Travin Dmitrii Y, Severinov Konstantin, Dubiley Svetlana
Center of Life Sciences, Skolkovo Institute of Science and Technology Moscow Russia
Institute of Gene Biology, Russian Academy of Sciences Moscow Russia.
RSC Chem Biol. 2021 Feb 22;2(2):468-485. doi: 10.1039/d0cb00208a. eCollection 2021 Apr 1.
For most antimicrobial compounds with intracellular targets, getting inside the cell is the major obstacle limiting their activity. To pass this barrier some antibiotics mimic the compounds of specific interest for the microbe (siderophores, peptides, carbohydrates, ) and hijack the transport systems involved in their active uptake followed by the release of a toxic warhead inside the cell. In this review, we summarize the information about the structures, biosynthesis, and transport of natural inhibitors of aminoacyl-tRNA synthetases (albomycin, microcin C-related compounds, and agrocin 84) that rely on such "Trojan horse" strategy to enter the cell. In addition, we provide new data on the composition and distribution of biosynthetic gene clusters reminiscent of those coding for known Trojan horse aminoacyl-tRNA synthetases inhibitors. The products of these clusters are likely new antimicrobials that warrant further investigation.
对于大多数作用于细胞内靶点的抗菌化合物而言,进入细胞是限制其活性的主要障碍。为跨越这一屏障,一些抗生素模拟微生物感兴趣的特定化合物(铁载体、肽、碳水化合物等),劫持参与其主动摄取的转运系统,随后在细胞内释放有毒弹头。在本综述中,我们总结了依赖这种“特洛伊木马”策略进入细胞的氨酰 - tRNA合成酶天然抑制剂(阿波霉素、微菌素C相关化合物和农杆菌素84)的结构、生物合成及转运方面的信息。此外,我们还提供了关于生物合成基因簇组成和分布的新数据,这些基因簇让人联想到编码已知特洛伊木马型氨酰 - tRNA合成酶抑制剂的基因簇。这些基因簇的产物可能是值得进一步研究的新型抗菌剂。