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DNA 哑铃形短链中反转摆动 T·T 错配产生前所未有的疏水稳定化

Unprecedented hydrophobic stabilizations from a reverse wobble T·T mispair in DNA minidumbbell.

机构信息

Department of Chemistry, The Chinese University of Hong Kong, Shatin, New Territories, Hong Kong.

出版信息

J Biomol Struct Dyn. 2020 Apr;38(7):1946-1953. doi: 10.1080/07391102.2019.1621211. Epub 2019 May 30.

Abstract

Minidumbbell (MDB) is a newly found non-B DNA structure formed by short single-strand sequences. Up to now, three MDBs have been reported to form at neutral pH by sequences containing two repeats of TTTA, CCTG and CTTG. Among them, the thermodynamically less stable TTTA and CCTG MDBs have been proposed to be the structural intermediates that cause TTTA and CCTG repeat expansions during DNA replication in pathogen and myotonic dystrophy type 2 patients, respectively. Although the CTTG MDB has a melting temperature of at least 13 °C higher than those of the other two, no CTTG repeat expansion has ever been reported in any genomes. In this study, we successfully determined the solution structure of the CTTG MDB and observed for the first time the formation of a reverse wobble T·T mispair with two symmetric hydrogen bonds. More importantly, we identified unprecedented hydrophobic interactions between the two methyl groups of this T·T mispair and the four 2'-methylene groups of their nearby loop-closing base pair residues. These stabilizations account for the substantial increase in the MDB thermodynamic stability which may govern the occurrence of repeat expansions.Communicated by Ramaswamy H. Sarma [Formula: see text].

摘要

哑铃状 DNA (MDB)是一种新发现的非 B-DNA 结构,由短的单链序列形成。到目前为止,已有三个 MDB 被报道在中性 pH 下由含有两个 TTTA、CCTG 和 CTTG 重复序列的序列形成。其中,热力学上不稳定的 TTTA 和 CCTG MDB 被提出分别是病原体和肌强直性营养不良 2 型患者 DNA 复制过程中导致 TTTA 和 CCTG 重复扩展的结构中间体。尽管 CTTG MDB 的熔点至少比其他两种高 13°C,但在任何基因组中都从未报道过 CTTG 重复扩展。在本研究中,我们成功地确定了 CTTG MDB 的溶液结构,并首次观察到形成了一个带有两个对称氢键的反向摆动 T·T 错配。更重要的是,我们发现了这种 T·T 错配的两个甲基与它们附近环闭碱基对残基的四个 2'-亚甲基之间前所未有的疏水相互作用。这些稳定作用解释了 MDB 热力学稳定性的显著增加,这可能控制了重复扩展的发生。由 Ramaswamy H. Sarma 通讯。

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