首页> 美国卫生研究院文献>Protein Science : A Publication of the Protein Society >Crystal structure of the EF-hand parvalbumin at atomic resolution (0.91 A) and at low temperature (100 K). Evidence for conformational multistates within the hydrophobic core.
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Crystal structure of the EF-hand parvalbumin at atomic resolution (0.91 A) and at low temperature (100 K). Evidence for conformational multistates within the hydrophobic core.

机译:EF手小白蛋白的晶体结构在原子分辨率(0.91 A)和低温(100 K)下。疏水核内构象多态的证据。

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摘要

Several crystal structures of parvalbumin (Parv), a typical EF-hand protein, have been reported so far for different species with the best resolution achieving 1.5 A. Using a crystal grown under microgravity conditions, cryotechniques (100 K), and synchrotron radiation, it has now been possible to determine the crystal structure of the fully Ca2+-loaded form of pike (component pI 4.10) Parv.Ca2 at atomic resolution (0.91 A). The availability of such a high quality structure offers the opportunity to contribute to the definition of the validation tools useful for the refinement of protein crystal structures determined to lower resolution. Besides a better definition of most of the elements in the protein three-dimensional structure than in previous studies, the high accuracy thus achieved allows the detection of well-defined alternate conformations, which are observed for 16 residues out of 107 in total. Among them, six occupy an internal position within the hydrophobic core and converge toward two small buried cavities with a total volume of about 60 A3. There is no indication of any water molecule present in these cavities. It is probable that at temperatures of physiological conditions there is a dynamic interconversion between these alternate conformations in an energy-barrier dependent manner. Such motions for which the amplitudes are provided by the present study will be associated with a time-dependent remodeling of the void internal space as part of a slow dynamics regime (millisecond timescales) of the parvalbumin molecule. The relevance of such internal dynamics to function is discussed.
机译:迄今为止,已经报道了不同物种的小白蛋白(Parv)(一种典型的EF手蛋白)的几种晶体结构,其最佳分辨率达到1.5A。使用在微重力条件下生长的晶体,低温技术(100 K)和同步加速器辐射,现在已经可以确定在原子分辨率(0.91 A)下完全装载Ca2 +的派克(组分pI 4.10)Parv.Ca2的晶体结构。这种高质量结构的可用性为定义确认工具提供了机会,该确认工具可用于细化确定为较低分辨率的蛋白质晶体结构。除了比以前的研究更好地定义蛋白质三维结构中的大多数元素外,如此获得的高精度还可以检测到明确定义的交替构象,在总共107个残基中观察到了16个残基。其中有六个占据疏水核内的内部位置,并向两个小隐腔汇聚,总体积约为60 A3。没有迹象表明这些腔中存在任何水分子。在生理条件的温度下,这些交替构象之间可能会以能量屏障相关的方式动态转换。本研究为其提供幅度的此类运动将与空隙内部空间的时间依赖性重塑相关联,这是小白蛋白分子的慢动力学机制(毫秒级时标)的一部分。讨论了这种内部动力学与功能的相关性。

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