MBNL1 regulates programmed postnatal switching between regenerative and differentiated cardiac states

Author:

Bailey Logan R.J.ORCID,Bugg DarrianORCID,Reichardt Isabella M.,Ortaç C. Dessirée,Gunaje Jagadambika,Johnson Richard,MacCoss Michael J.ORCID,Sakamoto TomoyaORCID,Kelly Daniel P.ORCID,Regnier MichaelORCID,Davis Jennifer M.ORCID

Abstract

AbstractDiscovering determinants of cardiomyocyte maturity and the maintenance of differentiated states is critical to both understanding development and potentially reawakening endogenous regenerative programs in adult mammalian hearts as a therapeutic strategy. Here, the RNA binding protein Muscleblind-like 1 (MBNL1) was identified as a critical regulator of cardiomyocyte differentiated states and their regenerative potential through transcriptome-wide control of RNA stability. Targeted MBNL1 overexpression early in development prematurely transitioned cardiomyocytes to hypertrophic growth, hypoplasia, and dysfunction, whereas loss of MBNL1 function increased cardiomyocyte cell cycle entry and proliferation through altered cell cycle inhibitor transcript stability. Moreover, MBNL1-dependent stabilization of the estrogen-related receptor signaling axis was essential for maintaining cardiomyocyte maturity. In accordance with these data, modulating MBNL1 dose tuned the temporal window of cardiac regeneration, where enhanced MBNL1 activity arrested myocyte proliferation, and MBNL1 deletion promoted regenerative states with prolonged myocyte proliferation. Collectively these data suggest MBNL1 acts as a transcriptome-wide switch between regenerative and mature myocyte states postnatally and throughout adulthood.

Publisher

Cold Spring Harbor Laboratory

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. RNA binding proteins as mediators of pathological cardiac remodeling;Frontiers in Cell and Developmental Biology;2024-05-16

2. Cardiac maturation;Journal of Molecular and Cellular Cardiology;2024-02

3. RNA-Binding Proteins as Critical Post-Transcriptional Regulators of Cardiac Regeneration;International Journal of Molecular Sciences;2023-07-26

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