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锁核酸-DNA 双链的稳定性和错配区分。

Stability and mismatch discrimination of locked nucleic acid-DNA duplexes.

机构信息

Department of Molecular Genetics and Biophysics, Integrated DNA Technologies, Coralville, Iowa 52241, United States.

出版信息

Biochemistry. 2011 Nov 1;50(43):9352-67. doi: 10.1021/bi200904e. Epub 2011 Oct 6.

Abstract

Locked nucleic acids (LNA; symbols of bases, +A, +C, +G, and +T) are introduced into chemically synthesized oligonucleotides to increase duplex stability and specificity. To understand these effects, we have determined thermodynamic parameters of consecutive LNA nucleotides. We present guidelines for the design of LNA oligonucleotides and introduce free online software that predicts the stability of any LNA duplex oligomer. Thermodynamic analysis shows that the single strand-duplex transition is characterized by a favorable enthalpic change and by an unfavorable loss of entropy. A single LNA modification confines the local conformation of nucleotides, causing a smaller, less unfavorable entropic loss when the single strand is restricted to the rigid duplex structure. Additional LNAs adjacent to the initial modification appear to enhance stacking and H-bonding interactions because they increase the enthalpic contributions to duplex stabilization. New nearest-neighbor parameters correctly forecast the positive and negative effects of LNAs on mismatch discrimination. Specificity is enhanced in a majority of sequences and is dependent on mismatch type and adjacent base pairs; the largest discriminatory boost occurs for the central +C·C mismatch within the +T+C+C sequence and the +A·G mismatch within the +T+A+G sequence. LNAs do not affect specificity in some sequences and even impair it for many +G·T and +C·A mismatches. The level of mismatch discrimination decreases the most for the central +G·T mismatch within the +G+G+C sequence and the +C·A mismatch within the +G+C+G sequence. We hypothesize that these discrimination changes are not unique features of LNAs but originate from the shift of the duplex conformation from B-form to A-form.

摘要

锁核酸(LNA;碱基的符号为+A、+C、+G 和+T)被引入化学合成的寡核苷酸中,以提高双链体的稳定性和特异性。为了理解这些影响,我们已经确定了连续 LNA 核苷酸的热力学参数。我们为 LNA 寡核苷酸的设计提供了指导方针,并介绍了免费的在线软件,该软件可预测任何 LNA 双链体寡聚物的稳定性。热力学分析表明,单链-双链体转变的特征是有利的焓变和不利的熵损失。单个 LNA 修饰限制了核苷酸的局部构象,当单链被限制在刚性双链体结构中时,会导致较小的、不利的熵损失。紧邻初始修饰的额外 LNA 似乎增强了堆积和氢键相互作用,因为它们增加了对双链体稳定化的焓贡献。新的最近邻参数正确预测了 LNA 对错配识别的积极和消极影响。特异性在大多数序列中得到增强,并且依赖于错配类型和相邻碱基对;在+T+C+C 序列中的中央+C·C 错配和在+T+A+G 序列中的+A·G 错配中,特异性增强最大。LNA 不会影响某些序列中的特异性,甚至会对许多+G·T 和+C·A 错配造成损害。错配识别的程度在+G+G+C 序列中的中央+G·T 错配和+G+C+G 序列中的+C·A 错配中降低最多。我们假设这些错配识别的变化不是 LNA 的独特特征,而是源于双链体构象从 B 型向 A 型的转变。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6755/3201676/922c0fc17f6a/bi-2011-00904e_0001.jpg

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