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本文引用的文献

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The program XEASY for computer-supported NMR spectral analysis of biological macromolecules.用于生物大分子的计算机支持的 NMR 光谱分析的 XEASY 程序。
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Sliding helix and change of coordination geometry in a model di-MnII protein.模型二价锰蛋白中的滑动螺旋与配位几何结构变化
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X-ray crystal structures of reduced rubrerythrin and its azide adduct: a structure-based mechanism for a non-heme diiron peroxidase.还原型红藓红素及其叠氮化物加合物的X射线晶体结构:非血红素二铁过氧化物酶的基于结构的作用机制
J Am Chem Soc. 2002 Aug 21;124(33):9845-55. doi: 10.1021/ja026587u.
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Dioxygen Activation by Enzymes Containing Binuclear Non-Heme Iron Clusters.含双核非血红素铁簇的酶对双氧的激活作用
Chem Rev. 1996 Nov 7;96(7):2625-2658. doi: 10.1021/cr9500489.
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Structural and Functional Aspects of Metal Sites in Biology.生物学中金属位点的结构与功能方面
Chem Rev. 1996 Nov 7;96(7):2239-2314. doi: 10.1021/cr9500390.
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Toward the de novo design of a catalytically active helix bundle: a substrate-accessible carboxylate-bridged dinuclear metal center.迈向具有催化活性的螺旋束的从头设计:一个底物可及的羧酸盐桥联双核金属中心。
J Am Chem Soc. 2001 Dec 26;123(51):12749-57. doi: 10.1021/ja010506x.
8
Dioxygen Activation and Methane Hydroxylation by Soluble Methane Monooxygenase: A Tale of Two Irons and Three Proteins A list of abbreviations can be found in Section 7.可溶性甲烷单加氧酶催化的双加氧激活与甲烷羟基化:两个铁原子与三种蛋白质的故事 缩略词列表见第7节。
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9
Crystal structures of the soluble methane monooxygenase hydroxylase from Methylococcus capsulatus (Bath) demonstrating geometrical variability at the dinuclear iron active site.来自荚膜甲基球菌(巴斯)的可溶性甲烷单加氧酶羟化酶的晶体结构,展示了双核铁活性位点的几何变异性。
J Am Chem Soc. 2001 Feb 7;123(5):827-38. doi: 10.1021/ja003240n.
10
Proton and metal ion-dependent assembly of a model diiron protein.一种模型双铁蛋白的质子和金属离子依赖性组装
Protein Sci. 2001 May;10(5):958-69. doi: 10.1110/ps.52101.

设计的双铁蛋白中分子结合位点的预组织

Preorganization of molecular binding sites in designed diiron proteins.

作者信息

Maglio Ornella, Nastri Flavia, Pavone Vincenzo, Lombardi Angela, DeGrado William F

机构信息

Department of Chemistry, University of Napoli Federico II, Complesso Universitario Monte S. Angelo, I-80126 Napoli, Italy.

出版信息

Proc Natl Acad Sci U S A. 2003 Apr 1;100(7):3772-7. doi: 10.1073/pnas.0730771100. Epub 2003 Mar 24.

DOI:10.1073/pnas.0730771100
PMID:12655072
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC152997/
Abstract

De novo protein design provides an attractive approach to critically test the features that are required for metalloprotein structure and function. Previously we designed and crystallographically characterized an idealized dimeric model for the four-helix bundle class of diiron and dimanganese proteins [Dueferri 1 (DF1)]. Although the protein bound metal ions in the expected manner, access to its active site was blocked by large bulky hydrophobic residues. Subsequently, a substrate-access channel was introduced proximal to the metal-binding center, resulting in a protein with properties more closely resembling those of natural enzymes. Here we delineate the energetic and structural consequences associated with the introduction of these binding sites. To determine the extent to which the binding site was preorganized in the absence of metal ions, the apo structure of DF1 in solution was solved by NMR and compared with the crystal structure of the di-Zn(II) derivative. The overall fold of the apo protein was highly similar to that of the di-Zn(II) derivative, although there was a rotation of one of the helices. We also examined the thermodynamic consequences associated with building a small molecule-binding site within the protein. The protein exists in an equilibrium between folded dimers and unfolded monomers. DF1 is a highly stable protein (K(diss) = 0.001 fM), but the dissociation constant increases to 0.6 nM (deltadeltaG = 5.4 kcalmol monomer) as the active-site cavity is increased to accommodate small molecules.

摘要

从头蛋白质设计为严格测试金属蛋白结构和功能所需的特征提供了一种有吸引力的方法。此前,我们设计并通过晶体学表征了二铁和二锰蛋白的四螺旋束类理想化二聚体模型[Dueferri 1 (DF1)]。尽管该蛋白以预期方式结合金属离子,但其活性位点被大的疏水性残基阻断。随后,在金属结合中心附近引入了一个底物通道,得到了一种性质更接近天然酶的蛋白。在此,我们描述了与引入这些结合位点相关的能量和结构后果。为了确定在没有金属离子的情况下结合位点预先形成的程度,通过核磁共振解析了溶液中DF1的脱辅基结构,并与二锌(II)衍生物的晶体结构进行了比较。尽管其中一个螺旋发生了旋转,但脱辅基蛋白的整体折叠与二锌(II)衍生物高度相似。我们还研究了在蛋白内部构建小分子结合位点所带来的热力学后果。该蛋白存在于折叠二聚体和未折叠单体之间的平衡状态。DF1是一种高度稳定的蛋白(解离常数K(diss)=0.001 fM),但随着活性位点腔增大以容纳小分子,解离常数增加到0.6 nM(ΔΔG = 5.4 kcal/mol单体)。