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活性位点肽键的重新合成与链霉菌金属蛋白酶抑制剂的暂时抑制

Resynthesis of reactive site peptide bond and temporary inhibition of Streptomyces metalloproteinase inhibitor.

作者信息

Seeram S S, Hiraga K, Oda K

机构信息

Department of Applied Biology, Faculty of Textile Science, Kyoto Institute of Technology.

出版信息

J Biochem. 1997 Oct;122(4):788-94. doi: 10.1093/oxfordjournals.jbchem.a021824.

DOI:10.1093/oxfordjournals.jbchem.a021824
PMID:9399583
Abstract

Streptomyces metalloproteinase inhibitor (SMPI) is a small proteinaceous inhibitor which inhibits metalloproteinases such as thermolysin (Ki =1.14 x 10(-10) M). When incubated with the enzyme, it is gradually hydrolyzed at the Cys64-Val65 peptide bond, which was identified as the reactive site by mutational analysis. To achieve a further understanding of the inhibition mechanism, we attempted to resynthesize the cleaved reactive site by using the enzyme catalytic action. The native inhibitor was resynthesized from the modified inhibitor (Ki =2.18 x 10(-8) M) by incubation with a catalytic amount of thermolysin under the same conditions as used for hydrolysis (pH 7.5, 25 degrees C), suggesting that SMPI follows the standard mechanism of inhibition of serine proteinase inhibitors. Temporary inhibition was observed when the native inhibitor and thermolysin were incubated at a 1:100 (mol/mol) enzyme-inhibitor ratio at 37 degrees C. SMPI showed temporary inhibition towards all the enzymes it inhibited. The inhibitory spectrum of SMPI was analyzed with various metalloproteinases based on the Ki values and limited proteolysis patterns. Pseudomonas elastase and Streptomyces griseus metalloproteinase II formed more stable complexes and showed much lower Ki values (approximately 2 pM) than thermolysin. In the limited proteolysis experiments weak inhibitors were degraded by the enzymes. SMPI did not inhibit almelysin, Streptomyces caespitosus neutral proteinase or matrix metalloproteinases. SMPI specifically inhibits metalloproteinases which are sensitive to phosphoramidon.

摘要

链霉菌金属蛋白酶抑制剂(SMPI)是一种小蛋白质抑制剂,可抑制诸如嗜热菌蛋白酶之类的金属蛋白酶(Ki = 1.14×10⁻¹⁰ M)。与该酶一起温育时,它在Cys64-Val65肽键处逐渐水解,通过突变分析确定该肽键为反应位点。为了进一步了解抑制机制,我们尝试利用酶催化作用重新合成裂解的反应位点。通过在与水解相同的条件下(pH 7.5,25℃)与催化量的嗜热菌蛋白酶一起温育,从修饰后的抑制剂(Ki = 2.18×10⁻⁸ M)重新合成了天然抑制剂,这表明SMPI遵循丝氨酸蛋白酶抑制剂的标准抑制机制。当天然抑制剂和嗜热菌蛋白酶在37℃以1:100(mol/mol)的酶-抑制剂比例温育时,观察到暂时抑制作用。SMPI对其抑制的所有酶均表现出暂时抑制作用。基于Ki值和有限的蛋白水解模式,用各种金属蛋白酶分析了SMPI的抑制谱。铜绿假单胞菌弹性蛋白酶和灰色链霉菌金属蛋白酶II形成更稳定的复合物,并且与嗜热菌蛋白酶相比显示出低得多的Ki值(约2 pM)。在有限的蛋白水解实验中,弱抑制剂被酶降解。SMPI不抑制阿美菌素、丛生链霉菌中性蛋白酶或基质金属蛋白酶。SMPI特异性抑制对磷酰胺敏感的金属蛋白酶。

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