deep-Seq and Sanger sequencing; E. Phillips and M. Foley at the UAB High Resolution Imaging Facility for performing TEM studies; and K. Smith-Johnston and M. J. Sammy at the UAB Bioanalytical Redox Biology (BARB) Core for performing high-resolution respirometry. We thank the members of Dr Jiao’s lab for their suggestions that helped support this project. The UAB BARB Core is supported by the National Institute of Diabetes and Digestive and Kidney Diseases [DK P30DK079626, DK056336], UAB Center for Exercise Medicine (UCEM), Comprehensive Diabetes Center (UCDC), Center for Free Radical Biology (CFRB) and Comprehensive Neuroscience Center (UCNC). This work was supported by a grant from the National Institutes of Health (R01HL095783) and a University of Alabama at Birmingham internal AMC21 grant awarded to K.J. Deposited in PMC for release after 12 months.
FunderFunding number
NIGMS
R35GM144103