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与苯丙酮尿症相关的替代物 R68S 可将苯丙氨酸羟化酶转化为组成型激活酶,但会降低其稳定性。

The phenylketonuria-associated substitution R68S converts phenylalanine hydroxylase to a constitutively active enzyme but reduces its stability.

机构信息

From the Department of Biochemistry and Structural Biology, UT Health San Antonio, San Antonio, Texas 78229 and.

the Department of Chemistry and Chemical Biology, Cornell University, Ithaca, New York 14853.

出版信息

J Biol Chem. 2019 Mar 22;294(12):4359-4367. doi: 10.1074/jbc.RA118.006477. Epub 2019 Jan 23.

Abstract

The naturally occurring R68S substitution of phenylalanine hydroxylase (PheH) causes phenylketonuria (PKU). However, the molecular basis for how the R68S variant leads to PKU remains unclear. Kinetic characterization of R68S PheH establishes that the enzyme is fully active in the absence of allosteric binding of phenylalanine, in contrast to the WT enzyme. Analytical ultracentrifugation establishes that the isolated regulatory domain of R68S PheH is predominantly monomeric in the absence of phenylalanine and dimerizes in its presence, similar to the regulatory domain of the WT enzyme. Fluorescence and small-angle X-ray scattering analyses establish that the overall conformation of the resting form of R68S PheH is different from that of the WT enzyme. The data are consistent with the substitution disrupting the interface between the catalytic and regulatory domains of the enzyme, shifting the equilibrium between the resting and activated forms ∼200-fold, so that the resting form of R68S PheH is ∼70% in the activated conformation. However, R68S PheH loses activity 2 orders of magnitude more rapidly than the WT enzyme at 37 °C and is significantly more sensitive to proteolysis. We propose that, even though this substitution converts the enzyme to a constitutively active enzyme, it results in PKU because of the decrease in protein stability.

摘要

天然存在的苯丙氨酸羟化酶(PheH)中的 R68S 取代导致苯丙酮尿症(PKU)。然而,导致 R68S 变体导致 PKU 的分子基础仍不清楚。R68S PheH 的动力学特征表明,该酶在没有苯丙氨酸变构结合的情况下完全具有活性,与 WT 酶相反。分析超速离心确定,在不存在苯丙氨酸的情况下,R68S PheH 的分离调节结构域主要是单体,而在存在苯丙氨酸的情况下二聚化,类似于 WT 酶的调节结构域。荧光和小角 X 射线散射分析确定,R68S PheH 的静止形式的整体构象与 WT 酶不同。数据与取代破坏酶的催化和调节结构域之间的界面一致,使静止和激活形式之间的平衡向激活形式转变约 200 倍,从而使 R68S PheH 的静止形式处于激活构象约 70%。然而,与 WT 酶相比,R68S PheH 在 37°C 时的失活速度快 2 个数量级,并且对蛋白水解更敏感。我们提出,尽管这种取代将酶转化为组成型激活酶,但由于蛋白质稳定性降低,仍会导致 PKU。

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