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利用来自异戊烯拉加酰胺生物合成的混杂大环化酶扩展合成环肽的化学空间。

Expanding the chemical space of synthetic cyclic peptides using a promiscuous macrocyclase from prenylagaramide biosynthesis.

作者信息

Sarkar Snigdha, Gu Wenjia, Schmidt Eric W

机构信息

Department of Medicinal Chemistry, University of Utah, Salt Lake City, Utah 84112, United States.

出版信息

ACS Catal. 2020 Jul 2;10(13):7146-7153. doi: 10.1021/acscatal.0c00623. Epub 2020 Jun 17.

DOI:10.1021/acscatal.0c00623
PMID:33457065
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7805243/
Abstract

Cyclic peptides are excellent drug candidates, placing macrocyclization reactions at the apex of drug development. PatG and related dual-action proteases from cyanobactin biosynthesis are responsible for cleaving off the C-terminal recognition sequence and macrocyclizing the substrate to provide cyclic peptides. This reaction has found use in the enzymatic synthesis of diverse macrocycles. However, these enzymes function best on substrates that terminate with the non-proteinogenic thiazole/thiazoline residue, complicating synthetic strategies. Here, we biochemically characterize a new class of PatG-like macrocyclases that natively use proline, obviating the necessity of additional chemical or biochemical steps. We experimentally define the biochemical steps involved in synthesizing the widespread prenylagaramide-like natural products, including macrocyclization and prenylation. Using saturation mutagenesis, we show that macrocyclase PagG and prenyltransferase PagF are highly promiscuous, producing a library of more than 100 cyclic peptides and their prenylated derivatives . By comparing our results to known cyanobactin macrocyclases, we catalog a series of enzymes from this family that should synthesize most small macrocycles. Collectively, these data reveal that, by selecting the right cyanobactin macrocyclase, a large array of enzymatically synthesized macrocycles are accessible.

摘要

环肽是优秀的药物候选物,使大环化反应处于药物开发的顶端。来自蓝细菌素生物合成的PatG及相关双功能蛋白酶负责切割C端识别序列并使底物大环化以提供环肽。该反应已用于多种大环化合物的酶促合成。然而,这些酶在以非蛋白质ogenic噻唑/噻唑啉残基结尾的底物上功能最佳,这使合成策略变得复杂。在这里,我们对一类新的PatG样大环化酶进行了生化表征,这类酶天然使用脯氨酸,从而避免了额外化学或生化步骤的必要性。我们通过实验确定了合成广泛存在的类异戊烯基拉加酰胺天然产物所涉及的生化步骤,包括大环化和异戊烯基化。通过饱和诱变,我们表明大环化酶PagG和异戊烯基转移酶PagF具有高度的混杂性,产生了一个包含100多种环肽及其异戊烯基化衍生物的文库。通过将我们的结果与已知的蓝细菌素大环化酶进行比较,我们编目了该家族中一系列应该能合成大多数小大环化合物的酶。总的来说,这些数据表明,通过选择合适的蓝细菌素大环化酶,可以获得大量酶促合成的大环化合物。

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