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Strategies for Optical Trapping in Biological Samples: Aiming at Microrobotic Surgeons

机译:生物样品中光学诱捕的策略:瞄准微机器人外科医生。

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Optical trapping and manipulation of objects down to the Angstrom level has revolutionized research at the smallest scales in all natural sciences. The flexibility of optical trapping methods facilitates real-time monitoring of the dynamics of biological processes in model systems and even in living cells. Different optical trapping and manipulation approaches allow displacement of nanostructures with subnanometer precision and force measurements with femtonewton precision. Due to inherent constraints of optical methods, most optical trapping experiments are performed in water or simple aqueous solutions. However, in recent years, there is an ever-growing interest of shifting from simple aqueous media towards more biologically-relevant media. Precise optical trapping and manipulation, combined with state-of-the-art microfabrication, will enable the development of microrobotic "surgeons" with tremendous potential for biomedical and microengineering applications. This review introduces the basics of optical trapping and discusses its applications for biological samples, with focus on trapping in biological media and strategies for overcoming the challenges of optical manipulation in complex environments as a stepping-stone for microrobotic "surgeons."
机译:光学捕获和低至埃级别的物体操纵已彻底改变了所有自然科学领域中最小规模的研究。光学捕获方法的灵活性有助于实时监测模型系统甚至活细胞中生物过程的动力学。不同的光学捕获和操纵方法可以使纳米结构的位移达到亚纳米级的精度,而力的测量则具有飞秒牛顿的精度。由于光学方法的固有局限性,大多数光学捕获实验都是在水或简单水溶液中进行的。然而,近年来,人们越来越关注从简单的水性介质向生物学相关性更高的介质转变。精确的光学捕获和处理,以及最新的微加工技术,将使微机器人“外科医生”的发展成为具有巨大潜力的生物医学和微工程应用领域。这篇综述介绍了光学诱捕的基础知识,并讨论了其在生物样品中的应用,重点是在生物介质中进行诱捕,以及克服复杂环境中光学操纵挑战的策略,这些技术是微机器人“外科医生”的垫脚石。

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