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Relaxation dynamics of two-component fluid bilayer membranes

机译:两组分流体双层膜的弛豫动力学

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We theoretically investigate the relaxation dynamics of a nearly flat binary lipid bilayer membrane by taking into account the membrane tension, hydrodynamics of the surrounding fluid, inter-monolayer friction and mutual diffusion. Mutual diffusion is the collective irreversible process that leads to homogenization of the density difference between the two lipid species. We find that two relaxation modes associated with the mutual diffusion appear in addition to the three previously discussed relaxation modes reflecting the bending and compression of the membrane. Because of the symmetry, only one of the two diffusive modes is coupled to the bending mode. The two diffusive modes are much slower than the bending and compression modes in the entire realistic wave number range. This means that the long time relaxation behavior is dominated by the mutual diffusion in binary membranes. The two diffusive modes become even slower in the vicinity of the unstable region towards phase separation, while the other modes are almost unchanged. In short time scales, on the other hand, the lipid composition heterogeneity induces in-plane compression and bending of the bilayer.
机译:我们在理论上通过考虑膜张力,周围流体的流体动力学,单层间摩擦和相互扩散来研究接近平坦的二元脂质双层膜的松弛动力学。相互扩散是导致两个脂质种类之间密度差异均匀化的不可逆的集体过程。我们发现,除了三个先前讨论的反映膜的弯曲和压缩的松弛模式之外,还出现了与相互扩散相关的两个松弛模式。由于对称性,两个扩散模式中只有一个耦合到弯曲模式。在整个实际波数范围内,两种扩散模式都比弯曲和压缩模式慢得多。这意味着长时间的松弛行为主要由二元膜中的相互扩散决定。两种扩散模式在不稳定区域附近趋于相分离,甚至变得更慢,而其他模式几乎不变。另一方面,在短时间尺度上,脂质组成的异质性引起双层的面内压缩和弯曲。

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