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elongata: 一种应用生物技术中具有高度稳定性酶的微生物来源。

Halomonas elongata: a microbial source of highly stable enzymes for applied biotechnology.

机构信息

Department of Chemistry, Biochemistry and Pharmaceutical Sciences, University of Bern, Bern, Switzerland.

出版信息

Appl Microbiol Biotechnol. 2023 May;107(10):3183-3190. doi: 10.1007/s00253-023-12510-7. Epub 2023 Apr 13.

Abstract

Extremophilic microorganisms, which are resistant to extreme levels of temperature, salinity, pH, etc., have become popular tools for biotechnological applications. Due to their availability and cost-efficacy, enzymes from extremophiles are getting the attention of researchers and industries in the field of biocatalysis to catalyze diverse chemical reactions in a selective and sustainable manner. In this mini-review, we discuss the advantages of Halomonas elongata as moderate halophilic bacteria to provide suitable enzymes for biotechnology. While enzymes from H. elongata are more resistant to the presence of salt compared to their mesophilic counterparts, they are also easier to produce in heterologous hosts compared with more extremophilic microorganisms. Herein, a set of different enzymes (hydrolases, transferases, and oxidoreductases) from H. elongata are showcased, highlighting their interesting properties as more efficient and sustainable biocatalysts. With this, we aim to improve the visibility of halotolerant enzymes and their uncommon properties to integrate biocatalysis in industrial set-ups. KEYPOINTS: • Production and use of halotolerant enzymes can be easier than strong halophilic ones. • Enzymes from halotolerant organisms are robust catalysts under harsh conditions. • Halomonas elongata has shown a broad enzyme toolbox with biotechnology applications.

摘要

极端微生物对极端温度、盐度、pH 等具有抗性,已成为生物技术应用的热门工具。由于其可用性和成本效益,来自极端微生物的酶引起了生物催化领域的研究人员和行业的关注,可用于以选择性和可持续的方式催化多种化学反应。在这篇迷你综述中,我们讨论了嗜盐菌 elongata 作为中度嗜盐细菌的优势,以提供适合生物技术的酶。虽然与中温菌相比,来自 elongata 的酶对盐的存在更具抗性,但与更极端的微生物相比,它们在异源宿主中也更容易生产。本文展示了 elongata 产生的一系列不同的酶(水解酶、转移酶和氧化还原酶),强调了它们作为更高效和可持续的生物催化剂的有趣特性。通过这一点,我们旨在提高耐盐酶的可见度及其不常见的特性,以将生物催化整合到工业环境中。关键点:

  1. 耐盐酶的生产和使用可能比强嗜盐酶更容易。

  2. 耐盐生物体产生的酶是恶劣条件下的强大催化剂。

  3. Halomonas elongata 具有广泛的酶工具箱,可应用于生物技术。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3ea8/10160191/59db2e718176/253_2023_12510_Fig1_HTML.jpg

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