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本文引用的文献

1
[27] Maximum-likelihood heavy-atom parameter refinement for multiple isomorphous replacement and multiwavelength anomalous diffraction methods.[27] 用于多同晶置换和多波长反常衍射方法的最大似然重原子参数精修
Methods Enzymol. 1997;276:472-494. doi: 10.1016/S0076-6879(97)76073-7.
2
Structure of the SAM-II riboswitch bound to S-adenosylmethionine.与S-腺苷甲硫氨酸结合的SAM-II核糖开关的结构。
Nat Struct Mol Biol. 2008 Feb;15(2):177-82. doi: 10.1038/nsmb.1371. Epub 2008 Jan 20.
3
Mechanisms of resistance to an amino acid antibiotic that targets translation.对一种靶向翻译过程的氨基酸抗生素的耐药机制。
ACS Chem Biol. 2007 Dec 21;2(12):819-27. doi: 10.1021/cb7002253.
4
Ribozymes, riboswitches and beyond: regulation of gene expression without proteins.核酶、核糖开关及其他:无蛋白质参与的基因表达调控
Nat Rev Genet. 2007 Oct;8(10):776-90. doi: 10.1038/nrg2172. Epub 2007 Sep 11.
5
Structure and mechanism of a metal-sensing regulatory RNA.一种金属感应调节性RNA的结构与机制
Cell. 2007 Sep 7;130(5):878-92. doi: 10.1016/j.cell.2007.06.051.
6
Crystal structure of the ribosome recycling factor bound to the ribosome.与核糖体结合的核糖体循环因子的晶体结构。
Nat Struct Mol Biol. 2007 Aug;14(8):733-7. doi: 10.1038/nsmb1282. Epub 2007 Jul 29.
7
A loop loop interaction and a K-turn motif located in the lysine aptamer domain are important for the riboswitch gene regulation control.位于赖氨酸适体结构域的环-环相互作用和K-转角基序对核糖开关基因调控控制很重要。
RNA. 2007 Aug;13(8):1256-67. doi: 10.1261/rna.560307. Epub 2007 Jun 21.
8
Structural investigation of the GlmS ribozyme bound to Its catalytic cofactor.与催化辅因子结合的GlmS核酶的结构研究。
Chem Biol. 2007 Jan;14(1):97-105. doi: 10.1016/j.chembiol.2006.12.005. Epub 2006 Dec 28.
9
Antibacterial lysine analogs that target lysine riboswitches.靶向赖氨酸核糖开关的抗菌赖氨酸类似物。
Nat Chem Biol. 2007 Jan;3(1):44-9. doi: 10.1038/nchembio842. Epub 2006 Dec 3.
10
Structural basis of glmS ribozyme activation by glucosamine-6-phosphate.6-磷酸葡萄糖胺激活glmS核酶的结构基础
Science. 2006 Sep 22;313(5794):1752-6. doi: 10.1126/science.1129666.

赖氨酸核糖开关对氨基酸结合和基因控制的结构洞察。

Structural insights into amino acid binding and gene control by a lysine riboswitch.

作者信息

Serganov Alexander, Huang Lili, Patel Dinshaw J

机构信息

Structural Biology Program, Memorial Sloan-Kettering Cancer Center, New York, New York 10065, USA.

出版信息

Nature. 2008 Oct 30;455(7217):1263-7. doi: 10.1038/nature07326. Epub 2008 Sep 10.

DOI:10.1038/nature07326
PMID:18784651
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3726722/
Abstract

In bacteria, the intracellular concentration of several amino acids is controlled by riboswitches. One of the important regulatory circuits involves lysine-specific riboswitches, which direct the biosynthesis and transport of lysine and precursors common for lysine and other amino acids. To understand the molecular basis of amino acid recognition by riboswitches, here we present the crystal structure of the 174-nucleotide sensing domain of the Thermotoga maritima lysine riboswitch in the lysine-bound (1.9 ångström (A)) and free (3.1 A) states. The riboswitch features an unusual and intricate architecture, involving three-helical and two-helical bundles connected by a compact five-helical junction and stabilized by various long-range tertiary interactions. Lysine interacts with the junctional core of the riboswitch and is specifically recognized through shape-complementarity within the elongated binding pocket and through several direct and K(+)-mediated hydrogen bonds to its charged ends. Our structural and biochemical studies indicate preformation of the riboswitch scaffold and identify conformational changes associated with the formation of a stable lysine-bound state, which prevents alternative folding of the riboswitch and facilitates formation of downstream regulatory elements. We have also determined several structures of the riboswitch bound to different lysine analogues, including antibiotics, in an effort to understand the ligand-binding capabilities of the lysine riboswitch and understand the nature of antibiotic resistance. Our results provide insights into a mechanism of lysine-riboswitch-dependent gene control at the molecular level, thereby contributing to continuing efforts at exploration of the pharmaceutical and biotechnological potential of riboswitches.

摘要

在细菌中,几种氨基酸的细胞内浓度由核糖开关控制。其中一个重要的调控回路涉及赖氨酸特异性核糖开关,它指导赖氨酸的生物合成以及赖氨酸和其他氨基酸共有的前体的转运。为了理解核糖开关识别氨基酸的分子基础,我们在此展示了嗜热栖热菌赖氨酸核糖开关174个核苷酸传感结构域在结合赖氨酸(1.9埃)和游离(3.1埃)状态下的晶体结构。该核糖开关具有不同寻常且复杂的结构,包括由紧密的五螺旋连接点相连的三螺旋束和双螺旋束,并通过各种长程三级相互作用得以稳定。赖氨酸与核糖开关的连接核心相互作用,并通过细长结合口袋内的形状互补以及与其带电末端的几个直接和钾离子介导的氢键被特异性识别。我们的结构和生化研究表明核糖开关支架的预形成,并确定了与稳定的赖氨酸结合状态形成相关的构象变化,这可防止核糖开关的替代折叠并促进下游调控元件的形成。我们还确定了该核糖开关与包括抗生素在内的不同赖氨酸类似物结合的几种结构,以了解赖氨酸核糖开关的配体结合能力并理解抗生素抗性的本质。我们的结果在分子水平上为赖氨酸核糖开关依赖性基因控制机制提供了见解,从而有助于持续探索核糖开关在制药和生物技术方面的潜力。