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S-甲基-5'-硫代腺苷和 S-腺苷甲硫氨酸与 MJ0100 蛋白的结合触发其 CBS 基序对的开环到闭环构象变化。

Binding of S-methyl-5'-thioadenosine and S-adenosyl-L-methionine to protein MJ0100 triggers an open-to-closed conformational change in its CBS motif pair.

机构信息

Unidad de Biología Estructural, CIC bioGUNE, Parque Tecnológico de Bizkaia, Ed. 800, 48160-Derio, Bizkaia, Spain.

出版信息

J Mol Biol. 2010 Feb 26;396(3):800-20. doi: 10.1016/j.jmb.2009.12.012. Epub 2009 Dec 21.

DOI:10.1016/j.jmb.2009.12.012
PMID:20026078
Abstract

Cystathionine beta-synthase (CBS) domains are small motifs that are present in proteins with completely different functions. Several genetic diseases in humans have been associated with mutations in their sequence, which has made them promising targets for rational drug design. The protein MJ0100 from Methanocaldococcus jannaschii includes a DUF39 domain of so far unknown function and a CBS domain pair (Bateman domain) at its C-terminus. This work presents the crystallographic analysis of four different states of the CBS motif pair of MJ0100 in complex with different numbers of S-adenosyl-L-methionine (SAM) and S-methyl-5'-thioadenosine (MTA) ligands, providing evidence that ligand-induced conformational reorganization of Bateman domain dimers could be an important regulatory mechanism. These observations are in contrast to what is known from most of the other Bateman domain structures but are supported by recent studies on the magnesium transporter MgtE. Our structures represent the first example of a CBS domain protein complexed with SAM and/or MTA and might provide a structural basis for understanding the molecular mechanisms regulated by SAM upon binding to the C-terminal domain of human CBS, whose structure remains unknown.

摘要

胱硫醚β-合酶 (CBS) 结构域是存在于具有完全不同功能的蛋白质中的小基序。人类的几种遗传疾病与它们序列中的突变有关,这使得它们成为合理药物设计的有前途的靶点。产甲烷球菌 MJ0100 蛋白包含一个功能未知的 DUF39 结构域和一个 CBS 结构域对(Bateman 结构域)位于其 C 末端。这项工作展示了 MJ0100 的 CBS 结构域对与不同数量的 S-腺苷-L-甲硫氨酸 (SAM) 和 S-甲基-5'-硫代腺苷 (MTA) 配体结合的四个不同状态的晶体学分析,提供了证据表明,Bateman 结构域二聚体的配体诱导的构象重排可能是一种重要的调节机制。这些观察结果与大多数其他 Bateman 结构域结构所知道的相反,但得到了最近对镁转运蛋白 MgtE 的研究的支持。我们的结构代表了第一个与 SAM 和/或 MTA 复合的 CBS 结构域蛋白复合物的例子,可能为理解 SAM 结合到人类 CBS 的 C 末端结构域时调节的分子机制提供结构基础,而人类 CBS 的结构仍然未知。

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