EnzyPep B.V., Brightlands Campus, Urmonderbaan 22, 6167 RD, Geleen, The Netherlands.
Van 't Hoff Institute for Molecular Sciences (HIMS), University of Amsterdam, Science Park 904, 1098 XH, Amsterdam, The Netherlands.
Chembiochem. 2019 Jun 14;20(12):1524-1529. doi: 10.1002/cbic.201900033. Epub 2019 Apr 25.
Disulfide-rich macrocyclic peptides-cyclotides, for example-represent a promising class of molecules with potential therapeutic use. Despite their potential their efficient synthesis at large scale still represents a major challenge. Here we report new chemoenzymatic strategies using peptide ligase variants-inter alia, omniligase-1-for the efficient and scalable one-pot cyclization and folding of the native cyclotides MCoTI-II, kalata B1 and variants thereof, as well as of the θ-defensin RTD-1. The synthesis of the kB1 variant T20K was successfully demonstrated at multi-gram scale. The existence of several ligation sites for each macrocycle makes this approach highly flexible and facilitates both the larger-scale manufacture and the engineering of bioactive, grafted cyclotide variants, therefore clearly offering a valuable and powerful extension of the existing toolbox of enzymes for peptide head-to-tail cyclization.
富含二硫键的大环肽——环肽,例如——代表了一类具有潜在治疗用途的有前途的分子。尽管它们具有潜在的应用价值,但在大规模上高效合成仍然是一个主要的挑战。在这里,我们报告了新的化学酶策略,使用肽连接酶变体——例如,omniligase-1——用于有效和可扩展的一锅法环化和折叠天然环肽 MCoTI-II、kalata B1 及其变体,以及θ-防御素 RTD-1。kB1 变体 T20K 的多克规模合成已成功证明。每个大环的几个连接位点的存在使这种方法具有高度的灵活性,并促进了生物活性、嫁接环肽变体的大规模制造和工程化,因此显然为肽头到尾环化的现有酶工具箱提供了有价值和强大的扩展。