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脉冲双共振电子顺磁共振研究寡核苷酸的自限复合物。

Pulsed Dipolar EPR for Self-Limited Complexes of Oligonucleotides Studies.

机构信息

Institute of Chemical Biology and Fundamental Medicine SB RAS, 630090 Novosibirsk, Russia.

Institute of Physical and Theoretical Chemistry, Goethe University Frankfurt, Max-von-Laue-Str. 7, 60438 Frankfurt am Main, Germany.

出版信息

Biomolecules. 2024 Jul 23;14(8):887. doi: 10.3390/biom14080887.

Abstract

Pulsed electron-electron double resonance (PELDOR) spectroscopy is a powerful method for determining nucleic acid (NA) structure and conformational dynamics. PELDOR with molecular dynamics (MD) simulations opens up unique possibilities for defining the conformational ensembles of flexible, three-dimensional, self-assembled complexes of NA. Understanding the diversity and structure of these complexes is vital for uncovering matrix and regulative biological processes in the human body and artificially influencing them for therapeutic purposes. To explore the reliability of PELDOR and MD simulations, we site-specifically attached nitroxide spin labels to oligonucleotides, which form self-assembled complexes between NA chains and exhibit significant conformational flexibility. The DNA complexes assembled from a pair of oligonucleotides with different linker sizes showed excellent agreement between the distance distributions obtained from PELDOR and calculated from MD simulations, both for the mean inter-spin distance and the distance distribution width. These results prove that PELDOR with MD simulations has significant potential for studying the structure and dynamics of conformational flexible complexes of NA.

摘要

脉冲电子-电子双共振(PELDOR)光谱学是一种用于确定核酸(NA)结构和构象动力学的强大方法。与分子动力学(MD)模拟相结合的 PELDOR 为定义灵活的、三维的、自组装的 NA 分子复合物的构象集合体开辟了独特的可能性。了解这些复合物的多样性和结构对于揭示人体中的基质和调节生物过程以及人为地影响它们以达到治疗目的至关重要。为了探索 PELDOR 和 MD 模拟的可靠性,我们将氮氧自由基自旋标记物特异性地连接到寡核苷酸上,这些寡核苷酸在 NA 链之间形成自组装复合物,并表现出显著的构象灵活性。由一对具有不同连接体大小的寡核苷酸组装而成的 DNA 复合物,在从 PELDOR 获得的距离分布与从 MD 模拟计算得出的距离分布之间表现出极好的一致性,无论是平均自旋间距离还是距离分布宽度。这些结果证明,与 MD 模拟相结合的 PELDOR 在研究构象灵活的 NA 复合物的结构和动力学方面具有重要的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d80b/11351890/a0e169c45a2b/biomolecules-14-00887-g001.jpg

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