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1
Plasticity of quaternary structure: twenty-two ways to form a LacI dimer.四级结构的可塑性:形成LacI二聚体的22种方式。
Protein Sci. 2001 Feb;10(2):262-76. doi: 10.1110/ps.35801.
2
Genetic studies of the lac repressor. XIV. Analysis of 4000 altered Escherichia coli lac repressors reveals essential and non-essential residues, as well as "spacers" which do not require a specific sequence.乳糖阻遏物的遗传学研究。十四。对4000种改变的大肠杆菌乳糖阻遏物的分析揭示了必需和非必需残基,以及不需要特定序列的“间隔区”。
J Mol Biol. 1994 Jul 29;240(5):421-33. doi: 10.1006/jmbi.1994.1458.
3
Fine-tuning function: correlation of hinge domain interactions with functional distinctions between LacI and PurR.微调功能:铰链结构域相互作用与LacI和PurR之间功能差异的相关性。
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4
Parallel evolution of ligand specificity between LacI/GalR family repressors and periplasmic sugar-binding proteins.LacI/GalR家族阻遏蛋白与周质糖结合蛋白之间配体特异性的平行进化。
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Functional consequences of exchanging domains between LacI and PurR are mediated by the intervening linker sequence.LacI和PurR之间结构域交换的功能后果由中间的连接子序列介导。
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Subdividing repressor function: DNA binding affinity, selectivity, and allostery can be altered by amino acid substitution of nonconserved residues in a LacI/GalR homologue.阻遏物功能的细分:LacI/GalR同源物中非保守残基的氨基酸替换可改变DNA结合亲和力、选择性和变构效应。
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Dimerisation mutants of Lac repressor. II. A single amino acid substitution, D278L, changes the specificity of dimerisation.乳糖阻遏蛋白的二聚化突变体。II. 单个氨基酸取代,D278L,改变二聚化特异性。
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Conformational changes of ribose-binding protein and two related repressors are tailored to fit the functional need.核糖结合蛋白及两种相关阻遏物的构象变化是为适应功能需求而量身定制的。
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Experimental identification of specificity determinants in the domain linker of a LacI/GalR protein: bioinformatics-based predictions generate true positives and false negatives.LacI/GalR蛋白结构域连接区特异性决定因素的实验鉴定:基于生物信息学的预测产生真阳性和假阴性结果。
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Price of disorder in the lac repressor hinge helix.乳糖阻遏物铰链螺旋中无序状态的代价。
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本文引用的文献

1
An amino-terminal fragment of lac repressor binds specifically to lac operator.乳糖阻遏物的氨基端片段特异性结合乳糖操纵基因。
Proc Natl Acad Sci U S A. 1978 Dec;75(12):5851-4. doi: 10.1073/pnas.75.12.5851.
2
Strengthening the dimerisation interface of Lac repressor increases its thermostability by 40 deg. C.增强乳糖阻遏物的二聚化界面可将其热稳定性提高40摄氏度。
J Mol Biol. 2000 Jun 9;299(3):805-12. doi: 10.1006/jmbi.2000.3706.
3
A closer view of the conformation of the Lac repressor bound to operator.结合到操纵基因上的乳糖阻遏物构象的特写视图。
Nat Struct Biol. 2000 Mar;7(3):209-14. doi: 10.1038/73317.
4
Relieving repression.缓解抑制。
Nat Struct Biol. 2000 Mar;7(3):184-7. doi: 10.1038/73274.
5
Dimerisation mutants of Lac repressor. II. A single amino acid substitution, D278L, changes the specificity of dimerisation.乳糖阻遏蛋白的二聚化突变体。II. 单个氨基酸取代,D278L,改变二聚化特异性。
J Mol Biol. 2000 Feb 18;296(2):673-84. doi: 10.1006/jmbi.1999.3469.
6
Conformational changes of ribose-binding protein and two related repressors are tailored to fit the functional need.核糖结合蛋白及两种相关阻遏物的构象变化是为适应功能需求而量身定制的。
J Mol Biol. 1999 Nov 26;294(2):487-99. doi: 10.1006/jmbi.1999.3271.
7
Dimerisation mutants of Lac repressor. I. A monomeric mutant, L251A, that binds Lac operator DNA as a dimer.乳糖阻遏物的二聚化突变体。I. 一种单体突变体L251A,它作为二聚体结合乳糖操纵基因DNA。
J Mol Biol. 1999 Jul 16;290(3):653-66. doi: 10.1006/jmbi.1999.2902.
8
Substitutions at histidine 74 and aspartate 278 alter ligand binding and allostery in lactose repressor protein.组氨酸74和天冬氨酸278处的替换改变了乳糖阻遏蛋白中的配体结合和变构作用。
Biochemistry. 1999 Mar 23;38(12):3579-90. doi: 10.1021/bi982577n.
9
Structure of D-allose binding protein from Escherichia coli bound to D-allose at 1.8 A resolution.大肠杆菌中与D-阿洛糖结合的D-阿洛糖结合蛋白在1.8埃分辨率下的结构。
J Mol Biol. 1999 Mar 12;286(5):1519-31. doi: 10.1006/jmbi.1999.2571.
10
Contemporary approaches to protein structure classification.蛋白质结构分类的当代方法。
Bioessays. 1998 Nov;20(11):884-91. doi: 10.1002/(SICI)1521-1878(199811)20:11<884::AID-BIES3>3.0.CO;2-H.

