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肽脱甲酰基酶的底物识别与选择性。与金属锌酶和嗜热菌蛋白酶的异同。

Substrate recognition and selectivity of peptide deformylase. Similarities and differences with metzincins and thermolysin.

作者信息

Ragusa S, Mouchet P, Lazennec C, Dive V, Meinnel T

机构信息

Laboratoire de Biochimie UMR 7654 Ecole Polytechnique-Centre National de la Recherche Scientifique, Ecole Polytechnique, Palaiseau cedex, F-91128, France.

出版信息

J Mol Biol. 1999 Jun 25;289(5):1445-57. doi: 10.1006/jmbi.1999.2832.

Abstract

The substrate specificity of Escherichia coli peptide deformylase was investigated by measuring the efficiency of the enzyme to cleave formyl- peptides of the general formula Fo-Xaa-Yaa-NH2, where Xaa represents a set of 27 natural and unusual amino acids and Yaa corresponds to a set of 19 natural amino acids. Substrates with bulky hydrophobic side-chains at the P1' position were the most efficiently cleaved, with catalytic efficiencies greater by two to five orders of magnitude than those associated with polar or charged amino acid side-chains. Among hydrophobic side-chains, linear alkyl groups were preferred at the P1' position, as compared to aryl-alkyl side-chains. Interestingly, in the linear alkyl substituent series, with the exception of norleucine, deformylase exhibits a preference for the substrate containing Met in the P1' position. Next, the influence in catalysis of the second side-chain was studied after synthesis of 20 compounds of the formula Fo-Nle-Yaa-NH2. Their deformylation rates varied within a range of only one order of magnitude. A 3D model of the interaction of PDF with an inhibitor was then constructed and revealed indeed the occurrence of a deep and hydrophobic S1' pocket as well as the absence of a true S2' pocket. These analyses pointed out a set of possible interactions between deformylase and its substrates, which could be the ground driving substrate specificity. The validity of this enzyme:substrate docking was further probed with the help of a set of site-directed variants of the enzyme. From this, the importance of residues at the bottom of the S1' pocket (Ile128 and Leu125) as well as the hydrogen bond network that the main chain of the substrate makes with the enzyme were revealed. Based on the numerous homologies that deformylase displays with thermolysin and metzincins, a mechanism of enzyme:substrate recognition and hydrolysis could finally be proposed. Specific features of PDF with respect to other members of the enzymes with motif HEXXH are discussed.

摘要

通过测定大肠杆菌肽脱甲酰基酶切割通式为Fo-Xaa-Yaa-NH2的甲酰化肽的效率,研究了该酶的底物特异性,其中Xaa代表27种天然和非天然氨基酸,Yaa对应19种天然氨基酸。在P1'位置带有庞大疏水侧链的底物切割效率最高,其催化效率比带有极性或带电荷氨基酸侧链的底物高两到五个数量级。在疏水侧链中,与芳基烷基侧链相比,P1'位置更倾向于线性烷基。有趣的是,在直链烷基取代系列中,除了正亮氨酸外,脱甲酰基酶对P1'位置含有甲硫氨酸的底物表现出偏好。接下来,在合成了20种通式为Fo-Nle-Yaa-NH2的化合物后,研究了第二个侧链对催化作用的影响。它们的脱甲酰化速率仅在一个数量级范围内变化。然后构建了肽脱甲酰基酶与抑制剂相互作用的三维模型,结果确实显示存在一个深的疏水S1'口袋,且不存在真正意义上的S2'口袋。这些分析指出了脱甲酰基酶与其底物之间可能存在的一系列相互作用,这可能是决定底物特异性的基础。借助该酶的一组定点变体进一步探究了这种酶 - 底物对接的有效性。由此揭示了S1'口袋底部残基(Ile128和Leu125)以及底物主链与酶形成的氢键网络的重要性。基于肽脱甲酰基酶与嗜热菌蛋白酶和金属锌蛋白酶的众多同源性,最终提出了酶 - 底物识别和水解的机制。讨论了肽脱甲酰基酶相对于具有HEXXH基序的其他酶成员的特异性特征。

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