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应用定点突变与分子模建方法研究蛋白酶抑制剂eglin C突变体对蛋白酶furin和kexin的抑制活力

机译:应用定点突变与分子模建方法研究蛋白酶抑制剂eglin C突变体对蛋白酶furin和kexin的抑制活力

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摘要

蛋白质前体加工酶参与许多重要蛋白质前体的加工成熟过程, 哺乳动物来源的furin和酵母中的kexin是该家族的重要成员. 首先人工合成了编码枯草杆菌蛋白酶抑制剂eglin C的基因片段, 组装后在大肠杆菌中得到表达. 以定点突变方法在野生型eglin C抑制活性中心的P1、P2和P4位引入碱性氨基酸残基可以将其改造为很强的furin抑制剂(Ki约10-9 mol/L), 和kexin抑制剂(Ki约10-11 mol/L). 同时根据枯草杆菌蛋白酶和eglin C复合物的晶体结构, 计算机同源模建了前体加工酶与eglin C突变体结构之间的相互作用, 并结合实验数据得到以下结果: (1) P1位引入的碱性残基是该抑制剂活力的前提; (2) P4位碱性残基的引入可以极大地提高抑制剂活力约两个数量级; (3) P2位的碱性残基将有效提高抑制剂的活力, 然而同时可以破坏抑制剂本身的稳定性; (4) 野生型P3位的疏水性残基参与抑制剂活性环附近疏水核心的构成.%Mammalian furin and yeast kexin are members of the proprotein conver tase family involved in the proteolytic processing of many important precursor p roteins. Here the gene coding for the subtilisin inhibitor eglin C was totally s ynthesized and expressed in E.coli. Substitution of residues at each pos iti on P1, P2 and P4 of eglin C with a basic residue using protein engineering could mak e eglin C a very strong inhibitor for furin (Ki around 10-9 mol/L), and even mo re strong for kexin (Ki around 10-11 mol/ L). Results indicated that : (1) A bas ic residue Lys or Arg at P1 site is prerequisite for the inhibitor. (2) The se co nd mutation with basic residue at P4 site drastically increase the inhibitory ac tivity by two orders of magnitude. (3) A basic residue at P2 site is favorable f or the binding to the enzyme, but unfavorable for the stability of the inhibitor , resulting in a temporary inhibition. (4) A hydrophobic residue is preferential at P3 site. Based on the known crystal structures of subtilisin and eglin C, th e interaction between the enzyme and inhibitor was modeled, and their involved r esidues were predicted which gave a good explanation to the experimental results .
机译:蛋白质前体加工酶参与许多重要蛋白质前体的加工成熟过程, 哺乳动物来源的furin和酵母中的kexin是该家族的重要成员. 首先人工合成了编码枯草杆菌蛋白酶抑制剂eglin C的基因片段, 组装后在大肠杆菌中得到表达. 以定点突变方法在野生型eglin C抑制活性中心的P1、P2和P4位引入碱性氨基酸残基可以将其改造为很强的furin抑制剂(Ki约10-9 mol/L), 和kexin抑制剂(Ki约10-11 mol/L). 同时根据枯草杆菌蛋白酶和eglin C复合物的晶体结构, 计算机同源模建了前体加工酶与eglin C突变体结构之间的相互作用, 并结合实验数据得到以下结果: (1) P1位引入的碱性残基是该抑制剂活力的前提; (2) P4位碱性残基的引入可以极大地提高抑制剂活力约两个数量级; (3) P2位的碱性残基将有效提高抑制剂的活力, 然而同时可以破坏抑制剂本身的稳定性; (4) 野生型P3位的疏水性残基参与抑制剂活性环附近疏水核心的构成.%Mammalian furin and yeast kexin are members of the proprotein conver tase family involved in the proteolytic processing of many important precursor p roteins. Here the gene coding for the subtilisin inhibitor eglin C was totally s ynthesized and expressed in E.coli. Substitution of residues at each pos iti on P1, P2 and P4 of eglin C with a basic residue using protein engineering could mak e eglin C a very strong inhibitor for furin (Ki around 10-9 mol/L), and even mo re strong for kexin (Ki around 10-11 mol/ L). Results indicated that : (1) A bas ic residue Lys or Arg at P1 site is prerequisite for the inhibitor. (2) The se co nd mutation with basic residue at P4 site drastically increase the inhibitory ac tivity by two orders of magnitude. (3) A basic residue at P2 site is favorable f or the binding to the enzyme, but unfavorable for the stability of the inhibitor , resulting in a temporary inhibition. (4) A hydrophobic residue is preferential at P3 site. Based on the known crystal structures of subtilisin and eglin C, th e interaction between the enzyme and inhibitor was modeled, and their involved r esidues were predicted which gave a good explanation to the experimental results .

著录项

  • 来源
    《生物化学与生物物理学报:英文版》 |2001年第6期|292-599|共308页
  • 作者单位

    中国科学院上海生物化学与细胞生物学研究所分子生物学国家重点实验室;

    上海 200031;

    中国科学院上海生物化学与细胞生物学研究所分子生物学国家重点实验室;

    上海 200031;

    中国科学院上海生物化学与细胞生物学研究所;

    上海 200031;

    中国科学院上海生物化学与细胞生物学研究所;

    上海 200031;

    中国科学院上海生物化学与细胞生物学研究所分子生物学国家重点实验室;

    上海 200031;

  • 收录信息 北京大学中文核心期刊目录(北大核心);中国科学引文数据库(CSCD);中国科技论文与引文数据库(CSTPCD);
  • 原文格式 PDF
  • 正文语种 chi
  • 中图分类 生物化学;
  • 关键词

    蛋白质前体加工酶; 蛋白酶抑制剂; 定点突变; 分子模建;

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