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Stretching Short Sequences of DNA with Constant Force Axial Optical Tweezers

机译:用恒力轴向光镊拉伸DNA的短序列

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摘要

Single-molecule techniques for stretching DNA of contour lengths less than a kilobase are fraught with experimental difficulties. However, many interesting biological events such as histone binding and protein-mediated looping of DNA1,2, occur on this length scale. In recent years, the mechanical properties of DNA have been shown to play a significant role in fundamental cellular processes like the packaging of DNA into compact nucleosomes and chromatin fibers3,4. Clearly, it is then important to understand the mechanical properties of short stretches of DNA. In this paper, we provide a practical guide to a single-molecule optical tweezing technique that we have developed to study the mechanical behavior of DNA with contour lengths as short as a few hundred basepairs.The major hurdle in stretching short segments of DNA is that conventional optical tweezers are generally designed to apply force in a direction lateral to the stage5,6, (see Fig. 1). In this geometry, the angle between the bead and the coverslip, to which the DNA is tethered, becomes very steep for submicron length DNA. The axial position must now be accounted for, which can be a challenge, and, since the extension drags the microsphere closer to the coverslip, steric effects are enhanced. Furthermore, as a result of the asymmetry of the microspheres, lateral extensions will generate varying levels of torque due to rotation of the microsphere within the optical trap since the direction of the reactive force changes during the extension.Alternate methods for stretching submicron DNA run up against their own unique hurdles. For instance, a dual-beam optical trap is limited to stretching DNA of around a wavelength, at which point interference effects between the two traps and from light scattering between the microspheres begin to pose a significant problem. Replacing one of the traps with a micropipette would most likely suffer from similar challenges. While one could directly use the axial potential to stretch the DNA, an active feedback scheme would be needed to apply a constant force and the bandwidth of this will be quite limited, especially at low forces.We circumvent these fundamental problems by directly pulling the DNA away from the coverslip by using a constant force axial optical tweezers7,8. This is achieved by trapping the bead in a linear region of the optical potential, where the optical force is constant-the strength of which can be tuned by adjusting the laser power. Trapping within the linear region also serves as an all optical force-clamp on the DNA that extends for nearly 350 nm in the axial direction. We simultaneously compensate for thermal and mechanical drift by finely adjusting the position of the stage so that a reference microsphere stuck to the coverslip remains at the same position and focus, allowing for a virtually limitless observation period.
机译:拉伸轮廓长度小于一千个碱基的DNA的单分子技术充满了实验困难。然而,许多有趣的生物学事件,例如组蛋白结合和蛋白质介导的DNA 1,2 环化,都在此长度范围内发生。近年来,已证明DNA的机械性质在基本的细胞过程中起着重要作用,例如将DNA包装成紧密的核小体和染色质纤维 3,4 。显然,了解短片段DNA的机械特性非常重要。在本文中,我们为研究分子轮廓长度短至几百个碱基对的DNA的机械行为提供了一种实用的单分子光镊技术的指南。拉伸DNA短片段的主要障碍是:传统的光镊通常被设计成沿载物台 5,6 的横向方向施加力(见图1)。在这种几何形状中,对于亚微米长度的DNA,DNA束缚在珠子和盖玻片之间的角度变得非常陡峭。现在必须考虑轴向位置,这可能是一个挑战,并且,由于延伸将微球拖动到更靠近盖玻片的位置,因此空间效应得以增强。此外,由于微球的不对称性,由于延伸过程中反作用力的方向发生了变化,因此横向延伸会由于光阱内微球的旋转而产生不同水平的扭矩。克服自己独特的障碍。例如,双光束光阱仅限于拉伸大约一个波长的DNA,这时两个阱之间的干涉效应以及微球之间的光散射开始引起严重的问题。用微量移液器替换其中一个捕集器很可能会遇到类似的挑战。尽管人们可以直接利用轴向电位来拉伸DNA,但仍需要一种主动反馈方案来施加恒定的力,并且这种带宽非常有限,尤其是在低力的情况下。我们通过直接拉动DNA来解决这些基本问题。使用恒力轴向光学镊子 7,8 从盖玻片上移开。这是通过将磁珠捕获在光学势的线性区域中实现的,在该线性区域中,光学力是恒定的,可以通过调整激光功率来调整其强度。在线性区域内的陷获还充当DNA上的全部光学力钳,其在轴向方向上延伸近350 nm。通过微调载物台的位置,我们可以同时补偿热漂移和机械漂移,从而使粘附在盖玻片上的参考微球保持在相同的位置和焦点,从而实现了无限的观察周期。

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