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直接心脏重编程的转化图谱揭示了Ybx1在抑制心脏命运获得中的作用。

Translational landscape of direct cardiac reprogramming reveals a role of Ybx1 in repressing cardiac fate acquisition.

作者信息

Xie Yifang, Wang Qiaozi, Yang Yuchen, Near David, Wang Haofei, Colon Marazzano, Nguyen Christopher, Slattery Conor, Keepers Benjamin, Farber Gregory, Wang Tzu-Wen, Lee Sung-Ho, Shih Yen-Yu Ian, Liu Jiandong, Qian Li

机构信息

McAllister Heart Institute, University of North Carolina, Chapel Hill, NC 27599.

EIRNA Bio Ltd, BioInnovation Centre, Food Science and Technology Building, College Road, Cork, Ireland, T12 DP07.

出版信息

Nat Cardiovasc Res. 2023 Nov;2(11):1060-1077. doi: 10.1038/s44161-023-00344-5. Epub 2023 Oct 16.

Abstract

Direct reprogramming of fibroblasts into induced cardiomyocytes holds great promise for heart regeneration. Although considerable progress has been made in understanding the transcriptional and epigenetic mechanisms of iCM reprogramming, its translational regulation remains largely unexplored. Here, we characterized the translational landscape of iCM reprogramming through integrative ribosome and transcriptomic profiling, and found extensive translatome repatterning during this process. Loss of function screening for translational regulators uncovered Ybx1 as a critical barrier to iCM induction. In a mouse model of myocardial infarction, removing enhanced in vivo reprogramming, resulting in improved heart function and reduced scar size. Mechanistically, depletion de-repressed the translation of its direct targets and , both of which mediated the effect of depletion on iCM generation. Furthermore, removal of Ybx1 allowed single factor Tbx5-mediated iCM conversion. In summary, this study revealed a new layer of regulatory mechanism that controls cardiac reprogramming at the translational level.

摘要

将成纤维细胞直接重编程为诱导性心肌细胞对心脏再生具有巨大潜力。尽管在理解诱导性心肌细胞重编程的转录和表观遗传机制方面已经取得了相当大的进展,但其翻译调控在很大程度上仍未得到探索。在这里,我们通过整合核糖体和转录组分析来表征诱导性心肌细胞重编程的翻译图谱,并发现在此过程中存在广泛的翻译组重排。对翻译调节因子进行功能缺失筛选发现Ybx1是诱导性心肌细胞诱导的关键障碍。在心肌梗死小鼠模型中,去除Ybx1可增强体内重编程,从而改善心脏功能并减小疤痕大小。从机制上讲,Ybx1的缺失解除了对其直接靶标Eomes和Tbx20翻译的抑制,这两者都介导了Ybx1缺失对诱导性心肌细胞生成的影响。此外,去除Ybx1可实现单因子Tbx5介导的诱导性心肌细胞转化。总之,本研究揭示了在翻译水平上控制心脏重编程的新调控机制层。

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