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磷酸化对酶I N端结构域与细菌磷酸转移酶系统组氨酸磷酸载体蛋白之间相互作用的结构和热力学的影响。

Impact of phosphorylation on structure and thermodynamics of the interaction between the N-terminal domain of enzyme I and the histidine phosphocarrier protein of the bacterial phosphotransferase system.

作者信息

Suh Jeong-Yong, Cai Mengli, Clore G Marius

机构信息

Laboratory of Chemical Physics, NIDDK, National Institutes of Health, Bethesda, Maryland 20892, USA.

出版信息

J Biol Chem. 2008 Jul 4;283(27):18980-9. doi: 10.1074/jbc.M802211200. Epub 2008 Apr 29.

Abstract

The structural and thermodynamic impact of phosphorylation on the interaction of the N-terminal domain of enzyme I (EIN) and the histidine phosphocarrier protein (HPr), the two common components of all branches of the bacterial phosphotransferase system, have been examined using NMR spectroscopy and isothermal titration calorimetry. His-189 is located at the interface of the alpha and alphabeta domains of EIN, resulting in rather widespread chemical shift perturbation upon phosphorylation, in contrast to the highly localized perturbations seen for HPr, where His-15 is fully exposed to solvent. Residual dipolar coupling measurements, however, demonstrate unambiguously that no significant changes in backbone conformation of either protein occur upon phosphorylation: for EIN, the relative orientation of the alpha and alphabeta domains remains unchanged; for HPr, the backbone /Psi torsion angles of the active site residues are unperturbed within experimental error. His --> Glu/Asp mutations of the active site histidines designed to mimic the phosphorylated states reveal binding equilibria that favor phosphoryl transfer from EIN to HPr. Although binding of phospho-EIN to phospho-HPr is reduced by a factor of approximately 21 relative to the unphosphorylated complex, residual dipolar coupling measurements reveal that the structures of the unphosphorylated and biphosphorylated complexes are the same. Hence, the phosphorylation states of EIN and HPr shift the binding equilibria predominantly by modulating intermolecular electrostatic interactions without altering either the backbone scaffold or binding interface. This facilitates highly efficient phosphoryl transfer between EIN and HPr, which is estimated to occur at a rate of approximately 850 s(-1) from exchange spectroscopy.

摘要

利用核磁共振光谱法和等温滴定量热法,研究了磷酸化对酶I(EIN)N端结构域与组氨酸磷酸载体蛋白(HPr)相互作用的结构和热力学影响,这两种蛋白是细菌磷酸转移酶系统所有分支的常见组分。His-189位于EIN的α结构域和αβ结构域的界面处,磷酸化后会导致相当广泛的化学位移扰动,这与HPr中观察到的高度局部化扰动形成对比,在HPr中His-15完全暴露于溶剂中。然而,剩余偶极耦合测量明确表明,磷酸化后两种蛋白质的主链构象均未发生显著变化:对于EIN,α结构域和αβ结构域的相对取向保持不变;对于HPr,活性位点残基的主链/Ψ扭转角在实验误差范围内未受扰动。设计用于模拟磷酸化状态的活性位点组氨酸的His→Glu/Asp突变揭示了有利于磷酸基团从EIN转移至HPr的结合平衡。尽管相对于未磷酸化的复合物,磷酸化EIN与磷酸化HPr的结合降低了约21倍,但剩余偶极耦合测量表明未磷酸化和双磷酸化复合物的结构相同。因此,EIN和HPr的磷酸化状态主要通过调节分子间静电相互作用来改变结合平衡,而不会改变主链支架或结合界面。这有利于EIN和HPr之间高效的磷酸基团转移,根据交换光谱法估计其发生速率约为850 s(-1)。

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