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Two distinct overstretched DNA structures revealed by single-molecule thermodynamics measurements

机译:单分子热力学测量揭示了两个不同的过度拉伸的DNA结构

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摘要

Double-stranded DNA is a dynamic molecule whose structure can change depending on conditions. While there is consensus in the literature about many structures DNA can have, the state of highly-stretched DNA is still not clear. Several groups have shown that DNA in the torsion-unconstrained B-form undergoes an “overstretching” transition at a stretching force of around 65 pN, which leads to approximately 1.7-fold elongation of the DNA contour length. Recent experiments have revealed that two distinct structural transitions are involved in the overstretching process: (i) a hysteretic “peeling” off one strand from its complementary strand, and (ii) a nonhysteretic transition that leads to an undetermined DNA structure. We report the first simultaneous determination of the entropy (ΔS) and enthalpy changes (ΔH) pertaining to these respective transitions. For the hysteretic peeling transition, we determined ΔS ∼ 20 cal/(K.mol) and ΔH ∼ 7 kcal/mol. In the case of the nonhysteretic transition, ΔS ∼ -3 cal/(K.mol) and ΔH ∼ 1 kcal/mol. Furthermore, the response of the transition force to salt concentration implies that the two DNA strands are spatially separated after the hysteretic peeling transition. In contrast, the corresponding response after the nonhysteretic transition indicated that the strands remained in close proximity. The selection between the two transitions depends on DNA base-pair stability, and it can be illustrated by a multidimensional phase diagram. Our results provide important insights into the thermodynamics of DNA overstretching and conformational structures of overstretched DNA that may play an important role in vivo.
机译:双链DNA是一种动态分子,其结构可以根据条件而变化。尽管文献中对DNA可以具有许多结构达成了共识,但高度伸展的DNA的状态仍不清楚。几组研究表明,扭转无约束的B型DNA在大约65 pN的拉伸力下经历了“过度拉伸”转变,这导致DNA轮廓长度的大约1.7倍伸长。最近的实验表明,过度拉伸过程涉及两个不同的结构转变:(i)从其互补链上剥离一条链的滞后性“剥离”,以及(ii)导致不确定的DNA结构的非滞后性转变。我们报告了与这些各个跃迁有关的熵(ΔS)和焓变(ΔH)的首次同时确定。对于滞后剥离转变,我们确定了ΔS〜20 cal /(K.mol)和ΔH〜7 kcal / mol。在非迟滞转变的情况下,ΔS〜-3 cal /(K.mol)和ΔH〜1 kcal / mol。此外,过渡力对盐浓度的响应意味着在滞后剥离过渡后两条DNA链在空间上分开。相反,在非滞后转变后的相应响应表明,线束保持紧密接近。两个过渡之间的选择取决于DNA碱基对的稳定性,可以通过多维相图进行说明。我们的结果提供了对DNA过度伸展的热力学和过度伸展的DNA的构象结构的重要见解,这些结构可能在体内起重要作用。

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