Purushothaman Sowmya, Cicuta Pietro, Ces Oscar, Brooks Nicholas J
†Department of Chemistry, Imperial College London, South Kensington Campus, London SW7 2AZ, U.K.
‡Cavendish Laboratory, University of Cambridge, Cambridge CB3 0HE, U.K.
J Phys Chem B. 2015 Jul 30;119(30):9805-10. doi: 10.1021/acs.jpcb.5b05272. Epub 2015 Jul 21.
Curvature is a fundamental lipid membrane property that influences many membrane-mediated biological processes and dynamic soft materials. One of the key parameters that determines the energetics of curvature change is the membrane bending rigidity. Understanding the intrinsic effect of pressure on membrane bending is critical to understanding the adaptation and structural behavior of biomembranes in deep-sea organisms as well as soft material processing. However, it has not previously been possible to measure the influence of high hydrostatic pressure on membrane bending energetics, and this bottleneck has primarily been due to a lack of technology platforms for performing such measurements. We have developed a new high-pressure microscopy cell which, combined with vesicle fluctuation analysis, has allowed us to make the first measurements of membrane bending rigidity as a function of pressure. Our results show a significant increase in bending rigidity at pressures up to 40 MPa. Above 40 MPa, the membrane mechanics become more complex. Corresponding small and wide-angle X-ray diffraction shows an increase in density and thickness of the bilayer with increasing pressure which correlates with the micromechanical measurements. These results are consistent with recent theoretical predictions of the bending rigidity as a function of hydrocarbon chain density. This technology has the potential to transform our quantitative understanding of the role of pressure in soft material processing, the structural behavior of biomembranes, and the adaptation mechanisms employed by deep-sea organisms.
曲率是脂质膜的一种基本属性,它影响着许多由膜介导的生物过程以及动态软材料。决定曲率变化能量学的关键参数之一是膜弯曲刚度。了解压力对膜弯曲的内在影响对于理解深海生物中生物膜的适应性和结构行为以及软材料加工至关重要。然而,此前一直无法测量高静水压力对膜弯曲能量学的影响,而这一瓶颈主要是由于缺乏进行此类测量的技术平台。我们开发了一种新型高压显微镜池,结合囊泡波动分析,使我们能够首次测量作为压力函数的膜弯曲刚度。我们的结果表明,在高达40兆帕的压力下,弯曲刚度显著增加。高于40兆帕时,膜力学变得更加复杂。相应的小角和广角X射线衍射显示,随着压力增加,双层膜的密度和厚度增加,这与微观力学测量结果相关。这些结果与最近关于弯曲刚度作为烃链密度函数的理论预测一致。这项技术有可能改变我们对压力在软材料加工中的作用、生物膜的结构行为以及深海生物所采用的适应机制的定量理解。