在拥挤环境中模拟DNA时,蛋白质相互作用在稳定典型DNA特征中的作用。

Q1 Biochemistry, Genetics and Molecular Biology
BMC Biophysics Pub Date : 2018-12-07 eCollection Date: 2018-01-01 DOI:10.1186/s13628-018-0048-y
Asli Yildirim, Nathalie Brenner, Robert Sutherland, Michael Feig
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引用次数: 4

摘要

背景:细胞环境是高度拥挤的生物大分子导致频繁的非特异性相互作用。虽然这种拥挤对蛋白质结构和动力学的影响已经被广泛研究,但人们对细胞拥挤如何影响核酸的构象采样知之甚少。结果:蛋白质拥挤对DNA(脱氧核糖核酸)构象偏好的影响是由蛋白质拥挤物包围的含有DNA十二聚体的系统的完全原子分子动力学模拟描述的。从模拟中,我们发现DNA结构在聚集物存在的情况下更倾向于保持b型构象。对b样构象的偏好是由于蛋白质与DNA糖-磷酸主链的非特异性相互作用。此外,模拟表明,拥挤的相互作用将构象采样缩小到构象空间的规范区域。结论:总的结论是,拥挤效应可以稳定DNA的典型特征,这些特征对生物功能最重要。结果是补充以前的DNA在减少电介质环境的研究,其中减少电介质环境单独导致构象转移到a -DNA。在这里没有观察到这样的转变,这表明在体内条件下,细胞环境的介电响应的降低被与蛋白质聚集物的非特异性相互作用所抵消。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Role of protein interactions in stabilizing canonical DNA features in simulations of DNA in crowded environments.

Role of protein interactions in stabilizing canonical DNA features in simulations of DNA in crowded environments.

Role of protein interactions in stabilizing canonical DNA features in simulations of DNA in crowded environments.

Role of protein interactions in stabilizing canonical DNA features in simulations of DNA in crowded environments.

Background: Cellular environments are highly crowded with biological macromolecules resulting in frequent non-specific interactions. While the effect of such crowding on protein structure and dynamics has been studied extensively, very little is known how cellular crowding affects the conformational sampling of nucleic acids.

Results: The effect of protein crowding on the conformational preferences of DNA (deoxyribonucleic acid) is described from fully atomistic molecular dynamics simulations of systems containing a DNA dodecamer surrounded by protein crowders. From the simulations, it was found that DNA structures prefer to stay in B-like conformations in the presence of the crowders. The preference for B-like conformations results from non-specific interactions of crowder proteins with the DNA sugar-phosphate backbone. Moreover, the simulations suggest that the crowder interactions narrow the conformational sampling to canonical regions of the conformational space.

Conclusions: The overall conclusion is that crowding effects may stabilize the canonical features of DNA that are most important for biological function. The results are complementary to a previous study of DNA in reduced dielectric environments where reduced dielectric environments alone led to a conformational shift towards A-DNA. Such a shift was not observed here suggested that the reduced dielectric response of cellular environments is counteracted by non-specific interactions with protein crowders under in vivo conditions.

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BMC Biophysics
BMC Biophysics BIOPHYSICS-
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