首页> 外文期刊>Nucleic Acids Research >Probing minor groove recognition contacts by DNA polymerases and reverse transcriptases using 3-deaza-2'-deoxyadenosine
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Probing minor groove recognition contacts by DNA polymerases and reverse transcriptases using 3-deaza-2'-deoxyadenosine

机译:使用3-deaza-2'-deoxyadenosine通过DNA聚合酶和逆转录酶探测小沟识别接触

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Standard nucleobases all present electron density as an unshared pair of electrons to the minor groove of the double helix. Many heterocycles supporting artificial genetic systems lack this electron pair. To determine how different DNA polymerases use the pair as a substrate specificity determinant, three Family A polymerases, three Family B polymerases and three reverse transcriptases were examined for their ability to handle 3-deaza-2'-deoxyadenosine (c3dA), an analog of 2'-deoxyadenosine lacking the minor groove electron pair. Different polymerases differed widely in their interaction with c3dA. Most notably, Family A and Family B polymerases differed in their use of this interaction to exploit their exonuclease activities. Significant differences were also found within polymerase families. This plasticity in polymerase behavior is encouraging to those wishing to develop a synthetic biology based on artificial genetic systems. The differences also suggest either that Family A and Family B polymerases do not share a common ancestor, that minor groove contact was not used by that ancestor functionally or that this contact was not sufficiently critical to fitness to have been conserved as the polymerase families diverged. Each interpretation is significant for understanding the planetary biology of polymerases.
机译:标准核碱基均以双螺旋的小沟中未共享的电子对形式呈现电子密度。支持人工遗传系统的许多杂环都缺少该电子对。为了确定不同的DNA聚合酶如何使用该对作为底物特异性决定子,研究了三种Family A聚合酶,三种Family B聚合酶和三种逆转录酶处理3-deaza-2'-deoxyadenosine(c3dA)的能力,缺少小沟电子对的2'-脱氧腺苷。不同的聚合酶与c3dA的相互作用差异很大。最值得注意的是,家族A和家族B聚合酶在利用这种相互作用来利用其核酸外切酶活性方面的使用有所不同。在聚合酶家族中也发现了显着差异。聚合酶行为的这种可塑性对那些希望基于人工遗传系统开发合成生物学的人来说是令人鼓舞的。差异还表明,家族A和家族B的聚合酶不共享一个共同的祖先,该祖先在功能上没有使用较小的沟纹接触,或者由于聚合酶家族的不同,这种接触对于适应性而言并不十分重要,因此一直没有得到保留。每种解释对于理解聚合酶的行星生物学都具有重要意义。

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