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Submicrometer elasticity of double-stranded DNA revealed by precision force-extension measurements with magnetic tweezers

机译:磁镊子精确的力-延伸测量揭示了双链DNA的亚微米弹性

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Submicrometer elasticity of double-stranded DNA (dsDNA) governs nanoscale bending of DNA segments and their interactions with proteins. Single-molecule force spectroscopy, including magnetic tweezers (MTs), is an important tool for studying DNA mechanics. However, its application to short DNAs under 1 μm is limited. We developed an MT-based method for precise force-extension measurements in the 100-nm regime that enables in situ correction of the error in DNA extension measurement, and normalizes the force variability across beads by exploiting DNA hairpins. The method reduces the lower limit of tractable dsDNA length down to 198 base pairs (bp) (67 nm), an order-of-magnitude improvement compared to conventional tweezing experiments. Applying this method and the finite worm-like chain model we observed an essentially constant persistence length across the chain lengths studied (198 bp to 10 kbp), which steeply depended on GC content and methylation. This finding suggests a potential sequence-dependent mechanism for short-DNA elasticity.
机译:双链DNA(dsDNA)的亚微米弹性控制着DNA片段的纳米级弯曲及其与蛋白质的相互作用。包括磁镊子(MT)在内的单分子力光谱学是研究DNA力学的重要工具。但是,其在1μm以下的短DNA上的应用受到限制。我们开发了一种基于MT的方法,可以在100 nm的范围内进行精确的力延伸测量,该方法可以就地校正DNA延伸测量中的误差,并通过利用DNA发夹标准化珠子上的力变异性。该方法将可处理的dsDNA长度的下限降低到198个碱基对(bp)(67 nm),与传统的钳夹实验相比,幅度提高了一个数量级。应用这种方法和有限的蠕虫状链模型,我们观察到整个研究的链长(198 bp至10 kbp)上的持久长度基本恒定,这主要取决于GC含量和甲基化。这一发现提示了潜在的依赖序列的短DNA弹性机制。

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