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Cypher/ZASP通过肌动蛋白介导的MRTFA-SRF信号传导驱动心肌细胞成熟。

Cypher/ZASP drives cardiomyocyte maturation via actin-mediated MRTFA-SRF signalling.

作者信息

Lyu Jialan, Pan Zhicheng, Li Ruobing, Yu Hailong, Zhang Yuesheng, Wang Dongfei, Yin Xiang, He Yan, Zhao Liding, Chen Siyuan, Zhang Shan, Cheng Hongqiang, Guo Xiaogang

机构信息

Department of Cardiology, The First Affiliated Hospital, Zhejiang University School of Medicine, Hangzhou, China.

Department of Biochemistry, Zhejiang University School of Medicine, Hangzhou, China.

出版信息

Theranostics. 2024 Jul 22;14(11):4462-4480. doi: 10.7150/thno.98734. eCollection 2024.

Abstract

Cardiomyocytes (CMs) undergo dramatic structural and functional changes in postnatal maturation; however, the regulatory mechanisms remain greatly unclear. Cypher/Z-band alternatively spliced PDZ-motif protein (ZASP) is an essential sarcomere component maintaining Z-disc stability. Deletion of mouse Cypher and mutation in human ZASP result in dilated cardiomyopathy (DCM). Whether Cypher/ZASP participates in CM maturation and thereby affects cardiac function has not been answered. Immunofluorescence, transmission electron microscopy, real-time quantitative PCR, and Western blot were utilized to identify the role of Cypher in CM maturation. Subsequently, RNA sequencing and bioinformatics analysis predicted serum response factor (SRF) as the key regulator. Rescue experiments were conducted using adenovirus or adeno-associated viruses encoding SRF, both and . The molecular mechanisms were elucidated through G-actin/F-actin fractionation, nuclear-cytoplasmic extraction, actin disassembly assays, and co-sedimentation assays. Cypher deletion led to impaired sarcomere isoform switch and morphological abnormalities in mitochondria, transverse-tubules, and intercalated discs. RNA-sequencing analysis revealed significant dysregulation of crucial genes related to sarcomere assembly, mitochondrial metabolism, and electrophysiology in the absence of Cypher. Furthermore, SRF was predicted as key transcription factor mediating the transcriptional differences. Subsequent rescue experiments showed that SRF re-expression during the critical postnatal period effectively rectified CM maturation defects and notably improved cardiac function in Cypher-depleted mice. Mechanistically, Cypher deficiency resulted in the destabilization of F-actin and a notable increase in G-actin levels, thereby impeding the nuclear localisation of myocardin-related transcription factor A (MRTFA) and subsequently initiating SRF transcription. Cypher/ZASP plays a crucial role in CM maturation through actin-mediated MRTFA-SRF signalling. The linkage between CM maturation abnormalities and the late-onset of DCM is suggested, providing further insights into the pathogenesis of DCM and potential treatment strategies.

摘要

心肌细胞(CMs)在出生后成熟过程中经历了显著的结构和功能变化;然而,其调控机制仍不清楚。Cypher/Z带交替剪接的PDZ基序蛋白(ZASP)是维持Z盘稳定性的重要肌节成分。小鼠Cypher的缺失和人类ZASP的突变会导致扩张型心肌病(DCM)。Cypher/ZASP是否参与CM成熟并进而影响心脏功能尚未得到解答。利用免疫荧光、透射电子显微镜、实时定量PCR和蛋白质印迹法来确定Cypher在CM成熟中的作用。随后,RNA测序和生物信息学分析预测血清反应因子(SRF)是关键调节因子。使用编码SRF的腺病毒或腺相关病毒进行挽救实验。通过G-肌动蛋白/F-肌动蛋白分级分离、核质提取、肌动蛋白解聚实验和共沉降实验阐明分子机制。Cypher缺失导致肌节异构体转换受损以及线粒体、横小管和闰盘的形态异常。RNA测序分析显示,在没有Cypher的情况下,与肌节组装、线粒体代谢和电生理相关的关键基因存在明显失调。此外,SRF被预测为介导转录差异的关键转录因子。随后的挽救实验表明,在关键的出生后时期重新表达SRF可有效纠正Cypher缺失小鼠的CM成熟缺陷,并显著改善心脏功能。从机制上讲,Cypher缺乏导致F-肌动蛋白不稳定和G-肌动蛋白水平显著增加,从而阻碍心肌相关转录因子A(MRTFA)的核定位,随后启动SRF转录。Cypher/ZASP通过肌动蛋白介导的MRTFA-SRF信号通路在CM成熟中起关键作用。提示CM成熟异常与DCM的迟发性之间的联系,为DCM的发病机制和潜在治疗策略提供了进一步的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0787/11303069/8d28c405e3dd/thnov14p4462g001.jpg

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