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冷适应的结构基础。嗜冷菌北极水螺菌苹果酸脱氢酶的序列、生化特性及晶体结构。

Structural basis for cold adaptation. Sequence, biochemical properties, and crystal structure of malate dehydrogenase from a psychrophile Aquaspirillium arcticum.

作者信息

Kim S Y, Hwang K Y, Kim S H, Sung H C, Han Y S, Cho Y

机构信息

Structural Biology Center, Korea Institute of Science and Technology, P.O. Box 131, Cheongryang, Seoul 130-650, South Korea.

出版信息

J Biol Chem. 1999 Apr 23;274(17):11761-7. doi: 10.1074/jbc.274.17.11761.

Abstract

Aquaspillium arcticum is a psychrophilic bacterium that was isolated from arctic sediment and grows optimally at 4 degrees C. We have cloned, purified, and characterized malate dehydrogenase from A. arcticum (Aa MDH). We also have determined the crystal structures of apo-Aa MDH, Aa MDH.NADH binary complex, and Aa MDH.NAD.oxaloacetate ternary complex at 1.9-, 2.1-, and 2.5-A resolutions, respectively. The Aa MDH sequence is most closely related to the sequence of a thermophilic MDH from Thermus flavus (Tf MDH), showing 61% sequence identity and over 90% sequence similarity. Stability studies show that Aa MDH has a half-life of 10 min at 55 degrees C, whereas Tf MDH is fully active at 90 degrees C for 1 h. Aa MDH shows 2-3-fold higher catalytic efficiency compared with a mesophilic or a thermophilic MDH at the temperature range 4-10 degrees C. Structural comparison of Aa MDH and Tf MDH suggests that the increased relative flexibility of active site residues, favorable surface charge distribution for substrate and cofactor, and the reduced intersubunit ion pair interactions may be the major factors for the efficient catalytic activity of Aa MDH at low temperatures.

摘要

北极水栖菌是一种嗜冷细菌,从北极沉积物中分离得到,在4摄氏度时生长最佳。我们已经克隆、纯化并表征了北极水栖菌的苹果酸脱氢酶(Aa MDH)。我们还分别在1.9埃、2.1埃和2.5埃分辨率下测定了脱辅基Aa MDH、Aa MDH·NADH二元复合物以及Aa MDH·NAD·草酰乙酸三元复合物的晶体结构。Aa MDH序列与嗜热栖热菌的嗜热苹果酸脱氢酶(Tf MDH)序列关系最为密切,显示出61%的序列同一性和超过90%的序列相似性。稳定性研究表明,Aa MDH在55摄氏度时的半衰期为10分钟,而Tf MDH在90摄氏度下1小时仍具有完全活性。在4至10摄氏度的温度范围内,Aa MDH的催化效率比中温或嗜热苹果酸脱氢酶高2至3倍。Aa MDH和Tf MDH的结构比较表明,活性位点残基相对灵活性的增加、底物和辅因子有利的表面电荷分布以及亚基间离子对相互作用的减少可能是Aa MDH在低温下具有高效催化活性的主要因素。

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