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催化结构域表面的色氨酸122和色氨酸134对于环状芽孢杆菌几丁质酶A1水解结晶几丁质至关重要。

Trp122 and Trp134 on the surface of the catalytic domain are essential for crystalline chitin hydrolysis by Bacillus circulans chitinase A1.

作者信息

Watanabe T, Ishibashi A, Ariga Y, Hashimoto M, Nikaidou N, Sugiyama J, Matsumoto T, Nonaka T

机构信息

Department of Applied Biological Chemistry, Faculty of Agriculture, Niigata University, Japan.

出版信息

FEBS Lett. 2001 Apr 6;494(1-2):74-8. doi: 10.1016/s0014-5793(01)02317-1.

Abstract

From the 3D-structural analysis of the catalytic domain of chitinase A1, two exposed tryptophan residues (W122 and W134) are proposed to play an important role in guiding a chitin chain into the catalytic cleft during the crystalline chitin hydrolysis. Mutation of either W122 or W134 to alanine significantly reduced the hydrolyzing activity against highly crystalline beta-chitin microfibrils. Double mutation almost completely abolished the hydrolyzing activity. On the other hand, the hydrolyzing activity against either soluble or amorphous substrate was not reduced. These mutations slightly impaired the binding activity of this enzyme. These results clearly demonstrated that the two exposed aromatic residues play a critical role in hydrolyzing the chitin chain in crystalline chitin.

摘要

通过对几丁质酶A1催化结构域的三维结构分析,发现两个暴露的色氨酸残基(W122和W134)在结晶几丁质水解过程中,引导几丁质链进入催化裂隙发挥重要作用。将W122或W134突变为丙氨酸会显著降低对高度结晶的β-几丁质微纤维的水解活性。双突变几乎完全消除了水解活性。另一方面,对可溶性或无定形底物的水解活性并未降低。这些突变轻微损害了该酶的结合活性。这些结果清楚地表明,这两个暴露的芳香族残基在水解结晶几丁质中的几丁质链方面起关键作用。

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