Institute of Molecular Biology and Department of Chemistry, University of Oregon, Eugene, OR 97403-1229, USA.
Proc Natl Acad Sci U S A. 2010 Oct 19;107(42):17980-5. doi: 10.1073/pnas.1012277107. Epub 2010 Oct 4.
Local conformational changes in primer-template (P/T) DNA are involved in the selective incorporation of dNTP by DNA polymerases (DNAP). Here we use near UV CD and fluorescence spectra of pairs of base analogue probes, substituted either at the primer terminus or in the coding region of the template strand, to monitor and interpret conformational changes at and near the coding base of the template in P/T DNA complexes with Klenow fragment (KF) DNAP as the polymerase moves through the nucleotide addition cycle. Incoming dNTPs and rNTPs encounter binary complexes in which the 3'-end of the primer shuttles between the polymerization (pol) and exonuclease (exo) sites of DNAPs, even for perfectly complementary P/T DNA sequences. We have used spectral changes of probes inserted in both strands to monitor this two-state distribution and determine how it depends on the formation of ternary complexes with both complementary ("correct") and noncomplementary ("incorrect") NTPs and on the local sequence of the P/T DNA. The results show that the relative occupancy of the exo and pol sites is coupled to conformational changes in the P/T DNA of the complex that are partially regulated by the incoming NTP. We find that the coding base on the template strand is unperturbed by the binding of incorrect dNTPs, while binding of complementary rNTPs induces a novel template conformation. We conclude that, in addition to its editing function, primer strand occupancy of the 3'-exo site may also serve as a regulatory checkpoint for accurate dNTP selection in DNA synthesis.
引物-模板(P/T)DNA 中的局部构象变化涉及 DNA 聚合酶(DNAP)对 dNTP 的选择性掺入。在这里,我们使用碱基类似物探针对的近紫外 CD 和荧光光谱,这些探针要么在引物末端取代,要么在模板链的编码区取代,以监测和解释 Klenow 片段(KF)DNAP 作为聚合酶在核苷酸添加循环中移动时模板 P/T DNA 复合物中模板编码碱基附近的构象变化。进入的 dNTP 和 rNTP 会遇到二元复合物,其中引物的 3'-末端在 DNAP 的聚合(pol)和核酸外切酶(exo)位点之间穿梭,即使对于完全互补的 P/T DNA 序列也是如此。我们已经使用插入两条链的探针的光谱变化来监测这种两态分布,并确定它如何取决于与互补(“正确”)和非互补(“不正确”)NTP 的三元复合物的形成以及 P/T DNA 的局部序列。结果表明,三元复合物中 exo 和 pol 位点的相对占有率与复合物中 P/T DNA 的构象变化相关,这种构象变化部分受到进入 NTP 的调节。我们发现模板链上的编码碱基不受错误 dNTP 结合的干扰,而互补 rNTP 的结合会诱导模板构象发生变化。我们得出结论,除了其编辑功能外,引物链对 3'-exonuclease 位点的占据也可能作为 DNA 合成中准确 dNTP 选择的调节检查点。