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DNA双链形成过程中序列依赖性跃迁路径时间和构象扩散的直接测量

Direct measurement of sequence-dependent transition path times and conformational diffusion in DNA duplex formation.

作者信息

Neupane Krishna, Wang Feng, Woodside Michael T

机构信息

Department of Physics, University of Alberta, Edmonton, AB T6G 2E1, Canada.

National Institute for Nanotechnology, National Research Council, Edmonton, AB T6G 2M9, Canada.

出版信息

Proc Natl Acad Sci U S A. 2017 Feb 7;114(6):1329-1334. doi: 10.1073/pnas.1611602114. Epub 2017 Jan 23.

Abstract

The conformational diffusion coefficient, D, sets the timescale for microscopic structural changes during folding transitions in biomolecules like nucleic acids and proteins. D encodes significant information about the folding dynamics such as the roughness of the energy landscape governing the folding and the level of internal friction in the molecule, but it is challenging to measure. The most sensitive measure of D is the time required to cross the energy barrier that dominates folding kinetics, known as the transition path time. To investigate the sequence dependence of D in DNA duplex formation, we measured individual transition paths from equilibrium folding trajectories of single DNA hairpins held under tension in high-resolution optical tweezers. Studying hairpins with the same helix length but with G:C base-pair content varying from 0 to 100%, we determined both the average time to cross the transition paths, τ, and the distribution of individual transit times, P(t). We then estimated D from both τ and P(t) from theories assuming one-dimensional diffusive motion over a harmonic barrier. τ decreased roughly linearly with the G:C content of the hairpin helix, being 50% longer for hairpins with only A:T base pairs than for those with only G:C base pairs. Conversely, D increased linearly with helix G:C content, roughly doubling as the G:C content increased from 0 to 100%. These results reveal that G:C base pairs form faster than A:T base pairs because of faster conformational diffusion, possibly reflecting lower torsional barriers, and demonstrate the power of transition path measurements for elucidating the microscopic determinants of folding.

摘要

构象扩散系数D设定了核酸和蛋白质等生物分子折叠转变过程中微观结构变化的时间尺度。D编码了有关折叠动力学的重要信息,例如支配折叠的能量景观的粗糙度以及分子内部摩擦的程度,但测量起来具有挑战性。对D最敏感的度量是跨越主导折叠动力学的能量屏障所需的时间,即所谓的过渡路径时间。为了研究DNA双链形成过程中D的序列依赖性,我们在高分辨率光镊中对处于张力下的单个DNA发夹的平衡折叠轨迹测量了各个过渡路径。研究具有相同螺旋长度但G:C碱基对含量从0到100%变化的发夹,我们确定了跨越过渡路径的平均时间τ以及各个通过时间的分布P(t)。然后,我们根据假设在谐波势垒上进行一维扩散运动的理论,从τ和P(t)估计了D。τ大致随发夹螺旋的G:C含量呈线性下降,仅含A:T碱基对的发夹比仅含G:C碱基对的发夹长50%。相反,D随螺旋G:C含量呈线性增加,随着G:C含量从0增加到100%,D大致翻倍。这些结果表明,由于构象扩散更快,G:C碱基对比A:T碱基对形成得更快,这可能反映了较低的扭转势垒,并证明了过渡路径测量在阐明折叠微观决定因素方面的作用。

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