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Mechanical strain induced phospho-proteomic signaling in uterine smooth muscle cells

机译:机械应变诱导子宫平滑肌细胞中的磷蛋白质组学信号传导

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Mechanical strain associated with the expanding uterus correlates with increased preterm birth rates. Mechanical signals result in a cascading network of protein phosphorylation events. These signals direct cellular activities and may lead to changes in contractile phenotype and calcium signaling. In this study, the complete phospho-proteome of uterine smooth muscle cells subjected to mechanical strain for 5 min was compared to un-strained controls. Statistically significant, differential phosphorylation events were annotated by Ingenuity Pathway Analysis to elucidate mechanically induced phosphorylation networks. Mechanical strain leads to the direct activation of ERK1/2, HSPB1, and MYL9, in addition to phosphorylation of PAK2, vimentin, DOCK1, PPP1R12A, and PTPN11 at previously unannotated sites. These results suggest a novel network reaction to mechanical strain and reveal proteins that participate in the activation of contractile mechanisms leading to preterm labor. (C) 2018 Elsevier Ltd. All rights reserved.
机译:与扩张子宫相关的机械菌株与增加的早产率相关。机械信号导致蛋白质磷酸化事件的级联网络。这些信号直接细胞活性,可能导致收缩表型和钙信号传导的变化。在这项研究中,与未应变的对照相比,对经受机械菌株进行5分钟进行5分钟的子宫平滑肌细胞的完整磷蛋白组。统计上显着的差异磷酸化事件通过熟智能分析来注释,以阐明机械诱导的磷酸化网络。除了PAK2,Vimentin,Dock1,PPP1R12A和PTPN11在预先未定位的位点之外,机械应变还导致ERK1 / 2,HSPB1和MYL9的直接激活。这些结果表明了一种对机械菌株的新型网络反应,并揭示参与激活收缩机制的蛋白质导致早产的劳动力。 (c)2018年elestvier有限公司保留所有权利。

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