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氨基酸侧链诱导的 Zr(IV)取代的 Wells-Dawson 型多金属氧酸盐催化的肽水解选择性。

Amino acid side chain induced selectivity in the hydrolysis of peptides catalyzed by a Zr(IV)-substituted Wells-Dawson type polyoxometalate.

机构信息

KU Leuven, Department of Chemistry, Celestijnenlaan 200F, B-3001 Leuven, Belgium.

出版信息

Dalton Trans. 2013 Nov 21;42(43):15437-46. doi: 10.1039/c3dt51893k.

Abstract

In this paper the reactivity of K15H[Zr(α2-P2W17O61)2]·25H2O (1), a Zr(IV)-substituted Wells-Dawson polyoxometalate, is examined towards a series of Gly-Aa, Aa-Gly or Aa-Ser dipeptides, in which the nature and the size of the Aa amino acid side chain were varied. The rate of peptide bond hydrolysis, determined by (1)H NMR experiments, in Gly-Aa dipeptides is strongly dependent on the molecular volume and the chemical structure of the Aa side chain. When the volume of the aliphatic side chain of the Aa residue in Gly-Aa increased, a clear decrease in the hydrolysis rate was observed. Replacing one α-H in the C-terminal Gly residue of Gly-Gly by a methyl group (Gly-Ala) resulted in a 6-fold reactivity decrease, pointing towards the importance of steric factors for efficient peptide bond hydrolysis. The rate constants for peptide bond hydrolysis in Gly-Aa dipeptides at pD 5.0 and 60 °C ranged from 208.0 ± 15.6 × 10(-6) min(-1) for Gly-Ser to 5.0 ± 1.0 × 10(-6) min(-1) for Gly-Glu, reflecting the influence of the different nature of the amino acid side chains on the hydrolysis rate. Faster hydrolysis was observed for peptides containing Ser and Thr since the hydroxyl group in their side chain is able to facilitate amide bond hydrolysis by promoting an N→O acyl rearrangement. Peptides containing positively charged side chains at pD 5.0 show enhanced hydrolysis rates as a result of the secondary electrostatic interactions with the negatively charged surface of the polyoxometalate, which stabilize the peptide-polyoxometalate complex. A slow hydrolysis rate was observed for Gly-Glu, because of the preferential coordination of the carboxylate group in the side chain of Glu to Zr(IV), which prevents coordination of the peptide carbonyl group and its activation towards hydrolysis.

摘要

本文考察了 K15H[Zr(α2-P2W17O61)2]·25H2O(1),一种 Zr(IV)-取代的 Wells-Dawson 多金属氧酸盐,对一系列 Gly-Aa、Aa-Gly 或 Aa-Ser 二肽的反应性,其中 Aa 氨基酸侧链的性质和大小发生了变化。通过(1)H NMR 实验确定的肽键水解速率强烈依赖于 Aa 侧链的分子体积和化学结构。当 Gly-Aa 中二肽中 Aa 残基的脂肪族侧链体积增加时,水解速率明显下降。在 Gly-Gly 的 C 末端 Gly 残基中用一个甲基取代一个 α-H(Gly-Ala)导致反应性降低 6 倍,这表明对于有效的肽键水解,空间因素非常重要。在 pD 5.0 和 60°C 下,Gly-Aa 二肽中肽键水解的速率常数范围从 Gly-Ser 的 208.0 ± 15.6×10(-6) min(-1)到 Gly-Glu 的 5.0 ± 1.0×10(-6) min(-1),反映了氨基酸侧链不同性质对水解速率的影响。含有 Ser 和 Thr 的肽的水解速度更快,因为它们侧链中的羟基能够通过促进 N→O 酰基重排来促进酰胺键水解。在 pD 5.0 下,带正电荷侧链的肽由于与多金属氧酸盐带负电荷表面的次级静电相互作用,水解速率增强,这稳定了肽-多金属氧酸盐复合物。由于 Glu 侧链中的羧基基团优先与 Zr(IV)配位,阻止了肽羰基的配位及其对水解的活化,因此 Gly-Glu 的水解速度较慢。

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