Structural Genomics Consortium, University of Oxford, Oxford, UK.
Boehringer Ingelheim RCV GmbH & Co KG, Vienna, Austria.
Life Sci Alliance. 2020 Nov 16;4(1). doi: 10.26508/lsa.202000795. Print 2021 Jan.
Loss of WRN, a DNA repair helicase, was identified as a strong vulnerability of microsatellite instable (MSI) cancers, making WRN a promising drug target. We show that ATP binding and hydrolysis are required for genome integrity and viability of MSI cancer cells. We report a 2.2-Å crystal structure of the WRN helicase core (517-1,093), comprising the two helicase subdomains and winged helix domain but not the HRDC domain or nuclease domains. The structure highlights unusual features. First, an atypical mode of nucleotide binding that results in unusual relative positioning of the two helicase subdomains. Second, an additional β-hairpin in the second helicase subdomain and an unusual helical hairpin in the Zn binding domain. Modelling of the WRN helicase in complex with DNA suggests roles for these features in the binding of alternative DNA structures. NMR analysis shows a weak interaction between the HRDC domain and the helicase core, indicating a possible biological role for this association. Together, this study will facilitate the structure-based development of inhibitors against WRN helicase.
WRN 的缺失被鉴定为微卫星不稳定(MSI)癌症的一个强大弱点,使 WRN 成为一个有前途的药物靶点。我们表明,ATP 结合和水解对于 MSI 癌细胞的基因组完整性和生存力是必需的。我们报告了 WRN 解旋酶核心(517-1093)的 2.2 Å 晶体结构,包含两个解旋酶亚结构域和翼状螺旋结构域,但不包含 HRDC 结构域或核酸酶结构域。该结构突出了一些不寻常的特征。首先,一种非典型的核苷酸结合模式,导致两个解旋酶亚结构域的相对位置异常。其次,第二个解旋酶亚结构域中的一个额外的β发夹和 Zn 结合结构域中的一个不寻常的螺旋发夹。WRN 解旋酶与 DNA 形成复合物的模型表明这些特征在结合替代 DNA 结构中发挥作用。NMR 分析显示 HRDC 结构域与解旋酶核心之间存在较弱的相互作用,表明这种关联可能具有生物学功能。总的来说,这项研究将有助于基于结构的 WRN 解旋酶抑制剂的开发。