Fogeron Marie-Laure, Lecoq Lauriane, Cole Laura, Harbers Matthias, Böckmann Anja
Molecular Microbiology and Structural Biochemistry, Labex Ecofect, UMR 5086 CNRS/Université de Lyon, Lyon, France.
CellFree Sciences, Yokohama, Japan.
Front Mol Biosci. 2021 Mar 25;8:639587. doi: 10.3389/fmolb.2021.639587. eCollection 2021.
Cell-free protein synthesis (CFPS) systems are gaining more importance as universal tools for basic research, applied sciences, and product development with new technologies emerging for their application. Huge progress was made in the field of synthetic biology using CFPS to develop new proteins for technical applications and therapy. Out of the available CFPS systems, wheat germ cell-free protein synthesis (WG-CFPS) merges the highest yields with the use of a eukaryotic ribosome, making it an excellent approach for the synthesis of complex eukaryotic proteins including, for example, protein complexes and membrane proteins. Separating the translation reaction from other cellular processes, CFPS offers a flexible means to adapt translation reactions to protein needs. There is a large demand for such potent, easy-to-use, rapid protein expression systems, which are optimally serving protein requirements to drive biochemical and structural biology research. We summarize here a general workflow for a wheat germ system providing examples from the literature, as well as applications used for our own studies in structural biology. With this review, we want to highlight the tremendous potential of the rapidly evolving and highly versatile CFPS systems, making them more widely used as common tools to recombinantly prepare particularly challenging recombinant eukaryotic proteins.
无细胞蛋白质合成(CFPS)系统作为基础研究、应用科学和产品开发的通用工具,随着适用于其应用的新技术不断涌现,正变得越来越重要。在合成生物学领域,利用CFPS开发用于技术应用和治疗的新蛋白质取得了巨大进展。在现有的CFPS系统中,小麦胚无细胞蛋白质合成(WG-CFPS)通过使用真核核糖体实现了最高产量,使其成为合成复杂真核蛋白质(如蛋白质复合物和膜蛋白)的绝佳方法。CFPS将翻译反应与其他细胞过程分离,为使翻译反应适应蛋白质需求提供了一种灵活的手段。对这种强大、易用、快速的蛋白质表达系统有很大需求,这些系统能最佳地满足蛋白质需求,以推动生物化学和结构生物学研究。我们在此总结了一个小麦胚系统的通用工作流程,并列举了文献中的示例以及我们自己在结构生物学研究中使用的应用。通过这篇综述,我们想强调快速发展且用途广泛的CFPS系统的巨大潜力,使其更广泛地用作重组制备特别具有挑战性的重组真核蛋白质的常用工具。