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Residue-Specific Annotation of Disorder-to-Order Transition and Cathepsin Inhibition of a Propeptide-Like Crammer from D. melanogaster

机译:D. melanogaster的类似肽Crammer的无序转换和组织蛋白酶抑制的残基特定注释。

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摘要

Drosophila melanogaster crammer is a novel cathepsin inhibitor involved in long-term memory formation. A molten globule-to-ordered structure transition is required for cathepsin inhibition. This study reports the use of alanine scanning to probe the critical residues in the two hydrophobic cores and the salt bridges of crammer in the context of disorder-to-order transition and cathepsin inhibition. Alanine substitution of the aromatic residues W9, Y12, F16, Y20, Y32, and W53 within the hydrophobic cores, and charged residues E8, R28, R29, and E67 in the salt bridges considerably decrease the ability of crammer to inhibit Drosophila cathepsin B (CTSB). Far-UV circular dichroism (CD), intrinsic fluorescence, and nuclear magnetic resonance (NMR) spectroscopies show that removing most of the aromatic and charged side-chains substantially reduces thermostability, alters pH-dependent helix formation, and disrupts the molten globule-to-ordered structure transition. Molecular modeling indicates that W53 in the hydrophobic Core 2 is essential for the interaction between crammer and the prosegment binding loop (PBL) of CTSB; the salt bridge between R28 and E67 is critical for the appropriate alignment of the α-helix 4 toward the CTSB active cleft. The results of this study show detailed residue-specific dissection of folding transition and functional contributions of the hydrophobic cores and salt bridges in crammer, which have hitherto not been characterized for cathepsin inhibition by propeptide-like cysteine protease inhibitors. Because of the involvements of cathepsin inhibitors in neurodegenerative diseases, these structural insights can serve as a template for further development of therapeutic inhibitors against human cathepsins.
机译:果蝇黑色素crammer是一种新型的组织蛋白酶抑制剂,参与长期记忆形成。组织蛋白酶抑制需要熔融的球状到有序的结构转变。这项研究报告了丙氨酸扫描在无序转移和组织蛋白酶抑制的背景下,用于探测两个疏水性核心和Crammer盐桥中的关键残基。丙氨酸取代疏水性核内的芳族残基W9,Y12,F16,Y20,Y32和W53,以及盐桥中带电的残基E8,R28,R29和E67大大降低了补体抑制果蝇组织蛋白酶B的能力( CTSB)。远紫外圆二色性(CD),固有荧光和核磁共振(NMR)光谱表明,除去大部分芳族和带电侧链会大大降低热稳定性,改变pH依赖性螺旋的形成并破坏熔融小球。有序结构转换。分子模型研究表明,疏水核2中的W53对于crammer和CTSB的前段结合环(PBL)之间的相互作用必不可少。 R28和E67之间的盐桥对于α螺旋4朝CTSB活动裂口的正确对准至关重要。这项研究的结果显示了折叠过渡的详细残基特异性剖析和补体中的疏水核心和盐桥的功能性贡献,迄今为止,尚未通过前肽样半胱氨酸蛋白酶抑制剂来抑制组织蛋白酶。由于组织蛋白酶抑制剂参与神经退行性疾病,这些结构见解可以作为进一步开发针对人类组织蛋白酶的治疗性抑制剂的模板。

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