早期2细胞小鼠胚胎的自动操作和旋转系统

Basil Abu Zanouneh, J. Mills
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引用次数: 0

摘要

在胚胎植入前遗传学诊断(PGD)过程中对胚胎等生物细胞进行微操作需要对细胞进行精细处理。具体来说,准确控制胚胎的方向对于获得一个更有利的位置进行带破裂和卵裂球活检,确保胚胎存活是必不可少的。人工胚胎重定向是通过使用配备真空的微移液管任意吸入和释放胚胎来实现的,直到胚胎以有利的方式重新定向。不幸的是,这种反复试验的方法严重依赖于操作人员的技能,最终由于重新定位和消融的精度降低而降低了活检的成功率。在本研究中,提出了一种基于图像的早期胚胎自动反馈定向控制器,使用传统的试管婴儿实验室设备,实现细胞重新定向过程的自动化。胚胎的旋转是通过使用微移液管滚动胚胎来实现的,微移液管抓住胚胎,但允许滑动以允许胚胎在与玻璃载玻片基板接触时滚动。基板安装在变速x,y平台上,该平台使用两个基于图像的旋转控制器之一进行控制。该控制算法通过估计胚胎的角速度来确定旋转角度,当偏离参考角度时产生误差信号来驱动PID控制器改变基底的速度。第一种控制器使用图像馈送的光流来检测细胞旋转事件,并使用装置的运动学模型来确定旋转角度。第二种控制器利用光流作为实时反馈信号来估计胚胎旋转角度。这两种控制器的实验结果都证明了卵裂球的精确定向,为全自动细胞操作系统奠定了第一步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Automatic System for Manipulation and Rotation of Early Stage 2-Cell Mouse Embryos
Micromanipulation of biological cells such as embryos during preimplantation genetic diagnosis (PGD) requires delicate handling of cells. Specifically, accurate control of the embryo orientation is essential to gain a more favourable position for zona breaching and blastomere biopsy, ensuring embryo survival. Manual embryo reorientation is achieved by aspirating and releasing the embryo arbitrarily using a vacuum-equipped micropipette until the embryo reorients itself in a favourable manner. Unfortunately, this trial and error approach heavily relies on the operator’s skill, ultimately reducing biopsy success rates due to reduced precision in reorientation and ablation. In this study, an automatic image-based feedback orientation controller for early-stage embryos, using conventional IVF lab equipment, is proposed to automate the process of cell reorientation. Rotation of the embryo is achieved by rolling the embryo using a micropipette which grasps the embryo but allows slippage to permit the embryo to roll while in contact with a glass slide substrate. The substrate is mounted on a variable speed x,y stage which is controlled using one of two image-based rotation controllers investigated. The proposed control algorithms estimate the angular velocity of the embryo to determine the rotation angle, creating an error signal when differenced from the reference angle to drive a PID controller that changes the speed of the substrate. The first proposed controller uses the optical flow of the image feed to detect the cell rotation event and uses the kinematic model of the setup to determine the rotation angle. The second proposed controller uses the optical flow as a feedback signal in real-time to estimate the embryo rotation angle. Experimental results with both proposed controllers demonstrate accurate reorientation of the blastomeres, to lay the first steps towards a fully automated cell manipulation system.
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