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一种使用精子内在行为的新型平行通道微流控装置用于精子分离。

A novel microfluidic device with parallel channels for sperm separation using spermatozoa intrinsic behaviors.

机构信息

Faculty of Mechanical Engineering, Tarbiat Modares University, Tehran, Iran.

Faculty of Medical Sciences, Tarbiat Modares University, Tehran, Iran.

出版信息

Sci Rep. 2023 Jan 21;13(1):1185. doi: 10.1038/s41598-023-28315-7.

Abstract

Isolating high-quality motile sperm cells is considered to be the main prerequisite for a successful artificial pregnancy. Microfluidics has emerged as a promising platform capable of mimicking in-vivo environments to separate motile sperm cells and bypassing the need for the current invasive clinical sperm separation methods. In this study, the proposed microfluidic device exploits the parallelization concept through symmetry to increase both the processed sample volume and the injected flow rate compared with the previous conventional devices, which used rheotaxis as their primary method of sperm separation. Using the finite element method (FEM) and flow simulations, the trajectories of sperm cells exhibiting rheotaxis behavior were predicted inside the proposed device. Different flow rates, including 0, 0.5, 1.5, 3, 4.5 and 6 μl/min, were experimentally injected into the device, and the effect of flow rate on the size of the hypothetical rheotaxis zone and the number of isolated sperm cells was investigated. Furthermore, it was illustrated that 100% of the isolated motile sperm cells are motile, and by manipulating the injected flow rate into the device, different classes of sperm cells in terms of motility parameters can be separated and utilized for further uses.

摘要

分离高质量的游动精子细胞被认为是成功人工受孕的主要前提。微流控技术作为一种有前途的平台,能够模拟体内环境,分离游动精子细胞,避免当前侵入性的临床精子分离方法的需要。在这项研究中,所提出的微流控装置通过对称利用并行化的概念,与之前使用趋流性作为主要精子分离方法的传统装置相比,增加了处理样本的体积和注入的流速。使用有限元方法(FEM)和流动模拟,预测了在提出的装置中表现出趋流行为的精子细胞的轨迹。不同的流速,包括 0、0.5、1.5、3、4.5 和 6 μl/min,被实验性地注入到装置中,研究了流速对假设趋流区的大小和分离的精子细胞数量的影响。此外,结果表明,100%分离的游动精子细胞是游动的,并且通过操纵注入装置的流速,可以分离出不同运动参数的精子细胞类别,并用于进一步使用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8a37/9867731/d5593f1a29ed/41598_2023_28315_Fig1_HTML.jpg

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