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PPM1D 丝氨酸/苏氨酸磷酸酶催化结构域的晶体结构与机制研究。

Crystal structure and mechanistic studies of the PPM1D serine/threonine phosphatase catalytic domain.

机构信息

Laboratory of Cell Biology, NCI, National Institutes of Health, Bethesda, Maryland, United States.

Laboratory of Molecular Biology, NIDDK, National Institutes of Health, Bethesda, Maryland, United States.

出版信息

J Biol Chem. 2024 Aug;300(8):107561. doi: 10.1016/j.jbc.2024.107561. Epub 2024 Jul 11.

Abstract

Protein phosphatase 1D (PPM1D, Wip1) is induced by the tumor suppressor p53 during DNA damage response signaling and acts as an oncoprotein in several human cancers. Although PPM1D is a potential therapeutic target, insights into its atomic structure were challenging due to flexible regions unique to this family member. Here, we report the first crystal structure of the PPM1D catalytic domain to 1.8 Å resolution. The structure reveals the active site with two Mg ions bound, similar to other structures. The flap subdomain and B-loop, which are crucial for substrate recognition and catalysis, were also resolved, with the flap forming two short helices and three short β-strands that are followed by an irregular loop. Unexpectedly, a nitrogen-oxygen-sulfur bridge was identified in the catalytic domain. Molecular dynamics simulations and kinetic studies provided further mechanistic insights into the regulation of PPM1D catalytic activity. In particular, the kinetic experiments demonstrated a magnesium concentration-dependent lag in PPM1D attaining steady-state velocity, a feature of hysteretic enzymes that show slow transitions compared with catalytic turnover. All combined, these results advance the understanding of PPM1D function and will support the development of PPM1D-targeted therapeutics.

摘要

蛋白磷酸酶 1D(PPM1D,Wip1)在 DNA 损伤反应信号中由肿瘤抑制因子 p53 诱导,并在几种人类癌症中作为癌蛋白发挥作用。尽管 PPM1D 是一个潜在的治疗靶点,但由于该家族成员特有的柔性区域,对其原子结构的了解具有挑战性。在这里,我们报告了 PPM1D 催化结构域的第一个晶体结构,分辨率为 1.8Å。该结构揭示了具有两个结合的 Mg 离子的活性位点,与其他结构相似。 flap 亚结构域和 B 环,这对于底物识别和催化至关重要,也被解析出来, flap 形成两个短螺旋和三个短β-链,后面跟着一个不规则环。出乎意料的是,在催化结构域中鉴定出一个氮-氧-硫桥。分子动力学模拟和动力学研究进一步深入了解了 PPM1D 催化活性的调节机制。特别是,动力学实验表明,PPM1D 达到稳态速度时存在镁浓度依赖性滞后,这是具有迟滞酶的特征,与催化周转率相比,迟滞酶显示出缓慢的转变。综上所述,这些结果提高了对 PPM1D 功能的理解,并将支持开发针对 PPM1D 的治疗方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b0cc/11342775/b4f7c82e6bbb/gr1.jpg

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