Laboratory of Molecular Biology, National Institute of Diabetes and Digestive and Kidney Diseases, National Institutes of Health, Bethesda, MD 20892, USA.
Howard Hughes Medical Institute, Department of Molecular Biology and Genetics, Johns Hopkins University School of Medicine, Baltimore, MD 21205, USA.
Nucleic Acids Res. 2018 Nov 2;46(19):10286-10301. doi: 10.1093/nar/gky838.
Some DNA transposons relocate from one genomic location to another using a mechanism that involves generating double-strand breaks at their transposon ends by forming hairpins on flanking DNA. The same double-strand break mode is employed by the V(D)J recombinase at signal-end/coding-end junctions during the generation of antibody diversity. How flanking hairpins are formed during DNA transposition has remained elusive. Here, we describe several co-crystal structures of the Hermes transposase bound to DNA that mimics the reaction step immediately prior to hairpin formation. Our results reveal a large DNA conformational change between the initial cleavage step and subsequent hairpin formation that changes which strand is acted upon by a single active site. We observed that two factors affect the conformational change: the complement of divalent metal ions bound by the catalytically essential DDE residues, and the identity of the -2 flanking base pair. Our data also provides a mechanistic link between the efficiency of hairpin formation (an A:T basepair is favored at the -2 position) and Hermes' strong target site preference. Furthermore, we have established that the histidine residue within a conserved C/DxxH motif present in many transposase families interacts directly with the scissile phosphate, suggesting a crucial role in catalysis.
一些 DNA 转座子通过一种机制从一个基因组位置转移到另一个位置,该机制涉及通过在侧翼 DNA 上形成发夹来在转座子末端产生双链断裂。在抗体多样性的产生过程中,V(D)J 重组酶在信号末端/编码末端连接处也采用相同的双链断裂模式。在 DNA 转座过程中,侧翼发夹是如何形成的仍然难以捉摸。在这里,我们描述了几种 Hermes 转座酶与 DNA 结合的共结晶结构,这些结构模拟了发夹形成之前的反应步骤。我们的结果揭示了在初始切割步骤和随后的发夹形成之间发生的大的 DNA 构象变化,这改变了哪个链被单个活性位点作用。我们观察到有两个因素会影响构象变化:催化必需的 DDE 残基结合的二价金属离子的组成,以及-2 侧翼碱基对的身份。我们的数据还为发夹形成的效率(-2 位置偏好 A:T 碱基对)与 Hermes 强烈的靶位点偏好之间提供了一个机制联系。此外,我们已经确定了许多转座酶家族中存在的保守 C/DxxH 模体中的组氨酸残基与切口磷酸基团直接相互作用,这表明它在催化中起着关键作用。