Laboratoire Matière et Systèmes Complexes (MSC), Université de Paris & CNRS, 75013 Paris, France.
Institute for Solid State Physics, University of Tokyo, Kashiwa, Chiba 277-8581, Japan.
Soft Matter. 2021 Jun 9;17(22):5560-5573. doi: 10.1039/d1sm00027f.
The phase behavior of a membrane induced by the binding of curvature-inducing proteins is studied by a combination of analytical and numerical approaches. In thermal equilibrium under the detailed balance between binding and unbinding, the membrane exhibits three phases: an unbound uniform flat phase (U), a bound uniform flat phase (B), and a separated/corrugated phase (SC). In the SC phase, the bound proteins form hexagonally-ordered bowl-shaped domains. The transitions between the U and SC phases and between the B and SC phases are second order and first order, respectively. At a small spontaneous curvature of the protein or high surface tension, the transition between B and SC phases becomes continuous. Moreover, a first-order transition between the U and B phases is found at zero spontaneous curvature driven by the Casimir-like interactions between rigid proteins. Furthermore, nonequilibrium dynamics is investigated by the addition of active binding and unbinding at a constant rate. The active binding and unbinding processes alter the stability of the SC phase.
通过分析和数值方法的结合,研究了由曲率诱导蛋白结合引起的膜的相行为。在结合和解离之间达到详细平衡的热平衡条件下,膜呈现出三种相:未结合的均匀平面相(U)、结合的均匀平面相(B)和分离/波纹相(SC)。在 SC 相中,结合的蛋白形成具有六边形有序的碗状结构域。U 和 SC 相之间以及 B 和 SC 相之间的转变分别是二阶和一阶的。在蛋白质的小自发曲率或高表面张力下,B 和 SC 相之间的转变变得连续。此外,在零自发曲率下,通过刚性蛋白之间的 Casimir 类似相互作用,发现 U 和 B 相之间存在一级相变。此外,通过以恒定速率添加主动结合和解离来研究非平衡动力学。主动结合和解离过程改变了 SC 相的稳定性。