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首页> 外文期刊>Journal of Molecular Biology >Sequence specific DNA binding of Ets-1 transcription factor: molecular dynamics study on the Ets domain--DNA complexes.
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Sequence specific DNA binding of Ets-1 transcription factor: molecular dynamics study on the Ets domain--DNA complexes.

机译:Ets-1转录因子的序列特异性DNA结合:Ets域-DNA复合物的分子动力学研究。

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Molecular dynamics (MD) simulations for Ets-1 ETS domain-DNA complexes were performed to investigate the mechanism of sequence-specific recognition of the GGAA DNA core by the ETS domain. Employing the crystal structure of the Ets-1 ETS domain-DNA complex as a starting structure we carried out MD simulations of: (i). the complex between Ets-1 ETS domain and a 14 base-pair DNA containing GGAA core sequence (ETS-GGAA); (ii). the complex between the ETS domain and a DNA having single base-pair mutation, GGAG sequence (ETS-GGAG); and (iii). the 14 base-pair DNA alone (GGAA). Comparative analyses of the MD structures of ETS-GGAA and ETS-GGAG reveal that the DNA bending angles and the ETS domain-DNA phosphate interactions are similar in these complexes. These results support that the GGAA core sequence is distinguished from the mutated GGAG sequence by a direct readout mechanism in the Ets-1 ETS domain-DNA complex. Further analyses of the direct contacts in the interface between the helix-3 region of Ets-1 and the major groove of the core DNA sequence clearly show that the highly conserved arginine residues, Arg391 and Arg394, play a critical role in binding to the GGAA core sequence. These arginine residues make bidentate contacts with the nucleobases of GG dinucleotides in GGAA core sequence. In ETS-GGAA, the hydroxyl group of Tyr395 is hydrogen bonded to N7 nitrogen of A(3) (the third adenosine in the GGAA core), while the hydroxyl group makes a contact with N4 nitrogen of C(4') (the complementary nucleotide of the fourth guanosine G(4) in the GGAG sequence) in the ETS-GGAG complex. We have found that this difference in behavior of Tyr395 results in the relatively large motion of helix-3 in the ETS-GGAG complex, causing the collapse of bidentate contacts between Arg391/Arg394 and the GG dinucleotides in the GGAG sequence.
机译:进行了Ets-1 ETS域-DNA复合物的分子动力学(MD)模拟,以研究ETS域对GGAA DNA核心的序列特异性识别机制。利用Ets-1 ETS结构域-DNA复合体的晶体结构作为起始结构,我们进行了以下的MD模拟:(i)。 Ets-1 ETS结构域与包含GGAA核心序列的14个碱基对DNA(ETS-GGAA)之间的复合体; (ii)。 ETS结构域与具有单个碱基对突变的DNA,GGAG序列(ETS-GGAG)之间的复合物;和(iii)。仅14个碱基对DNA(GGAA)。对ETS-GGAA和ETS-GGAG的MD结构的比较分析表明,在这些复合物中,DNA弯曲角和ETS域-DNA磷酸盐相互作用相似。这些结果支持通过Ets-1 ETS结构域-DNA复合物中的直接读出机制,将GAGAA核心序列与突变的GGAG序列区分开。进一步分析Ets-1的螺旋3区与核心DNA序列的主要沟之间的界面中的直接接触清楚地表明,高度保守的精氨酸残基Arg391和Arg394在与GGAA结合中起关键作用核心序列。这些精氨酸残基与GGAA核心序列中的GG二核苷酸的核碱基进行二齿接触。在ETS-GGAA中,Tyr395的羟基氢键合到A(3)的N7氮(GGAA核中的第三个腺苷),而羟基与C(4')的N4氮(互补ETS-GGAG复合物中的第四个鸟苷G(4)的核苷酸)。我们已经发现,Tyr395的这种行为差异导致ETS-GGAG复合物中螺旋3的运动相对较大,从而导致GG391序列中Arg391 / Arg394和GG二核苷酸之间的双齿接触塌陷。

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