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组织激肽释放酶家族成员大鼠激肽释放酶rK9的同源性建模:对底物特异性和抑制剂结合的影响。

Homology modelling of rat kallikrein rK9, a member of the tissue kallikrein family: implications for substrate specificity and inhibitor binding.

作者信息

Moreau T, Gauthier F

机构信息

Laboratory of Enzymology and Protein Chemistry, CNRS URA 1334, University François Rabelais, Tours, France.

出版信息

Protein Eng. 1996 Nov;9(11):987-95. doi: 10.1093/protein/9.11.987.

Abstract

The rat kallikrein rK9 is one of the six members of the rat tissue kallikrein family isolated to date. It is 84% identical to rK2 (tonin), and both proteinases are thought to have vasoconstrictive properties. Recently we have shown that rK9 and rK2 have distinct substrate specificities and sensitivities to inhibitors, despite their similar sequences. Unlike all other mammalian kallikrein-related proteinases, rK9 is resistant to inhibition by aprotinin. We have developed a 3-D model of rK9, based on the known X-ray structures of rK2, porcine kallikrein and bovine trypsin, to identify the structural features underlying this functional diversity. The final rK9 model is structurally similar to rK2, but variable regions surrounding the active site differ quite markedly from the reference proteins. The kallikrein loop, which differs from that in porcine kallikrein by a seven-residue insertion, has been generated de novo and subjected to simulated annealing to assess its influence on the restricted substrate specificity of these proteinases. The proposed conformation of the specificity pocket in rK9 differs from that of other serine proteinases, but it can still accommodate both aromatic and basic amino acid side chains at the substrate P1 position, thus explaining the dual chymotrypsin and trypsin-like activity of rK9. The electrostatic potentials of rK9 and aprotinin were calculated using the finite difference Poisson-Boltzmann method. They indicated a large positive region near the active site of rK9 not found in related proteinases because of positively charged residues at positions 61 and 65 in rK9. They generate a positive region, which overlaps a positive region in aprotinin, and may prevent aprotinin binding. A single mutation in aprotinin is suggested that might allow kallikrein rK9 inhibition by aprotinin. This model contributes significantly to our understanding of the structure-function relationships among proteinases of the tissue kallikrein family.

摘要

大鼠激肽释放酶rK9是迄今为止分离出的大鼠组织激肽释放酶家族的六个成员之一。它与rK2(托宁)有84%的同源性,并且这两种蛋白酶都被认为具有血管收缩特性。最近我们发现,尽管rK9和rK2序列相似,但它们对底物的特异性和对抑制剂的敏感性却截然不同。与所有其他哺乳动物激肽释放酶相关蛋白酶不同,rK9对抑肽酶具有抗性。我们基于rK2、猪激肽释放酶和牛胰蛋白酶已知的X射线结构,构建了rK9的三维模型,以确定这种功能多样性背后的结构特征。最终的rK9模型在结构上与rK2相似,但活性位点周围的可变区域与参考蛋白有明显差异。激肽释放酶环与猪激肽释放酶的激肽释放酶环相比,有一个七残基插入,该环是重新生成的,并经过模拟退火处理,以评估其对这些蛋白酶受限底物特异性的影响。rK9中特异性口袋的推测构象与其他丝氨酸蛋白酶不同,但它仍能在底物P1位置容纳芳香族和碱性氨基酸侧链,从而解释了rK9的双重糜蛋白酶样和胰蛋白酶样活性。使用有限差分泊松-玻尔兹曼方法计算了rK9和抑肽酶的静电势。结果表明,由于rK9中61位和65位的带正电残基,在相关蛋白酶中未发现的rK9活性位点附近有一个大的正电区域。它们产生一个正电区域,该区域与抑肽酶中的一个正电区域重叠,并可能阻止抑肽酶结合。有人提出在抑肽酶中进行单个突变,可能会使抑肽酶抑制激肽释放酶rK9。该模型对我们理解组织激肽释放酶家族蛋白酶之间的结构-功能关系有很大帮助。

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