Jin Yong Hwan, Garg Parie, Stith Carrie M W, Al-Refai Hanan, Sterling Joan F, Murray Laura J W, Kunkel Thomas A, Resnick Michael A, Burgers Peter M, Gordenin Dmitry A
National Institute of Environmental Health Sciences, D3-01, 101 TW Alexander Dr., P.O. Box 12233, Research Triangle Park, NC 27709, USA.
Mol Cell Biol. 2005 Jan;25(1):461-71. doi: 10.1128/MCB.25.1.461-471.2005.
Until recently, the only biological function attributed to the 3'-->5' exonuclease activity of DNA polymerases was proofreading of replication errors. Based on genetic and biochemical analysis of the 3'-->5' exonuclease of yeast DNA polymerase delta (Pol delta) we have discerned additional biological roles for this exonuclease in Okazaki fragment maturation and mismatch repair. We asked whether Pol delta exonuclease performs all these biological functions in association with the replicative complex or as an exonuclease separate from the replicating holoenzyme. We have identified yeast Pol delta mutants at Leu523 that are defective in processive DNA synthesis when the rate of misincorporation is high because of a deoxynucleoside triphosphate (dNTP) imbalance. Yet the mutants retain robust 3'-->5' exonuclease activity. Based on biochemical studies, the mutant enzymes appear to be impaired in switching of the nascent 3' end between the polymerase and the exonuclease sites, resulting in severely impaired biological functions. Mutation rates and spectra and synergistic interactions of the pol3-L523X mutations with msh2, exo1, and rad27/fen1 defects were indistinguishable from those observed with previously studied exonuclease-defective mutants of the Pol delta. We conclude that the three biological functions of the 3'-->5' exonuclease addressed in this study are performed intramolecularly within the replicating holoenzyme.
直到最近,DNA聚合酶3'→5'核酸外切酶活性唯一被认可的生物学功能是对复制错误进行校对。基于对酵母DNA聚合酶δ(Pol δ)的3'→5'核酸外切酶的遗传学和生化分析,我们发现该核酸外切酶在冈崎片段成熟和错配修复中还有其他生物学作用。我们研究了Pol δ核酸外切酶是与复制复合物结合发挥所有这些生物学功能,还是作为一种与复制全酶分离的核酸外切酶发挥作用。我们鉴定出了Leu523位点的酵母Pol δ突变体,当由于脱氧核苷三磷酸(dNTP)失衡导致错掺入率较高时,这些突变体在进行性DNA合成方面存在缺陷。然而,这些突变体仍保留强大的3'→5'核酸外切酶活性。基于生化研究,突变酶在新生3'末端在聚合酶和核酸外切酶位点之间的切换似乎受到损害,导致生物学功能严重受损。pol3-L523X突变与msh2、exo1和rad27/fen1缺陷的突变率、突变谱以及协同相互作用与之前研究的Pol δ核酸外切酶缺陷突变体所观察到的情况并无差异。我们得出结论,本研究中探讨的3'→5'核酸外切酶的三种生物学功能是在复制全酶分子内进行的。