四级结构的可塑性:形成LacI二聚体的22种方式。

Plasticity of quaternary structure: twenty-two ways to form a LacI dimer.

作者信息

Swint-Kruse L, Elam C R, Lin J W, Wycuff D R, Shive Matthews K

机构信息

The W. M. Keck Center for Computational Biology, Rice University, Houston, Texas 77005, USA.

出版信息

Protein Sci. 2001 Feb;10(2):262-76. doi: 10.1110/ps.35801.

DOI:10.1110/ps.35801
PMID:11266612
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2373939/
Abstract

The repressor proteins of the LacI/GalR family exhibit significant similarity in their secondary and tertiary structures despite less than 35% identity in their primary sequences. Furthermore, the core domains of these oligomeric repressors, which mediate dimerization, are homologous with the monomeric periplasmic binding proteins, extending the issue of plasticity to quaternary structure. To elucidate the determinants of assembly, a structure-based alignment has been created for three repressors and four periplasmic binding proteins. Contact maps have also been constructed for the three repressor interfaces to distinguish any conserved interactions. These analyses show few strict requirements for assembly of the core N-subdomain interface. The interfaces of repressor core C-subdomains are well conserved at the structural level, and their primary sequences differ significantly from the monomeric periplasmic binding proteins at positions equivalent to LacI 281 and 282. However, previous biochemical and phenotypic analyses indicate that LacI tolerates many mutations at 281. Mutations at LacI 282 were shown to abrogate assembly, but for Y282D this could be compensated by a second-site mutation in the core N-subdomain at K84 to L or A. Using the link between LacI assembly and function, we have further identified 22 second-site mutations that compensate the Y282D dimerization defect in vivo. The sites of these mutations fall into several structural regions, each of which may influence assembly by a different mechanism. Thus, the 360-amino acid scaffold of LacI allows plasticity of its quaternary structure. The periplasmic binding proteins may require only minimal changes to facilitate oligomerization similar to the repressor proteins.

摘要

LacI/GalR家族的阻遏蛋白在二级和三级结构上表现出显著的相似性,尽管其一级序列的同源性不到35%。此外,这些寡聚阻遏蛋白的核心结构域介导二聚化,与单体周质结合蛋白同源,这将可塑性问题扩展到四级结构。为了阐明组装的决定因素,已为三种阻遏蛋白和四种周质结合蛋白创建了基于结构的比对。还构建了三种阻遏蛋白界面的接触图,以区分任何保守的相互作用。这些分析表明,核心N亚结构域界面的组装几乎没有严格要求。阻遏蛋白核心C亚结构域的界面在结构水平上保守性良好,其一级序列在与LacI 281和282等效的位置上与单体周质结合蛋白有显著差异。然而,先前的生化和表型分析表明,LacI在281位点耐受许多突变。LacI 282位点的突变被证明会消除组装,但对于Y282D,这可以通过核心N亚结构域中K84位点的第二位点突变突变为L或A来补偿。利用LacI组装与功能之间的联系,我们进一步鉴定了22个在体内补偿Y282D二聚化缺陷的第二位点突变。这些突变位点落入几个结构区域,每个区域可能通过不同的机制影响组装。因此,LacI的360个氨基酸支架允许其四级结构具有可塑性。周质结合蛋白可能只需要最小的变化就能促进类似于阻遏蛋白的寡聚化。