嗜冷菌
中层
基质(水族馆)
熔化温度
酶
动能
淀粉酶
分子动力学
化学
催化作用
材料科学
热力学
生物物理学
化学物理
化学工程
细菌
生物
生物化学
计算化学
物理
遗传学
复合材料
量子力学
工程类
生态学
作者
Florian van der Ent,Susann Skagseth,Bjarte Aarmo Lund,Jaka Sočan,Julia J. Griese,Bjørn Olav Brandsdal,Johan Åqvist
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2023-06-28
卷期号:9 (26): eadi0963-eadi0963
被引量:26
标识
DOI:10.1126/sciadv.adi0963
摘要
Cold-adapted enzymes are characterized both by a higher catalytic activity at low temperatures and by having their temperature optimum down-shifted, compared to mesophilic orthologs. In several cases, the optimum does not coincide with the onset of protein melting but reflects some other type of inactivation. In the psychrophilic α-amylase from an Antarctic bacterium, the inactivation is thought to originate from a specific enzyme-substrate interaction that breaks around room temperature. Here, we report a computational redesign of this enzyme aimed at shifting its temperature optimum upward. A set of mutations designed to stabilize the enzyme-substrate interaction were predicted by computer simulations of the catalytic reaction at different temperatures. The predictions were verified by kinetic experiments and crystal structures of the redesigned α-amylase, showing that the temperature optimum is indeed markedly shifted upward and that the critical surface loop controlling the temperature dependence approaches the target conformation observed in a mesophilic ortholog.
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