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全长人苯丙氨酸羟化酶的生物物理特性分析为其四级结构平衡提供了更深入的了解。

Biophysical characterization of full-length human phenylalanine hydroxylase provides a deeper understanding of its quaternary structure equilibrium.

机构信息

From the Molecular Therapeutics Program, Fox Chase Cancer Center, Temple University Health Systems, Philadelphia, Pennsylvania 19111.

the Department of Biochemistry and Molecular Biology, Drexel University College of Medicine, Philadelphia, Pennsylvania 19102, and.

出版信息

J Biol Chem. 2019 Jun 28;294(26):10131-10145. doi: 10.1074/jbc.RA119.008294. Epub 2019 May 10.

DOI:10.1074/jbc.RA119.008294
PMID:31076506
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6664189/
Abstract

Dysfunction of human phenylalanine hydroxylase (hPAH, EC 1.14.16.1) is the primary cause of phenylketonuria, the most common inborn error of amino acid metabolism. The dynamic domain rearrangements of this multimeric protein have thwarted structural study of the full-length form for decades, until now. In this study, a tractable C29S variant of hPAH (C29S) yielded a 3.06 Å resolution crystal structure of the tetrameric resting-state conformation. We used size-exclusion chromatography in line with small-angle X-ray scattering (SEC-SAXS) to analyze the full-length hPAH solution structure both in the presence and absence of Phe, which serves as both substrate and allosteric activators. Allosteric Phe binding favors accumulation of an activated PAH tetramer conformation, which is biophysically distinct in solution. Protein characterization with enzyme kinetics and intrinsic fluorescence revealed that the C29S variant and hPAH are otherwise equivalent in their response to Phe, further supported by their behavior on various chromatography resins and by analytical ultracentrifugation. Modeling of resting-state and activated forms of C29S against SAXS data with available structural data created and evaluated several new models for the transition between the architecturally distinct conformations of PAH and highlighted unique intra- and inter-subunit interactions. Three best-fitting alternative models all placed the allosteric Phe-binding module 8-10 Å farther from the tetramer center than do all previous models. The structural insights into allosteric activation of hPAH reported here may help inform ongoing efforts to treat phenylketonuria with novel therapeutic approaches.

摘要

人苯丙氨酸羟化酶(hPAH,EC 1.14.16.1)功能障碍是苯丙酮尿症的主要原因,苯丙酮尿症是最常见的氨基酸代谢先天性错误。这种多聚体蛋白的动态结构域重排使对全长形式的结构研究受阻,直到现在。在这项研究中,hPAH 的一种可处理的 C29S 变体(C29S)产生了四聚体静息构象的 3.06 Å 分辨率晶体结构。我们使用尺寸排阻色谱法与小角度 X 射线散射(SEC-SAXS)结合,分析了全长 hPAH 在有和没有 Phe 的情况下的溶液结构,Phe 既是底物又是别构激活剂。别构 Phe 结合有利于激活的 PAH 四聚体构象的积累,该构象在溶液中具有不同的生物物理性质。用酶动力学和本征荧光对蛋白质进行表征,发现 C29S 变体和 hPAH 在对 Phe 的反应中是等效的,这一结果得到了它们在各种色谱树脂上的行为和分析超速离心的支持。用现有的结构数据对 C29S 的静息态和激活态模型与 SAXS 数据进行建模,创建并评估了 PAH 结构明显不同构象之间转变的几个新模型,并突出了独特的亚基内和亚基间相互作用。三个拟合最好的替代模型都将别构 Phe 结合模块放置在距四聚体中心 8-10 Å 的位置,这比以前的所有模型都要远。这里报道的 hPAH 别构激活的结构见解可能有助于为使用新型治疗方法治疗苯丙酮尿症提供信息。

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