转录增强子调控心脏成熟

IF 9.4 Q1 CARDIAC & CARDIOVASCULAR SYSTEMS Nature cardiovascular research Pub Date : 2024-05-30 DOI:10.1038/s44161-024-00484-2
Myo Htet, Shunyao Lei, Sheetal Bajpayi, Harshi Gangrade, Marios Arvanitis, Asimina Zoitou, Sean Murphy, Elaine Zhelan Chen, Navid Koleini, Brian Leei Lin, Chulan Kwon, Emmanouil Tampakakis
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摘要

心肌细胞成熟对于生成成人心肌细胞和应用人多能干细胞衍生的心肌细胞(hPSC-CMs)至关重要。然而,顺式调节元件水平的调节及其在心脏病中的作用仍不清楚。在CM成熟过程中,α-肌动蛋白2(ACTN2)水平会升高。在这项研究中,我们利用 hPSC 和小鼠模型研究了与临床相关的、保守的 ACTN2 增强子对 CM 成熟的影响。杂合子 ACTN2 增强子缺失会导致 CM 形态异常、功能和线粒体呼吸减弱。体外和体内的转录组分析表明,CM 成熟受到破坏,雷帕霉素哺乳动物靶标(mTOR)信号合成代谢上调,促进衰老并阻碍成熟。经证实,ACTN2 增强子缺失会诱导热休克蛋白 90A 的表达,而热休克蛋白 90A 是一种介导 mTOR 激活的伴侣蛋白。相反,通过增强子CRISPR激活(enCRISPRa)靶向ACTN2增强子可促进hPSC-CM的成熟。我们的研究揭示了转录增强子在心脏成熟和疾病中的作用,为微调基因表达以调节心肌细胞生理学提供了启示。Htet等人在人类多能干细胞和小鼠模型中鉴定并描述了一个调控心肌细胞成熟和功能的转录增强子。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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A transcriptional enhancer regulates cardiac maturation
Cardiomyocyte maturation is crucial for generating adult cardiomyocytes and the application of human pluripotent stem cell-derived cardiomyocytes (hPSC-CMs). However, regulation at the cis-regulatory element level and its role in heart disease remain unclear. Alpha-actinin 2 (ACTN2) levels increase during CM maturation. In this study, we investigated a clinically relevant, conserved ACTN2 enhancer’s effects on CM maturation using hPSC and mouse models. Heterozygous ACTN2 enhancer deletion led to abnormal CM morphology, reduced function and mitochondrial respiration. Transcriptomic analyses in vitro and in vivo showed disrupted CM maturation and upregulated anabolic mammalian target for rapamycin (mTOR) signaling, promoting senescence and hindering maturation. As confirmation, ACTN2 enhancer deletion induced heat shock protein 90A expression, a chaperone mediating mTOR activation. Conversely, targeting the ACTN2 enhancer via enhancer CRISPR activation (enCRISPRa) promoted hPSC-CM maturation. Our studies reveal the transcriptional enhancer’s role in cardiac maturation and disease, offering insights into potentially fine-tuning gene expression to modulate cardiomyocyte physiology. Htet et al. identify and characterize a transcriptional enhancer that regulates cardiomyocyte maturation and function in human pluripotent stem cell and mouse models.
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