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Nrg1 调控心室发育中心肌细胞的迁移和细胞周期。

Nrg1 Regulates Cardiomyocyte Migration and Cell Cycle in Ventricular Development.

机构信息

Intercellular Signalling in Cardiovascular Development & Disease Laboratory, Centro Nacional de Investigaciones Cardiovasculares Carlos III (CNIC), Madrid, Spain (J.G.-B., P.G.-A., B.P., D.M., J.L.d.l.P.).

CIBER de Enfermedades Cardiovasculares, Madrid, Spain (J.G.-B., P.G.-A., B.P., D.M., J.L.d.l.P.).

出版信息

Circ Res. 2023 Nov 10;133(11):927-943. doi: 10.1161/CIRCRESAHA.123.323321. Epub 2023 Oct 17.

Abstract

BACKGROUND

Cardiac ventricles provide the contractile force of the beating heart throughout life. How the primitive endocardium-layered myocardial projections called trabeculae form and mature into the adult ventricles is of great interest for biology and regenerative medicine. Trabeculation is dependent on the signaling protein Nrg1 (neuregulin-1). However, the mechanism of action of Nrg1 and its role in ventricular wall maturation are poorly understood.

METHODS

We investigated the functions and downstream mechanisms of Nrg1 signaling during ventricular chamber development using confocal imaging, transcriptomics, and biochemical approaches in mice with cardiac-specific inactivation or overexpression of Nrg1.

RESULTS

Analysis of cardiac-specific mutant mice showed that the transcriptional program underlying cardiomyocyte-oriented cell division and trabeculae formation depends on endocardial Nrg1 to myocardial ErbB2 (erb-b2 receptor tyrosine kinase 2) signaling and phospho-Erk (phosphorylated extracellular signal-regulated kinase; pErk) activation. Early endothelial loss of Nrg1 and reduced pErk activation diminished cardiomyocyte Pard3 and Crumbs2 (Crumbs Cell Polarity Complex Component 2) protein and altered cytoskeletal gene expression and organization. These alterations are associated with abnormal gene expression related to mitotic spindle organization and a shift in cardiomyocyte division orientation. Nrg1 is crucial for trabecular growth and ventricular wall thickening by regulating an epithelial-to-mesenchymal transition-like process in cardiomyocytes involving migration, adhesion, cytoskeletal actin turnover, and timely progression through the cell cycle G2/M phase. Ectopic cardiac Nrg1 overexpression and high pErk signaling caused S-phase arrest, sustained high epithelial-to-mesenchymal transition-like gene expression, and prolonged trabeculation, blocking compact myocardium maturation. Myocardial trabecular patterning alterations resulting from above- or below-normal Nrg1-dependent pErk activation were concomitant with sarcomere actin cytoskeleton disorganization. The Nrg1 loss- and gain-of-function transcriptomes were enriched for Yap1 (yes-associated protein-1) gene signatures, identifying Yap1 as a potential downstream effector. Furthermore, biochemical and imaging data reveal that Nrg1 influences pErk activation and Yap1 nuclear-cytoplasmic distribution during trabeculation.

CONCLUSIONS

These data establish the Nrg1-ErbB2/ErbB4-Erk axis as a crucial regulator of cardiomyocyte cell cycle progression and migration during ventricular development.

摘要

背景

心脏心室为心脏跳动提供收缩力。原始心内膜层状心肌突起,即小梁,如何形成并成熟为成人心室,这对生物学和再生医学来说非常重要。小梁形成依赖于信号蛋白 Nrg1(神经调节蛋白 1)。然而,Nrg1 的作用机制及其在心室壁成熟中的作用尚不清楚。

方法

我们使用共聚焦成像、转录组学和生化方法,在心脏特异性敲除或过表达 Nrg1 的小鼠中,研究了 Nrg1 信号在心室腔发育过程中的功能和下游机制。

结果

心脏特异性突变小鼠的分析表明,依赖于心内膜 Nrg1 向心肌 ErbB2(表皮生长因子受体酪氨酸激酶 2)信号和磷酸化 Erk(磷酸化细胞外信号调节激酶;pErk)激活的,心肌细胞定向细胞分裂和小梁形成的转录程序。早期内皮 Nrg1 的丢失和 pErk 激活的减少降低了心肌细胞 Pard3 和 Crumbs2(Crumbs 细胞极性复合物成分 2)蛋白,并改变了细胞骨架基因的表达和组织。这些改变与有丝分裂纺锤体组织异常相关的基因表达以及心肌细胞分裂方向的改变有关。Nrg1 通过调节涉及迁移、粘附、细胞骨架肌动蛋白周转和细胞周期 G2/M 期的适时进展的心肌细胞上皮-间充质转化样过程,对小梁生长和心室壁增厚至关重要。心脏 Nrg1 的异位过表达和高 pErk 信号导致 S 期停滞、持续的高上皮-间充质转化样基因表达和延长的小梁形成,从而阻止了致密心肌的成熟。由于 Nrg1 依赖性 pErk 激活过高或过低引起的心肌小梁模式改变与肌节肌动蛋白细胞骨架的紊乱同时发生。Nrg1 缺失和功能获得的转录组富含 Yap1(Yes 相关蛋白 1)基因特征,确定 yap1 为潜在的下游效应因子。此外,生化和成像数据表明,Nrg1 在小梁形成过程中影响 pErk 激活和 yap1 的核质分布。

结论

这些数据确立了 Nrg1-ErbB2/ErbB4-Erk 轴作为心脏心室发育过程中心肌细胞细胞周期进展和迁移的关键调节剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2282/10631509/b7944fba3050/res-133-927-g001.jpg

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