Department of Chemistry & Biochemistry, University of California San Diego, 9500 Gilman Drive, La Jolla, CA, 92093, USA.
Department of Chemistry & Biochemistry, University of California San Diego, 9500 Gilman Drive, La Jolla, CA, 92093, USA.
Curr Opin Chem Biol. 2021 Dec;65:66-73. doi: 10.1016/j.cbpa.2021.05.013. Epub 2021 Jul 1.
The structural diversity of lipids underpins the biophysical properties of cellular membranes, which vary across all scales of biological organization. Because lipid composition results from complex metabolic and transport pathways, its experimental control has been a major goal of mechanistic membrane biology. Here, we argue that in the wake of synthetic biology, similar metabolic engineering strategies can be applied to control the composition, physicochemical properties, and function of cell membranes. In one emerging area, titratable expression platforms allow for specific and genome-wide alterations in lipid biosynthetic genes, providing analog control over lipidome stoichiometry in membranes. Simultaneously, heterologous expression of biosynthetic genes and pathways has allowed for gain-of-function experiments with diverse lipids in non-native systems. Finally, we highlight future directions for tool development, including recently discovered lipid transport pathways to intracellular lipid pools. Further tool development providing synthetic control of membrane properties can allow biologists to untangle membrane lipid structure-associated functions.
脂质的结构多样性是细胞膜生物物理特性的基础,而细胞膜的生物物理特性在所有生物组织尺度上都有所不同。由于脂质组成是复杂代谢和运输途径的结果,因此其实验控制一直是机械膜生物学的主要目标。在这里,我们认为,在合成生物学之后,类似的代谢工程策略可以应用于控制细胞膜的组成、物理化学性质和功能。在一个新兴领域中,可滴定表达平台允许对脂质生物合成基因进行特异性和全基因组改变,从而对膜中脂质组化学计量进行类似的控制。同时,生物合成基因和途径的异源表达允许在非天然系统中用各种脂质进行功能获得实验。最后,我们强调了工具开发的未来方向,包括最近发现的将脂质运输到细胞内脂质库的途径。进一步开发提供对膜特性的合成控制的工具可以使生物学家能够理清与膜脂质结构相关的功能。