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来自布兰登氏李氏菌的 SAMHD1 dGTP 酶同源物的高分辨率结构揭示了 dATP 别构激活的新机制。

High-resolution structures of the SAMHD1 dGTPase homolog from Leeuwenhoekiella blandensis reveal a novel mechanism of allosteric activation by dATP.

机构信息

Genome Integrity and Structural Biology Laboratory, National Institute of Environmental Health Sciences, North Carolina, USA.

Epigenetics and Stem Cell Biology Laboratory, National Institute of Environmental Health Sciences, North Carolina, USA.

出版信息

J Biol Chem. 2022 Jul;298(7):102073. doi: 10.1016/j.jbc.2022.102073. Epub 2022 May 26.

Abstract

Deoxynucleoside triphosphate (dNTP) triphosphohydrolases (dNTPases) are important enzymes that may perform multiple functions in the cell, including regulating the dNTP pools and contributing to innate immunity against viruses. Among the homologs that are best studied are human sterile alpha motif and HD domain-containing protein 1 (SAMHD1), a tetrameric dNTPase, and the hexameric Escherichia coli dGTPase; however, it is unclear whether these are representative of all dNTPases given their wide distribution throughout life. Here, we investigated a hexameric homolog from the marine bacterium Leeuwenhoekiella blandensis, revealing that it is a dGTPase that is subject to allosteric activation by dATP, specifically. Allosteric regulation mediated solely by dATP represents a novel regulatory feature among dNTPases that may facilitate maintenance of cellular dNTP pools in L. blandensis. We present high-resolution X-ray crystallographic structures (1.80-2.26 Å) in catalytically important conformations as well as cryo-EM structures (2.1-2.7 Å) of the enzyme bound to dGTP and dATP ligands. The structures, the highest resolution cryo-EM structures of any SAMHD1-like dNTPase to date, reveal an intact metal-binding site with the dGTP substrate coordinated to three metal ions. These structural and biochemical data yield insights into the catalytic mechanism and support a conserved catalytic mechanism for the tetrameric and hexameric dNTPase homologs. We conclude that the allosteric activation by dATP appears to rely on structural connectivity between the allosteric and active sites, as opposed to the changes in oligomeric state upon ligand binding used by SAMHD1.

摘要

脱氧核苷三磷酸 (dNTP) 三磷酸水解酶 (dNTPase) 是一类重要的酶,它们可能在细胞中发挥多种功能,包括调节 dNTP 池和有助于先天抗病毒免疫。在研究得最好的同源物中,有人类无活性α基序和 HD 结构域蛋白 1(SAMHD1),一种四聚体 dNTPase,以及六聚体大肠杆菌 dGTPase;然而,鉴于它们在整个生命过程中的广泛分布,尚不清楚这些是否代表所有的 dNTPase。在这里,我们研究了一种来自海洋细菌李夫森氏菌的六聚体同源物,揭示它是一种 dGTPase,它特别受到 dATP 的变构激活。仅由 dATP 介导的变构调节代表了 dNTPase 中的一种新的调节特征,这可能有助于维持李夫森氏菌细胞中的 dNTP 池。我们展示了高分辨率的 X 射线晶体结构(1.80-2.26 Å),这些结构处于重要的催化构象,以及与 dGTP 和 dATP 配体结合的酶的 cryo-EM 结构(2.1-2.7 Å)。这些结构,是迄今为止任何 SAMHD1 样 dNTPase 的最高分辨率 cryo-EM 结构,揭示了一个完整的金属结合位点,其中 dGTP 底物与三个金属离子配位。这些结构和生化数据提供了对催化机制的深入了解,并支持四聚体和六聚体 dNTPase 同源物的保守催化机制。我们得出结论,dATP 的变构激活似乎依赖于变构和活性位点之间的结构连接,而不是配体结合时 SAMHD1 所使用的寡聚状态变化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b102/9257424/d3bb1c1e008d/gr1.jpg

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