Integrated proteomics identifies troponin I isoform switch as a regulator of a sarcomere-metabolism axis during cardiac regeneration

肌节 生物 下调和上调 细胞生物学 基因亚型 转基因小鼠 肌钙蛋白I 再生(生物学) 蛋白质组学 糖酵解 转基因 内科学 心肌细胞 内分泌学 生物化学 心肌梗塞 医学 新陈代谢 基因
作者
Timothy J. Aballo,Jiyoung Bae,Wyatt G. Paltzer,Emily A. Chapman,Andrew J. Perciaccante,Melissa R. Pergande,Rebecca J. Salamon,Dakota J. Nuttall,Morgan W Mann,Ying Ge,Ahmed I. Mahmoud
出处
期刊:Cardiovascular Research [Oxford University Press]
标识
DOI:10.1093/cvr/cvaf069
摘要

Abstract Aims Adult mammalian cardiomyocytes have limited regenerative potential, and after myocardial infarction (MI), injured cardiac tissue is replaced with fibrotic scar. In contrast, the neonatal mouse heart possesses a regenerative capacity governed by cardiomyocyte proliferation; however, a metabolic switch from glycolysis to fatty acid oxidation during postnatal development results in loss of this regenerative capacity. Interestingly, a sarcomere isoform switch also takes place during postnatal development where slow skeletal troponin I (ssTnI) is replaced with cardiac troponin I (cTnI). It remains unclear whether there is an interplay between sarcomere isoform switching, cardiac metabolism, and regeneration. Methods and results In this study, we employ proteomics, metabolomics and lipidomics, transgenic mice, MI models, and histological analysis to delineate the molecular and sarcomeric transitions that occur during cardiac maturation and regeneration. First, we utilize integrated quantitative bottom-up and top-down proteomics to comprehensively define the proteomic and sarcomeric landscape during postnatal heart maturation. By employing a cardiomyocyte-specific ssTnI transgenic mouse model, we discovered that ssTnI overexpression increased cardiomyocyte proliferation and the cardiac regenerative capacity of the postnatal heart following MI compared to control mice by histological analysis. Our global proteomic analysis of ssTnI transgenic mice following MI reveals that ssTnI overexpression induces a significant shift in the cardiac proteomic landscape. Additionally, our lipidomic analysis demonstrated a significant upregulation of lipid species in the transgenic mice. This proteomic shift is characterized by an upregulation of key proteins involved in glycolytic metabolism. Conclusions Collectively, our data suggest that the postnatal TnI isoform switch may play a role in the metabolic shift from glycolysis to fatty acid oxidation during postnatal maturation. This underscores the significance of a sarcomere-metabolism axis during cardiomyocyte proliferation and heart regeneration.

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