Center for Neutron Research, National Institute of Standards and Technology, Gaithersburg, MD 20899;
Center for Neutron Research, National Institute of Standards and Technology, Gaithersburg, MD 20899.
Proc Natl Acad Sci U S A. 2020 Sep 22;117(38):23365-23373. doi: 10.1073/pnas.2008789117. Epub 2020 Sep 3.
The elastic and viscous properties of biological membranes play a vital role in controlling cell functions that require local reorganization of the membrane components as well as dramatic shape changes such as endocytosis, vesicular trafficking, and cell division. These properties are widely acknowledged to depend on the unique composition of lipids within the membrane, yet the effects of lipid mixing on the membrane biophysical properties remain poorly understood. Here, we present a comprehensive characterization of the structural, elastic, and viscous properties of fluid membranes composed of binary mixtures of lipids with different tail lengths. We show that the mixed lipid membrane properties are not simply additive quantities of the single-component analogs. Instead, the mixed membranes are more dynamic than either of their constituents, quantified as a decrease in their bending modulus, area compressibility modulus, and viscosity. While the enhanced dynamics are seemingly unexpected, we show that the measured moduli and viscosity for both the mixed and single-component bilayers all scale with the area per lipid and collapse onto respective master curves. This scaling links the increase in dynamics to mixing-induced changes in the lipid packing and membrane structure. More importantly, the results show that the membrane properties can be manipulated through lipid composition the same way bimodal blends of surfactants, liquid crystals, and polymers are used to engineer the mechanical properties of soft materials, with broad implications for understanding how lipid diversity relates to biomembrane function.
生物膜的弹性和粘性特性在控制需要膜成分局部重排以及剧烈形状变化的细胞功能方面起着至关重要的作用,例如内吞作用、囊泡运输和细胞分裂。这些特性被广泛认为取决于膜内脂质的独特组成,但脂质混合对膜生物物理特性的影响仍知之甚少。在这里,我们全面表征了由具有不同尾部长度的脂质组成的二元混合物构成的流体膜的结构、弹性和粘性特性。我们表明,混合脂质膜的性质不是单一成分类似物的简单加和量。相反,混合膜比其任何组成部分都更具动态性,表现为其弯曲模量、面积压缩模量和粘度降低。虽然增强的动力学似乎出乎意料,但我们表明,混合和单组分双层膜的测量模量和粘度都与每脂质面积成比例,并收缩到各自的主曲线。这种标度将动力学的增加与混合诱导的脂质堆积和膜结构变化联系起来。更重要的是,结果表明可以通过脂质组成来操纵膜性质,就像双模态表面活性剂、液晶和聚合物混合物用于设计软材料的机械性能一样,这对理解脂质多样性与生物膜功能的关系具有广泛的意义。