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被困在晶格中的两种磷酰化中继蛋白之间的短暂相互作用揭示了信号转导中分子识别和磷转移的机制。

A transient interaction between two phosphorelay proteins trapped in a crystal lattice reveals the mechanism of molecular recognition and phosphotransfer in signal transduction.

作者信息

Zapf J, Sen U, Hoch J A, Varughese K I

机构信息

Department of Molecular and Experimental Medicine, The Scripps Research Institute, La Jolla, CA 92037, USA.

出版信息

Structure. 2000 Aug 15;8(8):851-62. doi: 10.1016/s0969-2126(00)00174-x.

Abstract

BACKGROUND

Spo0F and Spo0B specifically exchange a phosphoryl group in a central step of the phosphorelay signal transduction system that controls sporulation in Bacilli. Spo0F belongs to the superfamily of response regulator proteins and is one of 34 such proteins in Bacillus subtilis. Spo0B is structurally similar to the phosphohistidine domain of histidine kinases, such as EnvZ, and exchanges a phosphoryl group between His30 and Asp54 on Spo0F. Information at the molecular level on the interaction between response regulators and phosphohistidine domains is necessary to develop a rationale for how phospho-signaling fidelity is maintained in two-component systems.

RESULTS

Structural analysis of a co-crystal of the Spo0F response regulator interacting with the Spo0B phosphotransferase of the phosphorelay signal transduction system of B. subtilis was carried out using X-ray crystallographic techniques. The association of the two molecules brings the catalytic residues from both proteins into precise alignment for phosphoryltransfer. Upon complex formation, the Spo0B conformation remains unchanged. Spo0F also retains the overall conformation; however, two loops around the active site show significant deviations.

CONCLUSIONS

The Spo0F-Spo0B interaction appears to be a prototype for response regulator-histidine kinase interactions. The primary contact surface between these two proteins is formed by hydrophobic regions in both proteins. The Spo0F residues making up the hydrophobic patch are very similar in all response regulators suggesting that the binding is initiated through the same residues in all interacting response regulator-kinase pairs. The bulk of the interactions outside this patch are through nonconserved residues. Recognition specificity is proposed to arise from interactions of the nonconserved residues, especially the hypervariable residues of the beta4-alpha4 loop.

摘要

背景

Spo0F和Spo0B在磷酰基转移信号转导系统的核心步骤中特异性地交换磷酰基,该系统控制芽孢杆菌的孢子形成。Spo0F属于应答调节蛋白超家族,是枯草芽孢杆菌中34种此类蛋白之一。Spo0B在结构上类似于组氨酸激酶(如EnvZ)的磷酸组氨酸结构域,并在Spo0F的His30和Asp54之间交换磷酰基。了解应答调节蛋白与磷酸组氨酸结构域之间相互作用的分子水平信息,对于阐明双组分系统中磷酸信号保真度的维持机制至关重要。

结果

利用X射线晶体学技术对枯草芽孢杆菌磷酰基转移信号转导系统中与Spo0B磷酸转移酶相互作用的Spo0F应答调节蛋白的共晶体进行了结构分析。两个分子的结合使来自两种蛋白质的催化残基精确对齐以进行磷酰基转移。复合物形成后,Spo0B的构象保持不变。Spo0F也保留了整体构象;然而,活性位点周围的两个环显示出明显的偏差。

结论

Spo0F-Spo0B相互作用似乎是应答调节蛋白-组氨酸激酶相互作用的一个原型。这两种蛋白质之间的主要接触表面由两种蛋白质中的疏水区域形成。构成疏水补丁的Spo0F残基在所有应答调节蛋白中非常相似,这表明在所有相互作用的应答调节蛋白-激酶对中,结合是通过相同的残基起始的。该补丁之外的大部分相互作用是通过非保守残基进行的。识别特异性被认为源于非保守残基的相互作用,尤其是β4-α4环的高变残基。

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