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来自布氏蛙的一种强效枯草杆菌蛋白酶抑制剂的结构、功能及突变研究

Structural, Functional, and Mutational Studies of a Potent Subtilisin Inhibitor from Budgett's Frog, .

作者信息

Rami Mihir, Shafique Mohd, Sarma Siddhartha P

机构信息

Molecular Biophysics Unit, Indian Institute of Science, Bangalore, Karnataka 560012, India.

出版信息

Biochemistry. 2023 Oct 17;62(20):2952-2969. doi: 10.1021/acs.biochem.3c00252. Epub 2023 Oct 5.

DOI:10.1021/acs.biochem.3c00252
PMID:37796763
Abstract

Subtilases play a significant role in microbial pathogen infections by degrading the host proteins. Subtilisin inhibitors are crucial in fighting against these harmful microorganisms. LL-TIL, from skin secretions of , is a cysteine-rich peptide belonging to the I8 family of inhibitors. Protease inhibitory assays demonstrated that LL-TIL acts as a slow-tight binding inhibitor of subtilisin Carlsberg and proteinase K with inhibition constants of 91 pM and 2.4 nM, respectively. The solution structures of LL-TIL and a mutant peptide reveal that they adopt a typical TIL-type fold with a canonical conformation of a reactive site loop (RSL). The structure of the LL-TIL-subtilisin complex and molecular dynamics (MD) simulations provided an in-depth view of the structural basis of inhibition. NMR relaxation data and molecular dynamics simulations indicated a rigid conformation of RSL, which does not alter significantly upon subtilisin binding. The energy calculation for subtilisin inhibition predicted Ile as the highest contributor to the binding energy, which was confirmed experimentally by site-directed mutagenesis. A chimeric mutant of LL-TIL broadened the inhibitory profile and attenuated subtilisin inhibition by 2 orders of magnitude. These results provide a template to engineer more specific and potent TIL-type subtilisin inhibitors.

摘要

枯草杆菌蛋白酶在微生物病原体感染过程中通过降解宿主蛋白发挥重要作用。枯草杆菌蛋白酶抑制剂在对抗这些有害微生物方面至关重要。来自[具体来源]皮肤分泌物的LL-TIL是一种富含半胱氨酸的肽,属于I8家族抑制剂。蛋白酶抑制试验表明,LL-TIL作为枯草杆菌蛋白酶卡尔伯格和蛋白酶K的慢紧密结合抑制剂,抑制常数分别为91 pM和2.4 nM。LL-TIL及其突变肽的溶液结构表明,它们采用典型的TIL型折叠,具有反应位点环(RSL)的典型构象。LL-TIL-枯草杆菌蛋白酶复合物的结构和分子动力学(MD)模拟提供了抑制作用结构基础的深入视图。核磁共振弛豫数据和分子动力学模拟表明RSL具有刚性构象,在枯草杆菌蛋白酶结合后不会显著改变。枯草杆菌蛋白酶抑制的能量计算预测异亮氨酸是结合能的最大贡献者,这通过定点诱变实验得到证实。LL-TIL的嵌合突变体拓宽了抑制谱,并使枯草杆菌蛋白酶抑制作用减弱了2个数量级。这些结果为设计更特异、更有效的TIL型枯草杆菌蛋白酶抑制剂提供了模板。

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