Soengas M S, Esteban J A, Lázaro J M, Bernad A, Blasco M A, Salas M, Blanco L
Centro de Biología Molecular (CSIC-UAM), Universidad Autónoma, Madrid, Spain.
EMBO J. 1992 Nov;11(11):4227-37. doi: 10.1002/j.1460-2075.1992.tb05517.x.
In this report we present the alignment of one of the most conserved segments (Exo III) of the 3'-5' exonuclease domain in 39 DNA polymerase sequences, including prokaryotic and eukaryotic enzymes. Site-directed substitutions of the two most conserved residues, which form the Exo III motif Tyr-(X)3-Asp of phi 29 DNA polymerase, did not affect single-stranded DNA binding, DNA polymerization, processivity or protein-primed initiation. In contrast, substitution of the highly conserved Tyr residue by Phe or Cys decreased the 3'-5' exonuclease activity to 7.5 and 4.1%, respectively, of the wild-type activity. Change of the highly conserved Asp residue into Ala resulted in almost complete inactivation (0.1%) of the 3'-5' exonuclease. In accordance with the contribution of the 3'-5' exonuclease to the fidelity of DNA replication, the three mutations in the Exo III motif (Y165F, Y165C and D169A) produced enzymes with an increased frequency of misinsertion and extension of DNA polymerization errors. Surprisingly, the three mutations in the Exo III motif strongly decreased (80- to 220-fold) the ability to replicate phi 29 DNA, this behaviour being due to a defect in the strand displacement activity, an intrinsic property of phi 29 DNA polymerase required for this process. Taking these results into account, we propose that the strand displacement activity of phi 29 DNA polymerase resides in the N-terminal domain, probably overlapping with the 3'-5' exonuclease active site.
在本报告中,我们展示了39种DNA聚合酶序列(包括原核和真核酶)3'-5'核酸外切酶结构域中最保守片段之一(Exo III)的比对情况。对形成phi 29 DNA聚合酶Exo III基序Tyr-(X)3-Asp的两个最保守残基进行定点替换,并未影响单链DNA结合、DNA聚合、持续合成能力或蛋白质引发的起始反应。相比之下,将高度保守的Tyr残基替换为Phe或Cys,会使3'-5'核酸外切酶活性分别降至野生型活性的7.5%和4.1%。将高度保守的Asp残基替换为Ala,导致3'-5'核酸外切酶几乎完全失活(0.1%)。根据3'-5'核酸外切酶对DNA复制保真度的贡献,Exo III基序中的三个突变(Y165F、Y165C和D169A)产生的酶在DNA聚合错误的错配插入和延伸频率增加。令人惊讶的是,Exo III基序中的三个突变使复制phi 29 DNA的能力大幅降低(80至220倍),这种行为是由于链置换活性存在缺陷,而链置换活性是该过程所需的phi 29 DNA聚合酶的固有特性。考虑到这些结果,我们提出phi 29 DNA聚合酶的链置换活性位于N端结构域,可能与3'-磷酸-5'核酸外切酶活性位点重叠。