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首页> 外文期刊>Biochemistry >Protein Functional Cycle Viewed at Atomic Resolution: Conformational Change and Mobility in Nitrophorin 4 as a Function of pH and NO Binding(,).
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Protein Functional Cycle Viewed at Atomic Resolution: Conformational Change and Mobility in Nitrophorin 4 as a Function of pH and NO Binding(,).

机译:在原子分辨率下观察蛋白质的功能周期:硝化蛋白4的构象变化和迁移随pH和NO Binding(,)的变化。

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摘要

The blood-sucking insect Rhodnius prolixus uses nitrophorin 4, a heme protein, to deliver nitric oxide (NO) to a victim, causing vasodilation and improved feeding. Binding of NO occurs at a ferric heme and is modulated by pH. NO binding at lower pH induces a large conformational change involving loops A-B and G-H that leads to distal pocket desolvation and protection of the nitrosyl heme complex. We have determined the crystal structures of Rhodnius nitrophorin 4 to ultrahigh resolution in four functional states: +/-NO at pH = 7.4 and +/-NO at pH = 5.6. The structure with NO at pH 7.4 (1.08 A) is newly determined while the other complexes have been modeled to resolutions much greater than previously reported (1.0-0.85 A). The ultrahigh resolution allowed us to resolve multiple conformers in binding-site loops, leading to a detailed description of the dynamics involved with storing NO in the insect salivary gland at low pH, and releasing NO in response to the increased pH of a victim's tissue. Strikingly, features for both the "open" and closed flexible loops can transition with relative ease between conformational states. Yet, release of NO from rNP4 is much slower than found for other ferric heme proteins. The structures suggest that highly mobile loops can limit diffusion of diatomic molecules into and out of a protein cavity, a result with implications for the role of protein dynamics in function.
机译:吸血昆虫Rhodnius prolixus使用血红蛋白nitrophorin 4将一氧化氮(NO)传递给受害人,引起血管舒张并改善进食。 NO的结合发生在铁血红素上,并受pH调节。在较低pH值下,NO结合会引起构象变化,涉及环A-B和G-H,从而导致远端口袋脱溶剂并保护亚硝酰血红素复合物。我们已经确定了Rhodnius nitrophorin 4的晶体结构在四个功能状态下具有超高分辨率:pH = 7.4时为+/- NO和pH值为5.6时为+/- NO。新确定了在pH值为7.4(1.08 A)时具有NO的结构,而对其他配合物的建模分辨率远高于先前报道的(1.0-0.85 A)。超高分辨率使我们能够解析结合位点环中的多个构象异构体,从而详细描述了在低pH值下将NO存储在昆虫唾液腺中以及响应受害者组织的pH值升高而释放NO的动力学过程。令人惊讶的是,“开放”和闭合的柔性环的特征可以在构象状态之间相对容易地过渡。然而,从rNP4释放NO的速度要比其他铁血红素蛋白的释放慢得多。这些结构表明,高度可移动的环可限制双原子分子向蛋白质腔内外扩散,这暗示着蛋白质动力学在功能上的作用。

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