Department of Chemistry and Biochemistry, University of South Carolina, Columbia, South Carolina 29208, United States.
Department of Chemistry and the Swire Institute of Marine Science, The University of Hong Kong, Hong Kong 999077, China.
ACS Chem Biol. 2023 Mar 17;18(3):508-517. doi: 10.1021/acschembio.2c00849. Epub 2023 Mar 9.
Class III lanthipeptides are an emerging subclass of lanthipeptides, representing an underexplored trove of new natural products with potentially broad chemical diversity and important biological activity. Bioinformatic analysis of class III lanthipeptide biosynthetic gene cluster (BGC) distribution has revealed their high abundance in the phylum Firmicutes. Many of these clusters also feature methyltransferase (MT) genes, which likely encode uncommon class III lanthipeptides. However, two hurdles, silent BGCs and low-yielding pathways, have hindered the discovery of class III lanthipeptides from Firmicutes. Here, we report the design and construction of a biosynthetic pathway refactoring and heterologous overexpression strategy which seeks to overcome these hurdles, simultaneously activating and increasing the production of these Firmicutes class III lanthipeptides. Applying our strategy to MT-containing BGCs, we report the discovery of new class III lanthipeptides from Firmicutes bearing rare ,-dimethylations. We reveal the importance of the first two amino acids in the N-terminus of the core peptide in controlling the MT dimethylation activity. Leveraging this feature, we engineer class III lanthipeptides to enable ,-dimethylation, resulting in significantly increased antibacterial activity. Furthermore, the refactoring and heterologous overexpression strategy showcased in this study is potentially applicable to other ribosomally synthesized and post-translationally modified peptide BGCs from Firmicutes, unlocking the genetic potential of Firmicutes for producing peptide natural products.
III 类硫肽是硫肽的一个新兴亚类,代表了一个尚未充分探索的新天然产物宝库,具有潜在的广泛化学多样性和重要的生物活性。对 III 类硫肽生物合成基因簇(BGC)分布的生物信息学分析表明,它们在厚壁菌门中的丰度很高。这些簇中的许多还具有甲基转移酶(MT)基因,这些基因可能编码罕见的 III 类硫肽。然而,两个障碍,沉默 BGC 和低产途径,阻碍了从厚壁菌门中发现 III 类硫肽。在这里,我们报告了一个生物合成途径重构和异源过表达策略的设计和构建,旨在克服这些障碍,同时激活和增加这些Firmicutes 类 III 硫肽的产量。我们将我们的策略应用于含有 MT 的 BGC,我们报告了从厚壁菌门中发现了新的 III 类硫肽,这些硫肽具有罕见的,-二甲基化。我们揭示了核心肽 N 端前两个氨基酸在控制 MT 二甲基化活性中的重要性。利用这一特性,我们对 III 类硫肽进行了工程设计,使其能够进行,-二甲基化,从而显著提高了抗菌活性。此外,本研究中展示的重构和异源过表达策略可能适用于厚壁菌门中其他核糖体合成和翻译后修饰肽 BGC,从而挖掘厚壁菌门产生肽天然产物的遗传潜力。