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

机译:机械应变在子宫平滑肌细胞中诱导磷酸化蛋白质组信号转导

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摘要

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, 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.
机译:与子宫扩张相关的机械性劳损与早产率增加相关。机械信号导致蛋白质磷酸化事件的级联网络。这些信号指导细胞的活动,并可能导致收缩表型和钙信号的变化。在这项研究中,将经过5分钟机械应变的子宫平滑肌细胞的完整磷酸化蛋白质组与未应变的对照组进行了比较。具有统计意义的差异磷酸化事件通过“独创性途径分析”进行注释,以阐明机械诱导的磷酸化网络。除了先前未注释的位置上的PAK2,波形蛋白,DOCK1,PPP1R12A和PTPN11的磷酸化外,机械应变还导致ERK1 / 2,HSPB1,MYL9的直接激活。这些结果表明对机械应变的新型网络反应,并揭示了参与导致早产的收缩机制激活的蛋白质。

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