Arnold Daniel P, Gubbala Aakanksha, Takatori Sho C
Department of Chemical Engineering, University of California, Santa Barbara, Santa Barbara, California 93106, USA.
Phys Rev Lett. 2023 Sep 22;131(12):128402. doi: 10.1103/PhysRevLett.131.128402.
Phase separation of multicomponent lipid membranes is characterized by the nucleation and coarsening of circular membrane domains that grow slowly in time as ∼t^{1/3}, following classical theories of coalescence and Ostwald ripening. In this Letter, we study the coarsening kinetics of phase-separating lipid membranes subjected to nonequilibrium forces and flows transmitted by motor-driven gliding actin filaments. We experimentally observe that the activity-induced surface flows trigger rapid coarsening of noncircular membrane domains that grow as ∼t^{2/3}, a 2x acceleration in the growth exponent compared to passive coalescence and Ostwald ripening. We analyze these results by developing analytical theories based on the Smoluchowski coagulation model and the phase field model to predict the domain growth in the presence of active flows. Our Letter demonstrates that active matter forces may be used to control the growth and morphology of membrane domains driven out of equilibrium.
多组分脂质膜的相分离特征在于圆形膜域的成核和粗化,这些膜域随着时间缓慢生长,遵循经典的聚结和奥斯特瓦尔德熟化理论,生长规律为t^{1/3}。在本信函中,我们研究了受非平衡力和由马达驱动的滑动肌动蛋白丝传递的流作用的相分离脂质膜的粗化动力学。我们通过实验观察到,活性诱导的表面流触发了非圆形膜域的快速粗化,其生长规律为t^{2/3},与被动聚结和奥斯特瓦尔德熟化相比,生长指数加快了2倍。我们通过基于斯莫卢霍夫斯基凝聚模型和相场模型发展分析理论来分析这些结果,以预测在活性流存在下域的生长。我们的信函表明,活性物质力可用于控制由非平衡驱动的膜域的生长和形态。