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谷氨酸肽酶催化机制的研究。

Studies on the catalytic mechanism of a glutamic peptidase.

作者信息

Kondo Márcia Y, Okamoto Débora N, Santos Jorge A N, Juliano Maria A, Oda Kohei, Pillai Bindu, James Michael N G, Juliano Luiz, Gouvea Iuri E

机构信息

Department of Biophysics, Escola Paulista de Medicina, Universidade Federal de São Paulo, Rua Três de Maio 100, 04044-20 São Paulo, Brazil.

出版信息

J Biol Chem. 2010 Jul 9;285(28):21437-45. doi: 10.1074/jbc.M110.122432. Epub 2010 May 4.

Abstract

Scytalidoglutamic peptidase (SGP) is the prototype of fungal glutamic peptidases that are characteristically pepstatin insensitive. These enzymes have a unique catalytic dyad comprised of Gln(53) and Glu(136) that activate a bound water molecule for nucleophilic attack on the carbonyl carbon atom of the scissile peptide bond. The hydrolysis by SGP at peptide bonds with proline in the P(1)' position is a rare event among peptidases that we investigated using the series of fluorescence resonance energy transfer peptides, Abz-KLXPSKQ-EDDnp, compared with the series Abz-KLXSSKQ-EDDnp. The preference observed in these two series for Phe and His over Leu, Ile, Val, Arg, and Lys, seems to be related to the structure of the S(1) subsite of SGP. These results and the pH profiles of SGP activity showed that its S(1) subsite can accommodate the benzyl group of Phe at pH 4 as well as the positively charged imidazolium group of His. In the pH range 2 to 7, SGP maintains its structure and activity, but at pH 8 or higher it is irreversibly denatured. The intrinsic fluorescence of the Trp residues of SGP were sensitive to the titration of carboxyl groups having low pK values; this can be attributed to the buried Asp(57) and/or Asp(43) as described in SGP three-dimensional structure. The solvent kinetic isotope effects and the proton inventory experiments support a mechanism for the glutamic peptidase SGP that involves the nucleophilic attack of the general base (Glu(136)) activated water, and establish a fundamental role of the S(1) subsite interactions in promoting catalysis.

摘要

帚霉谷氨酸肽酶(SGP)是真菌谷氨酸肽酶的原型,其特征是对胃蛋白酶抑制剂不敏感。这些酶具有由Gln(53)和Glu(136)组成的独特催化二元组,可激活结合的水分子,使其对可裂解肽键的羰基碳原子进行亲核攻击。与Abz-KLXSSKQ-EDDnp系列相比,我们使用荧光共振能量转移肽系列Abz-KLXPSKQ-EDDnp研究发现,SGP在P(1)' 位置含有脯氨酸的肽键处进行水解,这在肽酶中是罕见的事件。在这两个系列中观察到的对苯丙氨酸和组氨酸优于亮氨酸、异亮氨酸、缬氨酸、精氨酸和赖氨酸的偏好,似乎与SGP的S(1)亚位点结构有关。这些结果以及SGP活性的pH谱表明,其S(1)亚位点在pH 4时可以容纳苯丙氨酸的苄基以及组氨酸带正电荷的咪唑鎓基团。在pH范围2至7内,SGP保持其结构和活性,但在pH 8或更高时会不可逆地变性。SGP中色氨酸残基的固有荧光对低pK值羧基的滴定敏感;这可归因于SGP三维结构中所描述的埋藏的Asp(57)和/或Asp(43)。溶剂动力学同位素效应和质子存量实验支持谷氨酸肽酶SGP的一种机制,该机制涉及一般碱(Glu(136))激活水的亲核攻击,并确立了S(1)亚位点相互作用在促进催化中的基本作用。

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