Smythers Amanda L, Hicks Leslie M
Department of Chemistry, The University of North Carolina at Chapel Hill, Chapel Hill, NC 27599, U.S.A.
Emerg Top Life Sci. 2021 May 21;5(2):203-220. doi: 10.1042/ETLS20200270.
Plants rapidly respond to environmental fluctuations through coordinated, multi-scalar regulation, enabling complex reactions despite their inherently sessile nature. In particular, protein post-translational signaling and protein-protein interactions combine to manipulate cellular responses and regulate plant homeostasis with precise temporal and spatial control. Understanding these proteomic networks are essential to addressing ongoing global crises, including those of food security, rising global temperatures, and the need for renewable materials and fuels. Technological advances in mass spectrometry-based proteomics are enabling investigations of unprecedented depth, and are increasingly being optimized for and applied to plant systems. This review highlights recent advances in plant proteomics, with an emphasis on spatially and temporally resolved analysis of post-translational modifications and protein interactions. It also details the necessity for generation of a comprehensive plant cell atlas while highlighting recent accomplishments within the field.
植物通过协调的多尺度调节对环境波动做出快速反应,尽管其本质上是固着的,但仍能产生复杂反应。特别是,蛋白质翻译后信号传导和蛋白质-蛋白质相互作用相结合,以精确的时间和空间控制来操纵细胞反应并调节植物体内平衡。理解这些蛋白质组网络对于应对当前的全球危机至关重要,这些危机包括粮食安全、全球气温上升以及对可再生材料和燃料的需求。基于质谱的蛋白质组学技术进步使得能够进行前所未有的深度研究,并且越来越多地针对植物系统进行优化和应用。本综述重点介绍了植物蛋白质组学的最新进展,重点是对翻译后修饰和蛋白质相互作用进行时空分辨分析。它还详细说明了生成全面的植物细胞图谱的必要性,同时强调了该领域的最新成就。