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工程化铁载体。

Engineering siderophores.

机构信息

Department of Chemistry, Konstanz Research School Chemical Biology, Zukunftskolleg, University of Konstanz, Konstanz, Germany.

Department of Chemistry, Konstanz Research School Chemical Biology, Zukunftskolleg, University of Konstanz, Konstanz, Germany.

出版信息

Methods Enzymol. 2020;633:29-47. doi: 10.1016/bs.mie.2019.10.030. Epub 2019 Nov 20.

Abstract

Siderophores have important functions for bacteria in iron acquisition and as virulence factors. In this chapter we will discuss the engineering of cyclic hydroxamate siderophores by various biochemical approaches based on the example of Shewanella algae. The marine gamma-proteobacterium S. algae produces three different cyclic hydroxamate siderophores as metabolites via a single biosynthetic gene cluster and one of them is an important key player in interspecies competition blocking swarming of Vibrio alginolyticus. AvbD is the key metabolic enzyme assembling the precursors into three different core structures and hence an interesting target for metabolic and biochemical engineering. Synthetic natural and unnatural precursors can be converted in vitro with purified AvbD to generate siderophores with various ring sizes ranging from analytical to milligram scale. These engineered siderophores can be applied, for example, as swarming inhibitors against V. alginolyticus. Here, we describe the synthesis of the natural and unnatural siderophore precursors HS[X]A and provide our detailed protocols for protein expression of AvbD, conversion of HS[X]A with the enzyme to produce ring-size engineered siderophores and secondly for a biosynthetic feeding strategy that allows to extract engineered siderophores in the milligram scale.

摘要

铁载体在细菌获取铁和作为毒力因子方面具有重要功能。在本章中,我们将通过各种生化方法讨论环状羟肟酸铁载体的工程设计,以海藻希瓦氏菌为例。海洋γ-变形菌 S. algae 通过单个生物合成基因簇产生三种不同的环状羟肟酸铁载体作为代谢物,其中一种是在种间竞争中阻止 Alg 弧菌 swarm 的重要关键因子。AvbD 是将前体组装成三种不同核心结构的关键代谢酶,因此是代谢和生化工程的有趣目标。用纯化的 AvbD 在体外可转化合成的天然和非天然前体,生成从分析到毫克规模的各种环大小的铁载体。这些工程化的铁载体可用于抑制 Alg 弧菌的 swarm 等应用。在这里,我们描述了天然和非天然铁载体前体 HS[X]A 的合成,并提供了 AvbD 蛋白表达、用酶转化 HS[X]A 生成环状大小工程化铁载体以及允许在毫克级提取工程化铁载体的生物合成喂养策略的详细方案。

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