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负责2,2'-联吡啶抗生素生物合成中“辅助性”亮氨酰去除的金属依赖性酰胺水解酶的表征

Characterization of the metallo-dependent amidohydrolases responsible for "auxiliary" leucinyl removal in the biosynthesis of 2,2'-bipyridine antibiotics.

作者信息

Chen Ming, Pang Bo, Du Ya-Nan, Zhang Yi-Peng, Liu Wen

机构信息

State Key Laboratory of Bioorganic and Nature Products Chemistry, Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences, 345 Lingling Road, Shanghai 200032, China.

State Key Laboratory of Microbial Metabolism, School of Life Science & Biotechnology, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, China.

出版信息

Synth Syst Biotechnol. 2017 Jul 13;2(2):137-146. doi: 10.1016/j.synbio.2017.07.002. eCollection 2017 Jun.

Abstract

2,2'-Bipyridine (2,2'-BiPy) is an attractive core structure present in a number of biologically active natural products, including the structurally related antibiotics caerulomycins (CAEs) and collismycins (COLs). Their biosynthetic pathways share a similar key 2,2'-BiPy-l-leucine intermediate, which is desulfurated or sulfurated at C5, arises from a polyketide synthase/nonribosomal peptide synthetase hybrid assembly line. Focusing on the common off-line modification steps, we here report that the removal of the "auxiliary" l-leucine residue relies on the metallo-dependent amidohydrolase activity of CaeD or ColD. This activity leads to the production of similar 2,2'-BiPy carboxylate products that then receive an oxime functionality that is characteristic for both CAEs and COLs. Unlike many metallo-dependent amidohydrolase superfamily proteins that have been previously reported, these proteins (particularly CaeD) exhibited a strong zinc ion-binding capacity that was proven by site-specific mutagenesis studies to be essential to proteolytic activity. The kinetics of the conversions that respectively involve CaeD and ColD were analyzed, showing the differences in the efficiency and substrate specificity of these two proteins. These findings would generate interest in the metallo-dependent amidohydrolase superfamily proteins that are involved in the biosynthesis of bioactive natural products.

摘要

2,2'-联吡啶(2,2'-BiPy)是许多生物活性天然产物中存在的一种引人注目的核心结构,包括结构相关的抗生素天蓝霉素(CAEs)和柱晶白霉素(COLs)。它们的生物合成途径共享一个相似的关键2,2'-BiPy-L-亮氨酸中间体,该中间体在C5位进行脱硫或硫化,由聚酮合酶/非核糖体肽合成酶杂交装配线产生。着眼于常见的离线修饰步骤,我们在此报告,“辅助性”L-亮氨酸残基的去除依赖于CaeD或ColD的金属依赖性酰胺水解酶活性。这种活性导致产生相似的2,2'-BiPy羧酸盐产物,然后这些产物获得CAEs和COLs特有的肟官能团。与先前报道的许多金属依赖性酰胺水解酶超家族蛋白不同,这些蛋白(特别是CaeD)表现出很强的锌离子结合能力,位点特异性诱变研究证明这种能力对蛋白水解活性至关重要。分析了分别涉及CaeD和ColD的转化动力学,显示了这两种蛋白在效率和底物特异性方面的差异。这些发现将引起人们对参与生物活性天然产物生物合成的金属依赖性酰胺水解酶超家族蛋白的兴趣。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9a1c/5636949/83fd90d1bb1a/gr1.jpg

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