Batra Vinod K, Oertell Keriann, Beard William A, Kashemirov Boris A, McKenna Charles E, Goodman Myron F, Wilson Samuel H
Genome Integrity and Structural Biology Laboratory , National Institute of Environmental Health Sciences, National Institutes of Health , 111 T. W. Alexander Drive , Research Triangle Park , North Carolina 27709 , United States.
Department of Biological Sciences , University of Southern California , Los Angeles , California 90089-0371 , United States.
Biochemistry. 2018 Jul 3;57(26):3934-3944. doi: 10.1021/acs.biochem.8b00418. Epub 2018 Jun 21.
We report high-resolution crystal structures of DNA polymerase (pol) β in ternary complex with a panel of incoming dNTPs carrying acidity-modified 5'-triphosphate groups. These novel dNTP analogues have a variety of halomethylene substitutions replacing the bridging oxygen between Pβ and Pγ of the incoming dNTP, whereas other analogues have alkaline substitutions at the bridging oxygen. Use of these analogues allows the first systematic comparison of effects of 5'-triphosphate acidity modification on active site structures and the rate constant of DNA synthesis. These ternary complex structures with incoming dATP, dTTP, and dCTP analogues reveal the enzyme's active site is not grossly altered by the acidity modifications of the triphosphate group, yet with analogues of all three incoming dNTP bases, subtle structural differences are apparent in interactions around the nascent base pair and at the guanidinium groups of active site arginine residues. These results are important for understanding how acidity modification of the incoming dNTP's 5'-triphosphate can influence DNA polymerase activity and the significance of interactions at arginines 183 and 149 in the active site.
我们报道了DNA聚合酶(pol)β与一组携带酸度修饰的5'-三磷酸基团的进入性脱氧核苷酸三磷酸(dNTP)形成的三元复合物的高分辨率晶体结构。这些新型dNTP类似物有多种卤代亚甲基取代基取代了进入性dNTP的Pβ和Pγ之间的桥连氧,而其他类似物在桥连氧处有碱性取代。使用这些类似物能够首次系统比较5'-三磷酸酸度修饰对活性位点结构和DNA合成速率常数的影响。这些与进入性dATP、dTTP和dCTP类似物形成的三元复合物结构表明,三磷酸基团的酸度修饰并未使酶的活性位点发生显著改变,然而,对于所有三种进入性dNTP碱基的类似物,在新生碱基对周围以及活性位点精氨酸残基的胍基处的相互作用中,明显存在细微的结构差异。这些结果对于理解进入性dNTP的5'-三磷酸的酸度修饰如何影响DNA聚合酶活性以及活性位点中精氨酸183和149处相互作用的重要性具有重要意义。