非对称富含G/C的双链DNA序列依赖构象转变的光谱研究。

IF 2.4 4区 生物学 Q3 BIOPHYSICS
Petra Školáková, Iva Kejnovská, Daniel Renčiuk
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引用次数: 0

摘要

核酸是所有生命所必需的分子,除了众所周知的右手双螺旋结构外,还可以采用许多替代结构,其中一些已被报道存在并在体内发挥作用。核酸结构研究最合适的方法之一是圆二色光谱,利用由于吸收核碱基的不对称缠绕而引起的结构诱导手性。利用电子CD和吸收光谱结合熔融实验,我们分析了DNA双螺旋和核酸的两种可选构象,胞嘧啶i基序和鸟嘌呤四元序之间的构象平衡,作为模型G/C-富序列的主要结构的函数,在特定的DNA链中含有G和C运行块。本文是捷克科学院生物物理研究所成立70周年特刊的一部分,核酸的圆二色光谱已经成功地使用了多年。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Spectroscopic studies of sequence-dependent conformational transitions in asymmetric G/C rich double-stranded DNA.

Nucleic acids, molecules essential for all life, can adopt many alternative structures besides the well-known right-handed double helix, some of which have been reported to exist and function in vivo. One of the most appropriate methods for structural studies of nucleic acids is circular dichroism spectroscopy, utilizing structure-induced chirality due to the asymmetric winding of absorbing nucleobases. Using electronic CD and absorption spectroscopies in combination with melting experiments, we analyzed a conformational equilibrium between DNA double helix and two alternative conformations of nucleic acids, cytosine i-motifs and guanine quadruplexes, as a function of the primary structure of model G/C-rich sequences, containing blocks of G and C runs in particular DNA strands. This paper is a part of special issue dedicated to 70th anniversary of the Biophysical Institute of the Czech Academy of Sciences, where circular dichroism spectroscopy of nucleic acids has been used successfully and impactfully for many years.

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来源期刊
European Biophysics Journal
European Biophysics Journal 生物-生物物理
CiteScore
4.30
自引率
0.00%
发文量
43
审稿时长
6-12 weeks
期刊介绍: The journal publishes papers in the field of biophysics, which is defined as the study of biological phenomena by using physical methods and concepts. Original papers, reviews and Biophysics letters are published. The primary goal of this journal is to advance the understanding of biological structure and function by application of the principles of physical science, and by presenting the work in a biophysical context. Papers employing a distinctively biophysical approach at all levels of biological organisation will be considered, as will both experimental and theoretical studies. The criteria for acceptance are scientific content, originality and relevance to biological systems of current interest and importance. Principal areas of interest include: - Structure and dynamics of biological macromolecules - Membrane biophysics and ion channels - Cell biophysics and organisation - Macromolecular assemblies - Biophysical methods and instrumentation - Advanced microscopics - System dynamics.
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