Hunter W N, Brown T, Anand N N, Kennard O
Nature. 1986;320(6062):552-5. doi: 10.1038/320552a0.
Mutational pathways rely on introducing changes in the DNA double helix. This may be achieved by the incorporation of a noncomplementary base on replication or during genetic recombination, leading to substitution mutation. In vivo studies have shown that most combinations of base-pair mismatches can be accommodated in the DNA double helix, albeit with varying efficiencies. Fidelity of replication requires the recognition and excision of mismatched bases by proofreading enzymes and post-replicative mismatch repair systems. Rates of excision vary with the type of mismatch and there is some evidence that these are influenced by the nature of the neighbouring sequences. However, there is little experimental information about the molecular structure of mismatches and their effect on the DNA double helix. We have recently determined the crystal structures of several DNA fragments with guanine X thymine and adenine X guanine mismatches in a full turn of a B-DNA helix and now report the nature of the base pairing between adenine and cytosine in an isomorphous fragment. The base pair found in the present study is novel and we believe has not previously been demonstrated. Our results suggest that the enzymatic recognition of mismatches is likely to occur at the level of the base pairs and that the efficiency of repair can be correlated with structural features.
突变途径依赖于在DNA双螺旋中引入变化。这可以通过在复制过程中或基因重组期间掺入非互补碱基来实现,从而导致替换突变。体内研究表明,大多数碱基对错配组合都可以容纳在DNA双螺旋中,尽管效率各不相同。复制的保真度需要校对酶和复制后错配修复系统识别并切除错配碱基。切除率因错配类型而异,并且有一些证据表明这些受到相邻序列性质的影响。然而,关于错配的分子结构及其对DNA双螺旋的影响的实验信息很少。我们最近确定了几个在B-DNA螺旋一整圈中含有鸟嘌呤X胸腺嘧啶和腺嘌呤X鸟嘌呤错配的DNA片段的晶体结构,现在报告一个同晶型片段中腺嘌呤与胞嘧啶之间碱基配对的性质。本研究中发现的碱基对是新颖的,我们认为以前未曾被证明过。我们的结果表明,错配的酶促识别可能发生在碱基对水平,并且修复效率可以与结构特征相关联。