Duym Wade W, Fiala Kevin A, Bhatt Nikunj, Suo Zucai
Department of Biochemistry, The Ohio State University, Columbus, Ohio 43210, USA.
J Biol Chem. 2006 Nov 24;281(47):35649-55. doi: 10.1074/jbc.M607479200. Epub 2006 Sep 27.
During short-patch base excision repair, the excision of a 5'-terminal 2-deoxyribose-5-phosphate moiety of the downstream strand by the 5'-2-deoxyribose-5-phosphate lyase activity of either DNA polymerase beta or lambda is believed to occur after each respective enzyme catalyzes gap-filling DNA synthesis. Yet the effects of this 5'-terminal 2-deoxyribose-5-phosphate moiety on the polymerase activities of these two enzymes have never been quantitatively determined. Moreover, x-ray crystal structures of truncated polymerase lambda have revealed that the downstream strand and its 5'-phosphate group of gapped DNA interact intensely with the dRPase domain, but the kinetic effect of these interactions is unclear. Here, we utilized pre-steady state kinetic methods to systematically investigate the effect of a downstream strand and its 5'-moieties on the polymerase activity of the full-length human polymerase lambda. The downstream strand and its 5'-phosphate were both found to increase nucleotide incorporation efficiency (kp/Kd) by 15 and 11-fold, respectively, with the increase procured by the effect on the nucleotide incorporation rate constant kp rather than the ground state nucleotide binding affinity Kd. With 4 single nucleotide-gapped DNA substrates containing a 1,2-dideoxyribose-5-phosphate moiety, a 2-deoxyribose-5-phosphate mimic, we measured the incorporation efficiencies of 16 possible nucleotides. Our results demonstrate that although this 5'-terminal 2-deoxyribose-5-phosphate mimic does not affect the fidelity of polymerase lambda, it moderately decreased the polymerase efficiency by 3.4-fold. Moreover, this decrease in polymerase efficiency is due to a drop of similar magnitude in kp rather than Kd. The implication of the downstream strand and its 5'-moieties on the kinetics of gap-filling synthesis is discussed.
在短片段碱基切除修复过程中,人们认为,DNA聚合酶β或λ的5'-2-脱氧核糖-5-磷酸裂解酶活性切除下游链5'-末端的2-脱氧核糖-5-磷酸部分,是在各自的酶催化填补缺口的DNA合成之后发生的。然而,这个5'-末端的2-脱氧核糖-5-磷酸部分对这两种酶聚合酶活性的影响从未得到过定量测定。此外,截短的聚合酶λ的X射线晶体结构显示,缺口DNA的下游链及其5'-磷酸基团与dRPase结构域强烈相互作用,但这些相互作用的动力学效应尚不清楚。在这里,我们利用稳态前动力学方法,系统地研究了下游链及其5'-部分对全长人聚合酶λ聚合酶活性的影响。我们发现,下游链及其5'-磷酸基团分别使核苷酸掺入效率(kp/Kd)提高了15倍和11倍,这种提高是通过对核苷酸掺入速率常数kp的影响实现的,而不是通过对基态核苷酸结合亲和力Kd的影响。我们使用了4种含有1,2-二脱氧核糖-5-磷酸部分(一种2-脱氧核糖-5-磷酸模拟物)的单核苷酸缺口DNA底物,测量了16种可能核苷酸的掺入效率。我们的结果表明,尽管这种5'-末端的2-脱氧核糖-5-磷酸模拟物不影响聚合酶λ的保真度,但它使聚合酶效率适度降低了3.4倍。此外,聚合酶效率的这种降低是由于kp下降了类似幅度,而不是Kd下降。本文讨论了下游链及其5'-部分对填补缺口合成动力学的影响。