Eoff Robert L, Angel Karen C, Egli Martin, Guengerich F Peter
Department of Biochemistry, Vanderbilt University School of Medicine, Nashville, Tennessee 37232-0146, USA.
J Biol Chem. 2007 May 4;282(18):13573-84. doi: 10.1074/jbc.M700656200. Epub 2007 Mar 3.
Previous work has shown that Sulfolobus solfataricus DNA polymerase Dpo4-catalyzed bypass of O(6)-methylguanine (O(6)-MeG) proceeds largely in an accurate but inefficient manner with a "wobble" base pairing between C and O(6)-MeG (Eoff, R. L., Irimia, A., Egli, M., and Guengerich, F. P. (2007) J. Biol. Chem. 282, 1456-1467). We considered here the bulky lesion O(6)-benzylguanine (O(6)-BzG) in DNA and catalysis by Dpo4. Mass spectrometry analysis of polymerization products revealed that the enzyme bypasses and extends across from O(6)-BzG, with C the major product ( approximately 70%) and some T and A ( approximately 15% each) incorporated opposite the lesion. Steady-state kinetic parameters indicated that Dpo4 was 7-, 5-, and 27-fold more efficient at C incorporation opposite O(6)-BzG than T, A, or G, respectively. In transient state kinetic analysis, the catalytic efficiency was decreased 62-fold for C incorporation opposite O(6)-BzG relative to unmodified DNA. Crystal structures reveal wobble pairing between C and O(6)-BzG. Pseudo-"Watson-Crick" pairing was observed between T and O(6)-BzG. Two other structures illustrate a possible mechanism for the accommodation of a +1 frameshift in the Dpo4 active site. The overall effect of O(6)-BzG is to decrease the efficiency of bypass by roughly an order of magnitude in every case except correct bypass, where the effect is not as pronounced. By comparison, Dpo4 is more accurate but no more efficient than model replicative polymerases, such as bacteriophage T7(-) DNA polymerase and human immunodeficiency virus-1 reverse transcriptase in the polymerization past O(6)-MeG and O(6)-BzG.
先前的研究表明,嗜热栖热菌DNA聚合酶Dpo4催化绕过O(6)-甲基鸟嘌呤(O(6)-MeG)的过程在很大程度上是准确但低效的,C与O(6)-MeG之间存在“摆动”碱基配对(Eoff, R. L., Irimia, A., Egli, M., and Guengerich, F. P. (2007) J. Biol. Chem. 282, 1456 - 1467)。我们在此研究了DNA中的大体积损伤O(6)-苄基鸟嘌呤(O(6)-BzG)以及Dpo4的催化作用。对聚合产物的质谱分析表明,该酶能绕过O(6)-BzG并在其对面延伸,主要产物为C(约70%),还有一些T和A(各约15%)掺入损伤对面。稳态动力学参数表明,Dpo4在将C掺入O(6)-BzG对面时的效率分别比掺入T、A或G高7倍、5倍和27倍。在瞬态动力学分析中,相对于未修饰DNA,将C掺入O(6)-BzG对面时催化效率降低了62倍。晶体结构揭示了C与O(6)-BzG之间的摆动配对。观察到T与O(6)-BzG之间存在假“沃森-克里克”配对。另外两个结构说明了Dpo4活性位点中容纳+1移码的一种可能机制。O(6)-BzG的总体影响是,除了正确绕过的情况外,在每种情况下都会使绕过效率降低大约一个数量级,而在正确绕过的情况下,这种影响不那么明显。相比之下,在绕过O(6)-MeG和O(6)-BzG进行聚合时,Dpo4比模型复制性聚合酶(如噬菌体T7(-) DNA聚合酶和人类免疫缺陷病毒-1逆转录酶)更准确,但效率并不更高。