论文标题

盐对液滴界面双层的形成和分离的影响

Influence of Salt on the Formation and Separation of Droplet Interface Bilayers

论文作者

Huang, Yaoqi, Suja, Vineeth Chandran, Amirthalingam, Layaa, Fuller, Gerald G.

论文摘要

磷脂双层是细胞膜的主要组成部分,它与包括盐离子在内的生理电解质溶液接触。盐对磷脂双层力学的影响是一个活跃的研究区域,因为它对细胞功能和活力的影响。 In this manuscript we utilize droplet interface bilayers(DIBs), a bilayer formed artificially between two aqueous droplets, to unravel the bilayer formation and separation mechanics with a combination of experiments and numerical modelling under the effects of K$^+$, Na$^+$, Li$^+$, Ca$^{2+}$ and Mg$^{2+}$.最初,我们测量了脂质单层在平坦的油水界面上的界面张力和界面复合物粘度,并表明这两种特性都对盐浓度,离子尺寸和价值敏感。随后,我们测量了DIB的形成速率,并表明特征性双层形成速度尺度与界面张力与界面粘度的比率。接下来,我们通过逐步将液滴分开,使系统陷入阶跃应变。通过跟踪双层接触角和半径的演变,我们表明盐会影响双层分离力学,包括接触角的衰变,双层半径的衰变以及相应的弛豫时间。最后,我们通过包含幼比式方程和进化方程的数学模型来解释对观察到的双层分离的盐效应。

Phospholipid bilayers are a major component of the cell membrane that is in contact with physiological electrolyte solutions including salt ions. The effect of salt on the phospholipid bilayer mechanics is an active research area due to its implications for cellular function and viability. In this manuscript we utilize droplet interface bilayers(DIBs), a bilayer formed artificially between two aqueous droplets, to unravel the bilayer formation and separation mechanics with a combination of experiments and numerical modelling under the effects of K$^+$, Na$^+$, Li$^+$, Ca$^{2+}$ and Mg$^{2+}$. Initially, we measured the interfacial tension and the interfacial complex viscosity of lipid monolayers at a flat oil-aqueous interface and show that both properties are sensitive to salt concentration, ion size and valency. Subsequently, we measured DIB formation rates and show that the characteristic bilayer formation velocity scales with the ratio of the interfacial tension to the interfacial viscosity. Next, we subjected the system to a step strain by separating the drops in a stepwise manner. By tracking the evolution of the bilayer contact angle and radius, we show that salt influences the bilayer separation mechanics including the decay of the contact angle, the decay of the bilayer radius and the corresponding relaxation time. Finally, we explain the salt effect on the observed bilayer separation by means of a mathematical model comprising of the Young-Laplace equation and an evolution equation.

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