心肌细胞间信号传导增加氧化应激,并重新编程心脏成纤维细胞的全局和磷酸化蛋白质组

Bethany Claridge, Alin Rai, Jarmon G. Lees, Haoyun Fang, Shiang Y. Lim, David W. Greening
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摘要

心肌细胞和成纤维细胞蛋白质组的病理性重编程驱动心肌纤维化的发生和发展。尽管功能失调心肌细胞的分泌组是病理性成纤维细胞重编程的重要驱动因素,但我们对下游分子参与者的理解仍然有限。在这里,我们发现由tgf β刺激的心肌细胞分泌组介导的心肌成纤维细胞激活(αSMA+)和氧化应激与它们的蛋白质组和磷蛋白质组景观的深刻重编程有关。在成纤维细胞整体蛋白质组中,与细胞外基质、蛋白质定位/代谢、KEAP1-NFE2L2途径、溶酶体、碳水化合物代谢和转录调节有关的蛋白质出现了显著的失调。磷酸化肽的激酶底物富集分析揭示了激酶(CK2, CDK2, PKC, GSK3B)在这种重塑过程中的潜在作用。我们证实,在分泌组处理的成纤维细胞中,酪蛋白激酶2 (CK2)的活性上调,CK2药物抑制剂TBB(4,5,6,7-四溴苯并三唑)显著地消除了成纤维细胞的活化和氧化应激。我们的数据提供了心肌细胞与心脏成纤维细胞串扰的分子见解,以及CK2在调节心脏成纤维细胞活化和氧化应激中的潜在作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Cardiomyocyte intercellular signalling increases oxidative stress and reprograms the global- and phospho-proteome of cardiac fibroblasts

Pathological reprogramming of cardiomyocyte and fibroblast proteome landscapes drive the initiation and progression of cardiac fibrosis. Although the secretome of dysfunctional cardiomyocytes is emerging as an important driver of pathological fibroblast reprogramming, our understanding of the downstream molecular players remains limited. Here, we show that cardiac fibroblast activation (αSMA+) and oxidative stress mediated by the secretome of TGFβ-stimulated cardiomyocytes is associated with a profound reprogramming of their proteome and phosphoproteome landscape. Within the fibroblast global proteome there was a striking dysregulation of proteins implicated in extracellular matrix, protein localisation/metabolism, KEAP1-NFE2L2 pathway, lysosomes, carbohydrate metabolism, and transcriptional regulation. Kinase substrate enrichment analysis of phosphopeptides revealed potential role of kinases (CK2, CDK2, PKC, GSK3B) during this remodelling. We verified upregulated activity of casein kinase 2 (CK2) in secretome-treated fibroblasts, and pharmacological CK2 inhibitor TBB (4,5,6,7-Tetrabromobenzotriazole) significantly abrogated fibroblast activation and oxidative stress. Our data provides molecular insights into cardiomyocyte to cardiac fibroblast crosstalk, and the potential role of CK2 in regulating cardiac fibroblast activation and oxidative stress.

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