论文标题

通过RHO和YAP的细胞机械转导的时空模型

Spatiotemporal model of cellular mechanotransduction via Rho and YAP

论文作者

Novev, Javor K., Heltberg, Mathias L., Jensen, Mogens H., Doostmohammadi, Amin

论文摘要

细胞如何感知和对机械刺激的反应仍然是一个悬而未决的问题。最近的进步已经确定了核和细胞质之间与YES相关蛋白(YAP)的易位,是传感机械力和调节机械转导的中心机制。我们制定了机械转导信号通路的时空模型,其中包括通过GTPases的Rho家族将YAP与细胞力生成机械耦合。考虑到单个RHO蛋白(GTP/GDP结合)和YAP(非磷酸化/磷酸化)的活性和非活性形式,我们研究了由于活性RHO和YAP通过其核定位而引起的细胞极化之间的串扰。 对于固定的机械刺激,我们的模型可以预测固定的核能质量YAP比率与不同粘合细胞区域的实验数据一致。我们进一步预测YAP核与胞质比的阻尼甚至持续的振荡,通过考虑最近报道的阳性和负YAP-RHO反馈。将框架扩展到模拟环状拉伸和压缩的时变机械刺激,我们表明YAP核与胞质比的时间依赖性遵循环状机械刺激的时间依赖性。该模型提出了理解时空YAP机械转移的第一个框架之一,提供了可能的YAP定位动力学的几个预测,并为实验和理论研究提出了新的方向。

How cells sense and respond to mechanical stimuli remains an open question. Recent advances have identified the translocation of Yes-associated protein (YAP) between nucleus and cytoplasm as a central mechanism for sensing mechanical forces and regulating mechanotransduction. We formulate a spatiotemporal model of the mechanotransduction signalling pathway that includes coupling of YAP with the cell force-generation machinery through the Rho family of GTPases. Considering the active and inactive forms of a single Rho protein (GTP/GDP-bound) and of YAP (non-phosphorylated/phosphorylated), we study the cross-talk between cell polarization due to active Rho and YAP activation through its nuclear localization. For fixed mechanical stimuli, our model predicts stationary nuclear-to-cytoplasmic YAP ratios consistent with experimental data at varying adhesive cell area. We further predict damped and even sustained oscillations in the YAP nuclear-to-cytoplasmic ratio by accounting for recently reported positive and negative YAP-Rho feedback. Extending the framework to time-varying mechanical stimuli that simulate cyclic stretching and compression, we show that the YAP nuclear-to-cytoplasmic ratio's time dependence follows that of the cyclic mechanical stimulus. The model presents one of the first frameworks for understanding spatiotemporal YAP mechanotransduction, providing several predictions of possible YAP localization dynamics, and suggesting new directions for experimental and theoretical studies.

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