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快速抑制谱分析确定核苷酸生物合成途径中的关键靶标。

Rapid Inhibition Profiling Identifies a Keystone Target in the Nucleotide Biosynthesis Pathway.

机构信息

Division of Biological Sciences , University of California, San Diego , La Jolla , California 92093 , United States.

出版信息

ACS Chem Biol. 2018 Dec 21;13(12):3251-3258. doi: 10.1021/acschembio.8b00273. Epub 2018 Nov 15.

DOI:10.1021/acschembio.8b00273
PMID:30133247
Abstract

Understanding the mechanism of action (MOA) of new antimicrobial agents is a critical step in drug discovery but is notoriously difficult for compounds that appear to inhibit multiple cellular pathways. We recently described image-based approaches [bacterial cytological profiling and rapid inducible profiling (RIP)] for identifying the cellular pathways targeted by antibiotics. Here we have applied these methods to examine the effects of proteolytically degrading enzymes involved in pyrimidine nucleotide biosynthesis, a pathway that produces intermediates for transcription, DNA replication, and cell envelope synthesis. We show that rapid removal of enzymes directly involved in deoxyribonucleotide synthesis blocks DNA replication. However, degradation of cytidylate kinase (CMK), which catalyzes reactions involved in the synthesis of both ribonucleotides and deoxyribonucleotides, blocks both DNA replication and wall teichoic acid biosynthesis, producing cytological effects identical to those created by simultaneously inhibiting both processes with the antibiotics ciprofloxacin and tunicamycin. Our results suggest that RIP can be used to identify and characterize potential keystone enzymes like CMK whose inhibition dramatically affects multiple pathways, thereby revealing important metabolic connections. Identifying and understanding the role of keystone targets might also help to determine the MOAs of drugs that appear to inhibit multiple targets.

摘要

了解新型抗菌药物的作用机制(MOA)是药物发现的关键步骤,但对于那些似乎抑制多种细胞途径的化合物来说,这是一项非常困难的任务。我们最近描述了基于图像的方法[细菌细胞学分析和快速诱导分析(RIP)],用于确定抗生素靶向的细胞途径。在这里,我们应用这些方法来研究参与嘧啶核苷酸生物合成的蛋白水解酶的作用,该途径产生转录、DNA 复制和细胞壁合成的中间体。我们表明,直接参与脱氧核苷酸合成的酶的快速去除会阻断 DNA 复制。然而,催化涉及核糖核苷酸和脱氧核糖核苷酸合成的反应的胞苷酸激酶(CMK)的降解会阻断 DNA 复制和细胞壁磷壁酸生物合成,产生与同时用抗生素环丙沙星和衣霉素抑制这两个过程相同的细胞学效应。我们的结果表明,RIP 可用于识别和表征潜在的关键酶,如 CMK,其抑制作用会显著影响多种途径,从而揭示重要的代谢联系。鉴定和理解关键靶点的作用也可能有助于确定似乎抑制多个靶点的药物的 MOA。

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