论文标题
逆BLEB生长的模型解释了细胞机械加热过程中的巨型液泡动力学
Model of inverse bleb growth explains giant vacuole dynamics during cell mechanoadaptation
论文作者
论文摘要
细胞可以通过动态改变其形状来承受敌对的环境条件,例如压力梯度和/或剪切应力等大型机械力。这种条件在schlemm的眼管中实现,其中覆盖内部血管壁的内皮细胞受水幽默流出施加的流体动力压力梯度。这些细胞形成其基础膜的充满流体的动态外孔,称为\ textit {巨型液泡}。巨型液泡的倒数是让人联想到细胞孔,是由局部暂时暂时破坏收缩肌球蛋白皮质引起的细胞外细胞质突起。在发芽血管生成期间,首先在实验中观察到逆流动,但其潜在的物理机制知之甚少。在这里,我们将巨型液泡形成确定为逆泄漏,并制定了该过程的生物物理模型。我们的模型阐明了细胞膜的机械性能如何影响巨型液泡的形态和动力学,并预测了类似于Ostwald成熟在多个令人垂涎的液泡之间的变形。我们的结果与灌注实验中巨型液泡形成的观察结果定性一致。我们的模型不仅阐明了驱动逆溢出和巨型液泡动力学的生物物理机制,而且还确定了与许多实验环境相关的压力负载的细胞反应的通用特征。
Cells can withstand hostile environmental conditions manifest as large mechanical forces such as pressure gradients and/or shear stresses by dynamically changing their shape. Such conditions are realized in the Schlemm's canal of the eye where endothelial cells that cover the inner vessel wall are subjected to the hydrodynamic pressure gradients exerted by the aqueous humor outflow. These cells form fluid-filled dynamic outpouchings of their basal membrane called \textit{giant vacuoles}. The inverse of giant vacuoles are reminiscent of cellular blebs, extracellular cytoplasmic protrusions triggered by local temporary disruption of the contractile actomyosin cortex. Inverse blebbing has been first observed experimentally during sprouting angiogenesis, but its underlying physical mechanisms are poorly understood. Here, we identify giant vacuole formation as inverse blebbing and formulate a biophysical model of this process. Our model elucidates how cell membrane mechanical properties affect the morphology and dynamics of giant vacuoles and predicts coarsening akin to Ostwald ripening between multiple invaginating vacuoles. Our results are in qualitative agreement with observations from the formation of giant vacuoles during perfusion experiments. Our model not only elucidates the biophysical mechanisms driving inverse blebbing and giant vacuole dynamics, but also identifies universal features of the cellular response to pressure loads that are relevant to many experimental contexts.