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反应pH值对核酸外切酶缺陷型Klenow聚合酶保真度和持续合成能力的影响。

Effect of reaction pH on the fidelity and processivity of exonuclease-deficient Klenow polymerase.

作者信息

Eckert K A, Kunkel T A

机构信息

National Institute of Environmental Health Sciences, Laboratory of Molecular Genetics, Research Triangle Park, North Carolina 27709.

出版信息

J Biol Chem. 1993 Jun 25;268(18):13462-71.

PMID:8390464
Abstract

We have examined as a function of pH the fidelity of DNA synthesis catalyzed by the 3'-->5' exonuclease-deficient form of the Klenow fragment of Escherichia coli DNA polymerase I. Increasing the pH of in vitro gap-filling reactions from pH 6.2 through 9.8 (37 degrees C increased the frequency of base substitution and minus-one-base frameshift mutations 50- and 40-fold, respectively, as measured by reversion of a nonsense or frameshift mutation within the lacZ alpha gene of bacteriophage M13mp2. To understand the mechanisms of high fidelity at low pH, we have examined the biochemical events associated with DNA synthesis at pH 6.2 that might be responsible for the observed accuracy in vitro. We show that while the steady-state frequency of T.dGTP misinsertion at the lacZ alpha opal codon is 20-fold lower at pH 6.2 than at pH 7.6, pH-dependent changes in the frequencies of G-dATP and A-dCTP base misinsertions at the lacZ alpha nonsense codon are insufficient to explain the fidelity changes observed in the gap-filling assay. However, the efficiency of steady-state extension synthesis from template-primers containing 3'-terminal T.G, G.A, and A.C (template-primer) mispairs was reduced up to 160-fold at pH 6.2 relative to pH 7.6. Analyses of the processivity of DNA polymerization versus pH demonstrated that at low pH the termination probability was decreased at specific template positions. Concomitantly, at sites where the termination probability was lower at pH 6.2, a decreased error rate was observed for base substitution mutations at three template positions and for minus-one-base frameshift mutations at two homopolymeric sequences relative to pH 7.6. We suggest that the observed increase in error discrimination by the exonuclease-deficient Klenow polymerase results from altered template binding properties of the enzyme at pH 6.2.

摘要

我们已研究了作为pH函数的、由大肠杆菌DNA聚合酶I的Klenow片段的3'→5'核酸外切酶缺陷型催化的DNA合成保真度。将体外缺口填补反应的pH从6.2提高到9.8(37℃),通过噬菌体M13mp2的lacZα基因内无义或移码突变的回复突变来测量,碱基替换和减一碱基移码突变的频率分别增加了50倍和40倍。为了解低pH下高保真度的机制,我们研究了与pH 6.2时DNA合成相关的生化事件,这些事件可能是体外观察到的准确性的原因。我们表明,虽然在lacZα乳白密码子处T·dGTP错误插入的稳态频率在pH 6.2时比在pH 7.6时低20倍,但在lacZα无义密码子处G·dATP和A·dCTP碱基错误插入频率的pH依赖性变化不足以解释在缺口填补试验中观察到的保真度变化。然而,相对于pH 7.6,在pH 6.2时,从含有3'-末端T·G、G·A和A·C(模板-引物)错配的模板-引物进行稳态延伸合成的效率降低了多达160倍。对DNA聚合反应的持续合成能力与pH的分析表明,在低pH下,特定模板位置的终止概率降低。同时,在pH 6.2时终止概率较低的位点,相对于pH 7.6,在三个模板位置的碱基替换突变和在两个同聚物序列处的减一碱基移码突变的错误率降低。我们认为,观察到的核酸外切酶缺陷型Klenow聚合酶错误识别增加是由于该酶在pH 6.2时模板结合特性的改变。

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