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引用本文的文献

1
Hydration effects of heparin on antithrombin probed by osmotic stress.通过渗透应激探究肝素对抗凝血酶的水合作用。
Biophys J. 2002 Feb;82(2):1040-9. doi: 10.1016/S0006-3495(02)75463-5.
2
Are proteins well-packed?蛋白质包装良好吗?
Biophys J. 2001 Aug;81(2):751-66. doi: 10.1016/S0006-3495(01)75739-6.
3
Anatomy of protein pockets and cavities: measurement of binding site geometry and implications for ligand design.蛋白质口袋与腔的剖析:结合位点几何形状的测量及其对配体设计的影响
Protein Sci. 1998 Sep;7(9):1884-97. doi: 10.1002/pro.5560070905.

本文引用的文献

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Raising water to new heights.将水提升到新的高度。
Science. 1992 May 1;256(5057):618. doi: 10.1126/science.256.5057.618.
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Chemical complementation identifies a proton acceptor for redox-active tyrosine D in photosystem II.化学互补法鉴定出了光系统II中氧化还原活性酪氨酸D的质子受体。
Proc Natl Acad Sci U S A. 1997 Dec 23;94(26):14406-11. doi: 10.1073/pnas.94.26.14406.
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Computation of molecular electrostatics with boundary element methods.用边界元法计算分子静电学
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Solvent hydrogen-bond network in protein self-assembly: solvation of collagen triple helices in nonaqueous solvents.蛋白质自组装中的溶剂氢键网络:非水溶剂中胶原蛋白三螺旋的溶剂化作用
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The biostructural pathology of the serpins: critical function of sheet opening mechanism.丝氨酸蛋白酶抑制剂的生物结构病理学:片层开放机制的关键功能
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Packing at the protein-water interface.蛋白质 - 水界面处的堆积
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8
Mechanism of heparin activation of antithrombin. Evidence for reactive center loop preinsertion with expulsion upon heparin binding.抗凝血酶的肝素激活机制。肝素结合时反应中心环预插入并排出的证据。
Biochemistry. 1996 Jul 2;35(26):8495-503. doi: 10.1021/bi9604643.
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The automatic search for ligand binding sites in proteins of known three-dimensional structure using only geometric criteria.仅使用几何标准自动搜索已知三维结构蛋白质中的配体结合位点。
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抗凝血酶构象体的水合结构及反应性环插入过程中的水转移

Hydration structure of antithrombin conformers and water transfer during reactive loop insertion.

作者信息

Liang J, McGee M P

机构信息

National Center for Supercomputing Applications, University of Illinois at Urbana-Champaign, Urbana, Illinois 61807, USA.

出版信息

Biophys J. 1998 Aug;75(2):573-82. doi: 10.1016/S0006-3495(98)77548-4.

DOI:10.1016/S0006-3495(98)77548-4
PMID:9675160
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1299733/
Abstract

The serine protease inhibitor antithrombin undergoes extensive conformational changes during functional interaction with its target proteases. Changes include insertion of the reactive loop region into a beta-sheet structure in the protein core. We explore the possibility that these changes are linked to water transfer. Volumes of water transferred during inhibition of coagulation factor Xa are compared to water-permeable volumes in the x-ray structure of two different antithrombin conformers. In one conformer, the reactive loop is largely exposed to solvent, and in the other, the loop is inserted. Hydration fingerprints of antithrombin (that is, water-permeable pockets) are analyzed to determine their location, volume, and size of access pores, using alpha shape-based methods from computational geometry. Water transfer during reactions is calculated from changes in rate with osmotic pressure. Hydration fingerprints prove markedly different in the two conformers. There is an excess of 61-76 water molecules in loop-exposed as compared to loop-inserted conformers. Quantitatively, rate increases with osmotic pressure are consistent with the transfer of 73 +/- 7 water molecules. This study demonstrates that conformational changes of antithrombin, including loop insertion, are linked to water transfer from antithrombin to bulk solution. It also illustrates the combined use of osmotic stress and analytical geometry as a new and effective tool for structure/function studies.

摘要

丝氨酸蛋白酶抑制剂抗凝血酶在与其靶蛋白酶的功能相互作用过程中会发生广泛的构象变化。这些变化包括反应环区域插入到蛋白质核心的β-折叠结构中。我们探讨了这些变化与水转移相关的可能性。将凝血因子Xa抑制过程中转移的水量与两种不同抗凝血酶构象的X射线结构中的水可渗透体积进行比较。在一种构象中,反应环大部分暴露于溶剂中,而在另一种构象中,该环则插入其中。使用计算几何中基于α形状的方法分析抗凝血酶的水合指纹(即水可渗透口袋),以确定其位置、体积和通道孔的大小。根据速率随渗透压的变化计算反应过程中的水转移。两种构象的水合指纹明显不同。与环插入构象相比,环暴露构象中多余61 - 76个水分子。从数量上看,速率随渗透压的增加与73±7个水分子的转移一致。这项研究表明,抗凝血酶的构象变化,包括环插入,与水从抗凝血酶向本体溶液的转移有关。它还说明了渗透应激和解析几何的联合使用作为结构/功能研究的一种新的有效工具。