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天冬氨酸在糖基天冬酰胺酶自催化水解中的双重作用。

A dual role for an aspartic acid in glycosylasparaginase autoproteolysis.

作者信息

Qian Xiaofeng, Guan Chudi, Guo Hwai-Chen

机构信息

Department of Physiology and Biophysics, Boston University School of Medicine, 715 Albany Street, Boston, MA 02118, USA.

出版信息

Structure. 2003 Aug;11(8):997-1003. doi: 10.1016/s0969-2126(03)00150-3.

Abstract

Glycosylasparaginase uses an autoproteolytic processing mechanism, through an N-O acyl shift, to generate a mature/active enzyme from a single-chain precursor. Structures of glycosylasparaginase precursors in complex with a glycine inhibitor have revealed the backbone in the immediate vicinity of the scissile peptide bond to be in a distorted trans conformation, which is believed to be the driving force for the N-O acyl shift to break the peptide bond. Here we report the effects of point mutation D151N. In addition to the loss of the base essential in autoproteolysis, this mutation also eradicates the backbone distortion near the scissile peptide bond. Binding of the glycine inhibitor to the autoproteolytic site of the D151N mutant does not restore the backbone distortion. Therefore, Asp151 plays a dual role, acting as the general base to activate the nucleophile and holding the distorted trans conformation that is critical for initiating an N-O acyl shift.

摘要

糖基天冬酰胺酶通过N-O酰基转移的自蛋白水解加工机制,从单链前体生成成熟/活性酶。糖基天冬酰胺酶前体与甘氨酸抑制剂复合物的结构显示,可裂解肽键紧邻区域的主链处于扭曲的反式构象,这被认为是N-O酰基转移断裂肽键的驱动力。在此,我们报告了点突变D151N的影响。除了自蛋白水解中必需碱基的缺失外,该突变还消除了可裂解肽键附近的主链扭曲。甘氨酸抑制剂与D151N突变体自蛋白水解位点的结合并不能恢复主链扭曲。因此,天冬氨酸151发挥双重作用,作为激活亲核试剂的通用碱基,并保持对启动N-O酰基转移至关重要的扭曲反式构象。

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