Stone Matthew B, Shelby Sarah A, Veatch Sarah L
Department of Biophysics, University of Michigan , 930 North University Avenue, Ann Arbor, Michigan 48109, United States.
Chem Rev. 2017 Jun 14;117(11):7457-7477. doi: 10.1021/acs.chemrev.6b00716. Epub 2017 Feb 17.
Lipids and the membranes they form are fundamental building blocks of cellular life, and their geometry and chemical properties distinguish membranes from other cellular environments. Collective processes occurring within membranes strongly impact cellular behavior and biochemistry, and understanding these processes presents unique challenges due to the often complex and myriad interactions between membrane components. Super-resolution microscopy offers a significant gain in resolution over traditional optical microscopy, enabling the localization of individual molecules even in densely labeled samples and in cellular and tissue environments. These microscopy techniques have been used to examine the organization and dynamics of plasma membrane components, providing insight into the fundamental interactions that determine membrane functions. Here, we broadly introduce the structure and organization of the mammalian plasma membrane and review recent applications of super-resolution microscopy to the study of membranes. We then highlight some inherent challenges faced when using super-resolution microscopy to study membranes, and we discuss recent technical advancements that promise further improvements to super-resolution microscopy and its application to the plasma membrane.
脂质及其形成的膜是细胞生命的基本组成部分,其几何形状和化学性质使膜区别于其他细胞环境。膜内发生的集体过程对细胞行为和生物化学有强烈影响,由于膜成分之间通常复杂且众多的相互作用,理解这些过程面临独特挑战。超分辨率显微镜比传统光学显微镜在分辨率上有显著提高,即使在标记密集的样本以及细胞和组织环境中也能实现单个分子的定位。这些显微镜技术已被用于研究质膜成分的组织和动态,为确定膜功能的基本相互作用提供了见解。在这里,我们广泛介绍哺乳动物质膜的结构和组织,并回顾超分辨率显微镜在膜研究中的最新应用。然后,我们强调使用超分辨率显微镜研究膜时面临的一些固有挑战,并讨论有望进一步改进超分辨率显微镜及其在质膜应用的近期技术进展。