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结核分枝杆菌可溶性重组 SapM 的表达与纯化。

Expression and purification of soluble recombinant SapM from Mycobacterium tuberculosis.

机构信息

School of Biological Sciences, Faculty of Biology Medicine and Health, University of Manchester, Manchester Academic Health Science Centre, Manchester, M13 9PT, UK.

School of Biological Sciences, Faculty of Biology Medicine and Health, University of Manchester, Manchester Academic Health Science Centre, Manchester, M13 9PT, UK.

出版信息

Protein Expr Purif. 2020 Oct;174:105663. doi: 10.1016/j.pep.2020.105663. Epub 2020 May 6.

Abstract

SapM from Mycobacterium tuberculosis is a secreted phosphatase critical for pathogen survival inside the host, representing an attractive target for the development of anti-tuberculosis drugs. The main limitation to biochemical and structural studies of SapM has been the lack of a suitable protocol to produce soluble recombinant protein. The aim of the present work was to produce SapM in Escherichia coli in a soluble and catalytically active form. We describe here the construct design, expression and purification of soluble SapM using Sarkosyl as a solubility-enhancing agent and auto-induction media. We demonstrate that solubilisation of the recombinant protein with Sarkosyl, and further purification, yields a catalytically active enzyme with high purity and monodisperse. The identity and molecular weight of the recombinant SapM was confirmed by mass spectrometry analyses, and we provide evidence that SapM behaves as a monomer in solution. Overall, this work lays the foundation for further studies to exploit SapM as a drug target, and provides a protocol for producing active and soluble recombinant enzymes that are hard to solubilise in E. coli.

摘要

结核分枝杆菌的 SapM 是一种分泌型磷酸酶,对病原体在宿主内的存活至关重要,是开发抗结核药物的一个有吸引力的靶点。目前,生物化学和结构研究的主要限制因素是缺乏合适的方案来生产可溶性重组蛋白。本工作旨在以大肠杆菌为宿主生产可溶性和具有催化活性的 SapM。我们在这里描述了使用 Sarkosyl 作为可溶性增强剂和自动诱导培养基来设计、表达和纯化可溶性 SapM 的方法。我们证明了用 Sarkosyl 溶解重组蛋白,并进一步纯化,可以得到高纯度和单分散的具有催化活性的酶。通过质谱分析确认了重组 SapM 的身份和分子量,并提供了 SapM 在溶液中呈单体形式的证据。总的来说,这项工作为进一步研究 SapM 作为药物靶点奠定了基础,并提供了一种生产难以在大肠杆菌中溶解的活性和可溶性重组酶的方案。

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