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南极来源的内切溶素在低温下具有溶菌酶活性。

Endolysins from Antarctic Display Lysozyme Activity at Low Temperature.

机构信息

Department of Biotechnology and Biosciences, State University of Milano Bicocca, 20126 Milano, Italy.

School of Biosciences and Veterinary Medicine, University of Camerino, 62032 Camerino, Italy.

出版信息

Mar Drugs. 2020 Nov 20;18(11):579. doi: 10.3390/md18110579.

Abstract

Organisms specialized to thrive in cold environments (so-called psychrophiles) produce enzymes with the remarkable ability to catalyze chemical reactions at low temperature. Cold activity relies on adaptive changes in the proteins' sequence and structural organization that result in high conformational flexibility. As a consequence of flexibility, several such enzymes are inherently heat sensitive. Cold-active enzymes are of interest for application in a number of bioprocesses, where cold activity coupled with easy thermal inactivation can be of advantage. We describe the biochemical and functional properties of two glycosyl hydrolases (named LYS177 and LYS188) of family 19 (GH19), identified in the genome of an Antarctic marine . Molecular evolutionary analysis placed them in a group of characterized GH19 endolysins active on lysozyme substrates, such as peptidoglycan. Enzyme activity peaks at about 25-35 °C and 40% residual activity is retained at 5 °C. LYS177 and LYS188 are thermolabile, with Tm of 52 and 45 °C and half-lives of 48 and 12 h at 37 °C, respectively. Bioinformatics analyses suggest that low heat stability may be associated to temperature-driven increases in local flexibility occurring mainly in a specific region of the polypeptide that is predicted to contain hot spots for aggregation.

摘要

专门在低温环境中生存的生物体(所谓的嗜冷生物)产生的酶具有在低温下催化化学反应的显著能力。低温活性依赖于蛋白质序列和结构组织的适应性变化,从而导致高构象灵活性。由于灵活性,有几种这样的酶天生对热敏感。低温活性酶在许多生物过程中有应用的兴趣,其中低温活性与易于热失活相结合可能是有利的。我们描述了两种糖苷水解酶(命名为 LYS177 和 LYS188)的生化和功能特性,这两种酶属于 19 家族(GH19),在南极海洋的基因组中被鉴定出来。分子进化分析将它们置于一组具有特征的 GH19 内切酶中,这些内切酶在溶菌酶底物上具有活性,如肽聚糖。酶活性在约 25-35°C 时达到峰值,在 5°C 时保留 40%的残余活性。LYS177 和 LYS188 是热敏的,Tm 分别为 52°C 和 45°C,在 37°C 时半衰期分别为 48 h 和 12 h。生物信息学分析表明,低热稳定性可能与温度驱动的局部灵活性增加有关,这种增加主要发生在预测含有聚集热点的多肽的特定区域。

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