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Axial Optical Traps: A New Direction for Optical Tweezers

机译:轴向光阱:光镊的新方向

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摘要

Optical tweezers have revolutionized our understanding of the microscopic world. Axial optical tweezers, which apply force to a surface-tethered molecule by directly moving either the trap or the stage along the laser beam axis, offer several potential benefits when studying a range of novel biophysical phenomena. This geometry, although it is conceptually straightforward, suffers from aberrations that result in variation of the trap stiffness when the distance between the microscope coverslip and the trap focus is being changed. Many standard techniques, such as back-focal-plane interferometry, are difficult to employ in this geometry due to back-scattered light between the bead and the coverslip, whereas the noise inherent in a surface-tethered assay can severely limit the resolution of an experiment. Because of these complications, precision force spectroscopy measurements have adapted alternative geometries such as the highly successful dumbbell traps. In recent years, however, most of the difficulties inherent in constructing a precision axial optical tweezers have been solved. This review article aims to inform the reader about recent progress in axial optical trapping, as well as the potential for these devices to perform innovative biophysical measurements.
机译:光学镊子彻底改变了我们对微观世界的理解。轴向光镊通过直接沿激光束轴移动陷阱或载物台,将力施加到表面束缚的分子上,当研究一系列新型生物物理现象时,它们具有许多潜在的好处。这种几何形状虽然从概念上讲是简单明了的,但当显微镜盖玻片和陷波器焦点之间的距离发生变化时,会出现像差,从而导致陷波器刚度发生变化。由于珠子和盖玻片之间的反向散射光,许多标准技术(例如后焦平面干涉测量法)很难在这种几何形状中使用,而表面束缚测定法固有的噪声会严重限制样品的分辨率。实验。由于这些复杂性,精密力谱测量已经适应了其他几何形状,例如非常成功的哑铃阱。然而,近年来,已经解决了构造精密轴向光学镊子固有的大多数困难。本文旨在向读者介绍轴向光阱技术的最新进展,以及这些设备进行创新生物物理测量的潜力。

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