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Axicon-based annular laser trap for studies on sperm activity

机译:基于轴的环形激光疏水阀,用于精子活性研究

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As a powerful and noninvasive tool, laser trapping has been widely applied for the confinement and physiological study of biological cells and organelles. Researchers have used the single spot laser trap to hold individual sperm and quantitatively evaluated the motile force generated by a sperm. Early studies revealed the relationship between sperm motility and swimming behavior and helped the investigations in medical aspects of sperm activity. As sperm chemotaxis draws more and more interest in fertilization research, the studies on sperm-egg communication may help to explain male or female infertility and provide exciting new approaches to contraception. However, single spot laser trapping can only be used to investigate an individual target, which has limits in efficiency and throughput. To study the chemotactic response of sperm to eggs and to characterize sperm motility, an annular laser trap with a diameter of several hundred microns is designed, simulated with ray tracing tool, and implemented. An axicon transforms the wavefront such that the laser beam is incident on the microscope objective from all directions while filling the back aperture completely for high efficiency trapping. A trapping experiment with microspheres is carried out to evaluate the system performance. The power requirement for annular sperm trapping is determined experimentally and compared with theoretical calculations. With a chemo-attractant located in the center and sperm approaching from all directions, the annular laser trapping could serve as a speed bump for sperm so that motility characterization and fertility sorting can be performed efficiently.
机译:作为一种强大而非侵入的工具,激光诱捕已被广泛应用于生物细胞和细胞器的禁闭和生理学研究。研究人员使用了单点激光疏水阀来保持单独的精子并定量评估精子产生的运动力。早期研究揭示了精子运动与游泳行为之间的关系,并帮助了精子活动的医学方面的研究。随着精子趋化性吸引肥育研究的兴趣越来越兴趣,对精子蛋通信的研究可能有助于解释男性或女性不孕,并为避孕提供令人兴奋的新方法。然而,单点激光诱捕只能用于研究个体目标,这具有限制效率和吞吐量。为了研究精子对鸡蛋的趋化响应并表征精子运动,设计了具有数百微米直径的环形激光捕集器,用射线跟踪工具模拟,并实施。轴线变换波前方,使得激光束入射在来自所有方向的显微镜物镜上,同时完全填充后孔,以便高效捕获。进行了微球的捕获实验,以评估系统性能。在实验上确定环形精子捕获的电源要求,并与理论计算进行比较。对于位于中心的化学引诱剂和从各个方向接近的精子,环形激光捕获可以用作精子的速度凸块,从而可以有效地执行运动性表征和肥力分选。

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