AI Article Synopsis

  • AARS2 is a mitochondrial tRNA synthetase that plays a key role in charging tRNA-Ala with alanine and is linked to infantile cardiomyopathy when mutated.
  • The study discovered that the protein PCBP1 interacts with the Aars2 transcript, affecting its alternative splicing and crucial for Aars2's expression, influencing heart development.
  • Mice with cardiomyocyte-specific deletion of Pcbp1 exhibited heart defects similar to human congenital heart issues, and both Pcbp1 and Aars2 mutations disrupted the oxidative phosphorylation pathway, highlighting their roles in metabolic disruptions leading to congenital heart defects.

Article Abstract

Alanyl-transfer RNA synthetase 2 (AARS2) is a nuclear encoded mitochondrial tRNA synthetase that is responsible for charging of tRNA-Ala with alanine during mitochondrial translation. Homozygous or compound heterozygous mutations in the Aars2 gene, including those affecting its splicing, are linked to infantile cardiomyopathy in humans. However, how Aars2 regulates heart development, and the underlying molecular mechanism of heart disease remains unknown. Here, we found that poly(rC) binding protein 1 (PCBP1) interacts with the Aars2 transcript to mediate its alternative splicing and is critical for the expression and function of Aars2. Cardiomyocyte-specific deletion of Pcbp1 in mice resulted in defects in heart development that are reminiscent of human congenital cardiac defects, including noncompaction cardiomyopathy and a disruption of the cardiomyocyte maturation trajectory. Loss of Pcbp1 led to an aberrant alternative splicing and a premature termination of Aars2 in cardiomyocytes. Additionally, Aars2 mutant mice with exon-16 skipping recapitulated heart developmental defects observed in Pcbp1 mutant mice. Mechanistically, we found dysregulated gene and protein expression of the oxidative phosphorylation pathway in both Pcbp1 and Aars2 mutant hearts; these date provide further evidence that the infantile hypertrophic cardiomyopathy associated with the disorder oxidative phosphorylation defect type 8 (COXPD8) is mediated by Aars2. Our study therefore identifies Pcbp1 and Aars2 as critical regulators of heart development and provides important molecular insights into the role of disruptions in metabolism on congenital heart defects.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10245752PMC
http://dx.doi.org/10.1101/2023.05.18.540420DOI Listing

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