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Homology Modeling Study of Bovine μ-Calpain Inhibitor-Binding Domains

机译:牛μ钙蛋白酶抑制剂结合域的同源性建模研究

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The activated mammalian CAPN-structures, the CAPN/CAST complex in particular, have become an invaluable target model using the structure-based virtual screening of drug candidates from the discovery phase to development for over-activated CAPN linked to several diseases, such as post-ischemic injury and cataract formation. The effect of Ca2+-binding to the enzyme is thought to include activation, as well as the dissociation, aggregation, and autolysis of small regular subunits. Unfortunately, the Ca2+-activated enzyme tends to aggregate when provided as a divalent ion at the high-concentration required for the protease crystallization. This is also makes it very difficult to crystallize the whole-length enzyme itself, as well as the enzyme-inhibitor complex. Several parameters that influence CAPN activity have been investigated to determine its roles in Ca2+-modulation, autoproteolysis, phosphorylation, and intracellular distribution and inhibition by its endogenous inhibitor CAST. CAST binds and inhibits CAPN via its CAPN-inhibitor domains (four repeating domains 1–4; CAST1–4) when CAPN is activated by Ca2+-binding. An important key to understanding CAPN1 inhibition by CAST is to determine how CAST interacts at the molecular level with CAPN1 to inhibit its protease activity. In this study, a 3D structure model of a CAPN1 bound bovine CAST4 complex was built by comparative modeling based on the only known template structure of a rat CAPN2/CAST4 complex. The complex model suggests certain residues of bovine CAST4, notably, the TIPPKYQ motif sequence, and the structural elements of these residues, which are important for CAPN1 inhibition. In particular, as CAST4 docks near the flexible active site of CAPN1, conformational changes at the interaction site after binding could be directly related to CAST4 inhibitory activity. These functional interfaces can serve as a guide to the site-mutagenesis in research on bovine CAPN1 structure-function relationships for the design of small molecules inhibitors to prevent uncontrolled and unspecific degradation in the proteolysis of key protease substrates.
机译:活化的哺乳动物CAPN结构(尤其是CAPN / CAST复合体)已成为一种宝贵的靶模型,使用从发现阶段到开发过程的基于结构的虚拟候选药物虚拟筛选,用于与多种疾病(如后期疾病)相关的过度活化的CAPN。 -缺血性损伤和白内障形成。 Ca 2 + 与酶的结合作用被认为包括激活,以及小的规则亚基的解离,聚集和自溶。不幸的是,当以二价离子形式提供的Ca 2+活化酶在蛋白酶结晶所需的高浓度下趋于聚集。这也使得很难使全长酶本身以及酶-抑制剂复合物结晶。研究了一些影响CAPN活性的参数,以确定其在Ca 2 + 调节,自蛋白水解,磷酸化以及细胞内分布和内源性抑制剂CAST抑制作用中的作用。当CA 2 + 结合激活CAPN时,CAST通过其CAPN抑制剂域(四个重复域1-4; CAST1-4)结合并抑制CAPN。了解CAST对CAPN1抑制的一个重要关键是确定CAST在分子水平上如何与CAPN1相互作用以抑制其蛋白酶活性。在这项研究中,基于大鼠CAPN2 / CAST4复合物唯一已知的模板结构,通过比较建模建立了CAPN1结合的牛CAST4复合物的3D结构模型。复杂的模型表明了牛CAST4的某些残基,特别是TIPPKYQ基序序列,以及这些残基的结构元素,这对CAPN1抑制很重要。特别是,由于CAST4停靠在CAPN1的柔性活性位点附近,因此结合后相互作用位点的构象变化可能与CAST4抑制活性直接相关。这些功能性接口可作为牛CAPN1结构-功能关系研究中位点诱变的指导,用于小分子抑制剂的设计,以防止关键蛋白酶底物的蛋白水解中不受控制和非特异性的降解。

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