MOE Key Laboratory of Gene Function and Regulation, State Key Laboratory for Biocontrol, School of Life Sciences, The Sun Yat-Sen University, Guangzhou, Guangdong, 510006, China.
School of Public Health (Shenzhen), The Sun Yat-sen University, Guangdong, 518107, China.
DNA Repair (Amst). 2021 Jan;97:103008. doi: 10.1016/j.dnarep.2020.103008. Epub 2020 Nov 13.
UdgX from Mycobacterium smegmatis (MsmUdgX) is a prototypical enzyme representing a new class of uracil-DNA glycosylases (UDG) closely related to the family 4 enzymes. It possesses a unique R-loop rich in positive residues and forms a covalent bond with single-stranded uracil-containing DNAs (ssDNA-Us) that is resistant to denaturants after the removal of the target uracil. We previously identified the H109E mutant of MsmUdgX that forms a weak covalent complex with ssDNA-U and yet possesses moderate uracil excision activity, but the mechanism of its action is not fully understood. To further study the catalytic process of MsmUdgX, we solved the high-resolution crystal structures of H109E in the free and DNA-bound forms, respectively. We found that the key residue Glu109 adopts a similar conformation to that of WT to form the covalent bond, suggesting that it still employs the same "excision-inhibition" mechanism to that of the WT enzyme. The enzyme remains nearly intact before and after the crosslinking reaction, but the first half of the R-loop exhibits large structural differences while the rest of the loop barely moves, owing to the salt-bridge interaction formed via Arg107. Additionally, Arg107, along with Gln53 was found to play important roles in the biochemical properties of MsmUdgX. Our studies provide new insights into the MsmUdgX catalysis and improve our understanding on this unique enzyme.
来自耻垢分枝杆菌(MsmUdgX)的 UdgX 是一种典型的酶,代表了一类与家族 4 酶密切相关的新型尿嘧啶-DNA 糖基化酶(UDG)。它具有独特的富含正电荷残基的 R 环,并与含有单链尿嘧啶的 DNA(ssDNA-U)形成共价键,在去除靶标尿嘧啶后,该键对变性剂具有抗性。我们之前鉴定了 MsmUdgX 的 H109E 突变体,它与 ssDNA-U 形成弱共价复合物,但仍具有中等的尿嘧啶切除活性,但对其作用机制尚不完全了解。为了进一步研究 MsmUdgX 的催化过程,我们分别解析了 H109E 在游离和 DNA 结合形式下的高分辨率晶体结构。我们发现关键残基 Glu109 采用与 WT 相似的构象形成共价键,表明它仍然采用与 WT 酶相同的“切除-抑制”机制。在交联反应前后,酶几乎保持完整,但 R 环的前半部分表现出较大的结构差异,而其余部分几乎不动,这是由于 Arg107 形成的盐桥相互作用所致。此外,Arg107 和 Gln53 被发现对 MsmUdgX 的生化特性起着重要作用。我们的研究为 MsmUdgX 的催化提供了新的见解,并加深了我们对这种独特酶的理解。