首页> 美国卫生研究院文献>Biophysical Journal >Orientation Preferences of Backbone Secondary Amide Functional Groups in Peptide Nucleic Acid Complexes: Quantum Chemical Calculations Reveal an Intrinsic Preference of Cationic D-Amino Acid-Based Chiral PNA Analogues for the P-form
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Orientation Preferences of Backbone Secondary Amide Functional Groups in Peptide Nucleic Acid Complexes: Quantum Chemical Calculations Reveal an Intrinsic Preference of Cationic D-Amino Acid-Based Chiral PNA Analogues for the P-form

机译:肽核酸复合物中主链仲酰胺官能团的取向偏好:量子化学计算揭示了基于阳离子D氨基酸的手性PNA类似物的固有偏好。

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摘要

Geometric descriptions of nonideal interresidue hydrogen bonding and backbone-base water bridging in the minor groove are established in terms of polyamide backbone carbonyl group orientation from analyses of residue junction conformers in experimentally determined peptide nucleic acid (PNA) complexes. Two types of interresidue hydrogen bonding are identified in PNA conformers in heteroduplexes with nucleic acids that adopt A-like basepair stacking. Quantum chemical calculations on the binding of a water molecule to an O2 base atom in glycine-based PNA thymine dimers indicate that junctions modeled with P-form backbone conformations are lower in energy than a dimer comprising the predominant conformation observed in A-like helices. It is further shown in model systems that PNA analogs based on D-lysine are better able to preorganize in a conformation exclusive to P-form helices than is glycine-based PNA. An intrinsic preference for this conformation is also exhibited by positively charged chiral PNA dimers carrying 3-amino-D-alanine or 4-aza-D-leucine residue units that provide for additional rigidity by side-chain hydrogen bonding to the backbone carbonyl oxygen. Structural modifications stabilizing P-form helices may obviate the need for large heterocycles to target DNA pyrimidine bases via PNA·DNA-PNA triplex formation. Quantum chemical modeling methods are used to propose candidate PNA Hoogsteen strand designs.
机译:通过实验确定的肽核酸(PNA)复合物中残基连接构象的分析,根据聚酰胺骨架羰基方向,建立了小沟槽中非理想残基间氢键键合和骨架基水桥接的几何描述。在异质双链体的PNA构象异构体中,与采用A样碱基对堆积的核酸鉴定出两种类型的残基氢键。关于基于甘氨酸的PNA胸腺嘧啶二聚体中水分子与O2碱基原子结合的量子化学计算表明,以P型骨架构象构筑的连接处的能量比包含在A型螺旋中观察到的主要构筑物的二聚体的能量低。在模型系统中进一步表明,与基于甘氨酸的PNA相比,基于D-赖氨酸的PNA类似物更能以P型螺旋专有的构象进行预组织。带有3-氨基-D-丙氨酸或4-氮杂-D-亮氨酸残基单元的带正电荷的手性PNA二聚体也表现出对该构象的内在偏好,所述手性PNA二聚体通过与主链羰基氧键合的侧链氢键提供额外的刚性。稳定P型螺旋的结构修饰可以消除通过PNA·DNA-PNA三链体形成将大杂环靶向DNA嘧啶碱基的需要。量子化学建模方法用于提出候选PNA Hoogsteen链设计。

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