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本文引用的文献

1
Prolyl endopeptidase-mediated destruction of T cell epitopes in whole gluten: chemical and immunological characterization.脯氨酰内肽酶介导的全谷蛋白中T细胞表位的破坏:化学和免疫学特性分析
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2
Comparative biochemical analysis of three bacterial prolyl endopeptidases: implications for coeliac sprue.三种细菌脯氨酰内肽酶的比较生化分析:对乳糜泻的影响
Biochem J. 2004 Oct 15;383(Pt 2):311-8. doi: 10.1042/BJ20040907.
3
Concerted structural changes in the peptidase and the propeller domains of prolyl oligopeptidase are required for substrate binding.脯氨酰寡肽酶的肽酶结构域和螺旋桨结构域发生协同结构变化是底物结合所必需的。
J Mol Biol. 2004 Jul 9;340(3):627-37. doi: 10.1016/j.jmb.2004.05.011.
4
Crystal structure of human dipeptidyl peptidase IV in complex with a decapeptide reveals details on substrate specificity and tetrahedral intermediate formation.人二肽基肽酶IV与十肽复合物的晶体结构揭示了底物特异性和四面体中间体形成的细节。
Protein Sci. 2004 Feb;13(2):412-21. doi: 10.1110/ps.03460604. Epub 2004 Jan 10.
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Structural basis of proline-specific exopeptidase activity as observed in human dipeptidyl peptidase-IV.人二肽基肽酶-IV中脯氨酸特异性外肽酶活性的结构基础。
Structure. 2003 Aug;11(8):947-59. doi: 10.1016/s0969-2126(03)00160-6.
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Multiparametric scaling of diffraction intensities.衍射强度的多参数标度
Acta Crystallogr A. 2003 May;59(Pt 3):228-34. doi: 10.1107/s0108767303005488. Epub 2003 Apr 25.
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Structural basis for gluten intolerance in celiac sprue.乳糜泻中麸质不耐受的结构基础。
Science. 2002 Sep 27;297(5590):2275-9. doi: 10.1126/science.1074129.
8
Intestinal digestive resistance of immunodominant gliadin peptides.免疫显性麦醇溶蛋白肽的肠道消化抗性
Am J Physiol Gastrointest Liver Physiol. 2002 Oct;283(4):G996-G1003. doi: 10.1152/ajpgi.00136.2002.
9
The prolyl oligopeptidase family.脯氨酰寡肽酶家族。
Cell Mol Life Sci. 2002 Feb;59(2):349-62. doi: 10.1007/s00018-002-8427-5.
10
Kinetic and mechanistic studies of prolyl oligopeptidase from the hyperthermophile Pyrococcus furiosus.嗜热栖热菌脯氨酰寡肽酶的动力学和机制研究
J Biol Chem. 2001 Jun 1;276(22):19310-7. doi: 10.1074/jbc.M010489200. Epub 2001 Feb 20.

两种脯氨酰内肽酶的结构与机制分析:结构域间动力学在催化作用及特异性中的作用

Structural and mechanistic analysis of two prolyl endopeptidases: role of interdomain dynamics in catalysis and specificity.

作者信息

Shan Lu, Mathews Irimpan I, Khosla Chaitan

机构信息

Department of Chemical Engineering, Stanford University, Stanford, CA 94305, USA.

出版信息

Proc Natl Acad Sci U S A. 2005 Mar 8;102(10):3599-604. doi: 10.1073/pnas.0408286102. Epub 2005 Feb 28.

DOI:10.1073/pnas.0408286102
PMID:15738423
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC553306/
Abstract

Prolyl endopeptidases (PEPs) are a unique class of serine proteases with considerable therapeutic potential for the treatment of celiac sprue. The crystal structures of two didomain PEPs have been solved in alternative configurations, thereby providing insights into the mode of action of these enzymes. The structure of the Sphingomonas capsulata PEP, solved and refined to 1.8-A resolution, revealed an open configuration of the active site. In contrast, the inhibitor-bound PEP from Myxococcus xanthus was crystallized (1.5-A resolution) in a closed form. Comparative analysis of the two structures highlights a critical role for the domain interface in regulating interdomain dynamics and substrate specificity. Structure-based mutagenesis of the M. xanthus PEP confirms an important role for several interfacial residues. A salt bridge between Arg-572 and Asp-196/Glu-197 appears to act as a latch for opening or closing the didomain enzyme, and Arg-572 and Ile-575 may also help secure the incoming peptide substrate to the open form of the enzyme. Arg-618 and Asp-145 are responsible for anchoring the invariant proline residue in the active site of this postproline-cleaving enzyme. A model is proposed for the docking of a representative substrate PQPQLPYPQPQLP in the active site, where the N-terminal substrate residues interact extensively with the catalytic domain, and the C-terminal residues stretch into the propeller domain. Given the promise of the M. xanthus PEP as an oral therapeutic enzyme for treating celiac sprue, our results provide a strong foundation for further optimization of the PEP's clinically useful features.

摘要

脯氨酰内肽酶(PEPs)是一类独特的丝氨酸蛋白酶,在治疗乳糜泻方面具有巨大的治疗潜力。两种双结构域PEPs的晶体结构已通过不同构型解析出来,从而为深入了解这些酶的作用方式提供了线索。嗜水气单胞菌PEP的结构已解析并精修至1.8埃分辨率,显示出活性位点的开放构型。相比之下,来自黄色粘球菌的抑制剂结合型PEP以封闭形式结晶(1.5埃分辨率)。对这两种结构的比较分析突出了结构域界面在调节结构域间动力学和底物特异性方面的关键作用。基于结构的黄色粘球菌PEP诱变证实了几个界面残基的重要作用。Arg-572与Asp-196/Glu-197之间的盐桥似乎充当打开或关闭双结构域酶的闩锁,Arg-572和Ile-575也可能有助于将进入的肽底物固定到酶的开放形式上。Arg-618和Asp-145负责将不变的脯氨酸残基锚定在这种脯氨酸后切割酶的活性位点中。提出了一个代表性底物PQPQLPYPQPQLP在活性位点对接的模型,其中底物的N端残基与催化结构域广泛相互作用,C端残基延伸到螺旋桨结构域中。鉴于黄色粘球菌PEP作为治疗乳糜泻的口服治疗酶的前景,我们的结果为进一步优化PEP的临床有用特性提供了坚实的基础。