College of Medicine and Biological Information Engineering, Northeastern University, Shenyang, 110169, China.
Department of Obstetrics and Gynaecology, General Hospital of Northern Theater Command, Shenyang, 110003, China.
Anal Bioanal Chem. 2024 Jul;416(16):3717-3735. doi: 10.1007/s00216-023-05120-9. Epub 2024 Jan 8.
About 18% of reproductive-age adults worldwide are affected by infertility. In vitro fertilization (IVF) and intracytoplasmic sperm injection (ICSI) are widely used assisted reproductive technologies (ARTs) aimed at improving clinical outcomes. Efficient and noninvasive selection and isolation of highly motile sperm with intact DNA are essential for the success of IVF and ICSI and can potentially impact the therapeutic efficacy and the health of the offspring. Compared to traditional methods, microfluidic technology offers significant advantages such as low sample consumption, high efficiency, minimal damage, high integration, similar microenvironment, and high automation, providing a new platform for ARTs. Here, we review the current situation of microfluidic technology in the field of sperm motility screening and evaluation and IVF research. First, we focus on the working principle, structural design, and screening results of sperm selection microfluidic platforms. We then highlight how the multiple steps of the IVF process can be facilitated and integrated into a microfluidic chip, including oocyte capture, sperm collection and isolation, sperm sorting, fertilization, and embryo culture. Ultimately, we summarize how microfluidics can complement and optimize current sperm sorting and IVF protocols, and challenges and possible solutions are discussed.
全世界约有 18%的育龄期成年人受到不孕不育的影响。体外受精(IVF)和胞浆内单精子注射(ICSI)是广泛应用于改善临床结局的辅助生殖技术(ARTs)。高效、非侵入性的选择和分离具有完整 DNA 的高活力精子,对于 IVF 和 ICSI 的成功至关重要,并且可能会影响治疗效果和后代的健康。与传统方法相比,微流控技术具有样品消耗低、效率高、损伤小、集成度高、微环境相似和自动化程度高等优势,为 ARTs 提供了一个新的平台。在这里,我们回顾了微流控技术在精子活力筛选和评估以及 IVF 研究领域的现状。首先,我们重点介绍精子选择微流控平台的工作原理、结构设计和筛选结果。然后,我们强调了如何将 IVF 过程的多个步骤整合到微流控芯片中,包括卵母细胞捕获、精子收集和分离、精子分选、受精和胚胎培养。最后,我们总结了微流控技术如何补充和优化现有的精子分选和 IVF 方案,并讨论了挑战和可能的解决方案。