Cross-species comparison reveals that Hmga1 reduces H3K27me3 levels to promote cardiomyocyte proliferation and cardiac regeneration

IF 9.4 Q1 CARDIAC & CARDIOVASCULAR SYSTEMS Nature cardiovascular research Pub Date : 2025-01-02 DOI:10.1038/s44161-024-00588-9
Mara Bouwman, Dennis E. M. de Bakker, Hessel Honkoop, Alexandra E. Giovou, Danielle Versteeg, Arie R. Boender, Phong D. Nguyen, Merel Slotboom, Daniel Colquhoun, Marta Vigil-Garcia, Lieneke Kooijman, Rob Janssen, Ingeborg B. Hooijkaas, Marie Günthel, Kimberly J. Visser, Mischa Klerk, Lorena Zentilin, Mauro Giacca, Jan Kaslin, Gerard J. J. Boink, Eva van Rooij, Vincent M. Christoffels, Jeroen Bakkers
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Abstract

In contrast to adult mammalian hearts, the adult zebrafish heart efficiently replaces cardiomyocytes lost after injury. Here we reveal shared and species-specific injury response pathways and a correlation between Hmga1, an architectural non-histone protein, and regenerative capacity, as Hmga1 is required and sufficient to induce cardiomyocyte proliferation and required for heart regeneration. In addition, Hmga1 was shown to reactivate developmentally silenced genes, likely through modulation of H3K27me3 levels, poising them for a pro-regenerative gene program. Furthermore, AAV-mediated Hmga1 expression in injured adult mouse hearts led to controlled cardiomyocyte proliferation in the border zone and enhanced heart function, without cardiomegaly and adverse remodeling. Histone modification mapping in mouse border zone cardiomyocytes revealed a similar modulation of H3K27me3 marks, consistent with findings in zebrafish. Our study demonstrates that Hmga1 mediates chromatin remodeling and drives a regenerative program, positioning it as a promising therapeutic target to enhance cardiac regeneration after injury. Bouwman et al. identify Hmga1-mediated chromatin remodeling as the fundamental regulator of zebrafish cardiac regeneration and reveal the potential of Hmga1 to restore heart repair in mice by reactivating developmental genes, suggesting potential therapeutic applications.

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跨物种比较表明,Hmga1降低H3K27me3水平,促进心肌细胞增殖和心脏再生。
与成年哺乳动物的心脏相比,成年斑马鱼的心脏可以有效地替代受伤后丢失的心肌细胞。在这里,我们揭示了共有的和物种特异性的损伤反应途径,以及Hmga1(一种建筑非组蛋白)与再生能力之间的相关性,因为Hmga1是诱导心肌细胞增殖和心脏再生所必需的。此外,Hmga1被证明可以通过调节H3K27me3水平重新激活发育沉默的基因,为促进再生的基因程序做好准备。此外,aav介导的Hmga1表达在损伤的成年小鼠心脏中导致边界区心肌细胞增殖受到控制,心功能增强,没有心脏扩大和不良重构。小鼠心肌细胞边界区组蛋白修饰图谱显示了H3K27me3标记的类似调节,与斑马鱼的发现一致。我们的研究表明,Hmga1介导染色质重塑并驱动再生程序,将其定位为增强损伤后心脏再生的有希望的治疗靶点。
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