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本文引用的文献

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Structural basis of cooperative ligand binding by the glycine riboswitch.甘氨酸核糖开关协同配体结合的结构基础
Chem Biol. 2011 Mar 25;18(3):293-8. doi: 10.1016/j.chembiol.2011.01.013.
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Folate biosynthesis, turnover, and transport in plants.植物中的叶酸生物合成、周转和运输。
Annu Rev Plant Biol. 2011;62:105-25. doi: 10.1146/annurev-arplant-042110-103819.
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Structural insights into ligand recognition by a sensing domain of the cooperative glycine riboswitch.合作型甘氨酸核糖开关感应结构域识别配体的结构见解。
Mol Cell. 2010 Dec 10;40(5):774-86. doi: 10.1016/j.molcel.2010.11.026.
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Structural basis for recognition of S-adenosylhomocysteine by riboswitches.核酶开关识别 S-腺苷同型半胱氨酸的结构基础。
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A eubacterial riboswitch class that senses the coenzyme tetrahydrofolate.一种能感知辅酶四氢叶酸的真细菌核糖开关类别。
Chem Biol. 2010 Jul 30;17(7):681-5. doi: 10.1016/j.chembiol.2010.05.020.
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Features and development of Coot.Coot的特点与发展
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Determination of riboswitch structures: light at the end of the tunnel?核糖开关结构的测定:隧道尽头的曙光?
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A switch in time: detailing the life of a riboswitch.适时转变:详述核糖开关的一生。
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Preparation and crystallization of riboswitch-ligand complexes.核糖开关-配体复合物的制备与结晶
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The long and the short of riboswitches.核糖开关的来龙去脉
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长程假结相互作用决定了四氢叶酸核糖开关的调控反应。

Long-range pseudoknot interactions dictate the regulatory response in the tetrahydrofolate riboswitch.

机构信息

Structural Biology Program, Memorial Sloan-Kettering Cancer Center, 1275 York Avenue, New York, NY 10065, USA.

出版信息

Proc Natl Acad Sci U S A. 2011 Sep 6;108(36):14801-6. doi: 10.1073/pnas.1111701108. Epub 2011 Aug 22.

DOI:10.1073/pnas.1111701108
PMID:21873197
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3169164/
Abstract

Tetrahydrofolate (THF), a biologically active form of the vitamin folate (B(9)), is an essential cofactor in one-carbon transfer reactions. In bacteria, expression of folate-related genes is controlled by feedback modulation in response to specific binding of THF and related compounds to a riboswitch. Here, we present the X-ray structures of the THF-sensing domain from the Eubacterium siraeum riboswitch in the ligand-bound and unbound states. The structure reveals an "inverted" three-way junctional architecture, most unusual for riboswitches, with the junction located far from the regulatory helix P1 and not directly participating in helix P1 formation. Instead, the three-way junction, stabilized by binding to the ligand, aligns the riboswitch stems for long-range tertiary pseudoknot interactions that contribute to the organization of helix P1 and therefore stipulate the regulatory response of the riboswitch. The pterin moiety of the ligand docks in a semiopen pocket adjacent to the junction, where it forms specific hydrogen bonds with two moderately conserved pyrimidines. The aminobenzoate moiety stacks on a guanine base, whereas the glutamate moiety does not appear to make strong interactions with the RNA. In contrast to other riboswitches, these findings demonstrate that the THF riboswitch uses a limited number of available determinants for ligand recognition. Given that modern antibiotics target folate metabolism, the THF riboswitch structure provides insights on mechanistic aspects of riboswitch function and may help in manipulating THF levels in pathogenic bacteria.

摘要

四氢叶酸(THF)是维生素叶酸(B(9))的一种生物活性形式,是一碳转移反应的必需辅助因子。在细菌中,叶酸相关基因的表达受反馈调节控制,以响应 THF 和相关化合物与核糖开关的特异性结合。在这里,我们展示了来自栖热袍菌的核糖开关的 THF 感应结构域在配体结合和非结合状态下的 X 射线结构。该结构揭示了一种“倒置”的三向连接结构,这在核糖开关中非常罕见,连接点远离调节螺旋 P1,并且不直接参与螺旋 P1 的形成。相反,三向连接通过与配体结合而稳定,使核糖开关的茎对齐,进行长程三级假结相互作用,从而有助于 P1 螺旋的组织,因此规定了核糖开关的调节反应。配体的蝶呤部分位于连接点附近的半开口袋中,在那里它与两个中度保守的嘧啶形成特定的氢键。氨基苯甲酸酯部分堆积在一个鸟嘌呤碱基上,而谷氨酸部分似乎与 RNA 没有强烈的相互作用。与其他核糖开关不同,这些发现表明 THF 核糖开关使用有限数量的可用决定因素进行配体识别。鉴于现代抗生素靶向叶酸代谢,THF 核糖开关结构提供了对核糖开关功能的机制方面的深入了解,并可能有助于在致病细菌中操纵 THF 水平。