Solution structure of DNA/RNA hybrid duplex with C8-propynyl 2′-deoxyadenosine modifications: Implication of RNase H and DNA/RNA duplex interaction

Hunjoong Lee, Theodore Diavatis, Sanka Tennakoon, Peilin Yu, Xiaolian Gao
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Abstract

Solution structures of DNA/RNA hybrid duplexes, d(GCGCA*AA*ACGCG): r(cgcguuuugcg)d(C) (designated PP57), containing two C8-propynyl 2′-deoxyadenosines (A*) and unmodified hybrid (designated U4A4) are solved. The C8-propynyl groups on 2′-deoxyadenosine perturb the local structure of the hybrid duplex, but overall the structure is similar to that of canonical DNA/RNA hybrid duplex except that Hoogsteen hydrogen bondings between A* and U result in lower thermal stability. RNase H is known to cleave RNA only in DNA/RNA hybrid duplexes. Minor groove widths of hybrid duplexes, sugar puckerings of DNA are reported to be responsible for RNase H mediated cleavage, but structural requirements for RNase H mediated cleavage still remain elusive. Despite the presence of bulky propynyl groups of PP57 in the minor groove and greater flexibility, the PP57 is an RNase H substrate. To provide an insight on the interactions between RNase H and substrates we have modeled Bacillus halodurans RNase H-PP57 complex, our NMR structure and modeling study suggest that the residue Gly(15) and Asn(16) of the loop residues between first β sheet and second β sheet of RNase HI of Escherichia coli might participate in substrate binding.

带有c8 -丙基2 ' -脱氧腺苷修饰的DNA/RNA杂化双工的溶液结构:RNase H和DNA/RNA双工相互作用的含义
求解了含有两个c8 -丙基2 ' -脱氧腺苷(A*)的DNA/RNA杂合物d(GCGCA*AA*ACGCG): r(cgcguuuugcg)d(C)(编号PP57)和未修饰杂合物(编号U4A4)的溶液结构。2 ' -脱氧腺苷上的c8 -丙基干扰了杂化双工的局部结构,但总体结构与典型的DNA/RNA杂化双工相似,只是A*和U之间的Hoogsteen氢键导致热稳定性较低。已知RNase H仅在DNA/RNA杂交双链中切割RNA。据报道,杂交双链的小沟槽宽度,DNA的糖皱缩是RNase H介导的切割的原因,但RNase H介导的切割的结构要求仍然难以捉摸。尽管PP57在较小的凹槽中存在大块的丙基基团,并且具有更大的灵活性,但PP57是RNase H底物。为了深入了解RNase H与底物之间的相互作用,我们建立了盐芽孢杆菌RNase H- pp57复合物的模型,我们的核磁共振结构和建模研究表明,大肠杆菌RNase HI的第一个β片和第二个β片之间的环残基的残基Gly(15)和Asn(16)可能参与底物结合。
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