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一种具有逐步增加CPA浓度的一体化微流控冷冻保存系统及方案。

An all-in-one microfluidic cryopreservation system and protocols with gradually increasing CPA concentration.

作者信息

Yang Tianhang, Lv Xinbei, Bai Yuqiao, Jiang Huabin, Chang Xiaoran, Wang Jinxian, Luo Gangyin

机构信息

Suzhou Institute of Biomedical Engineering and Technology, Chinese Academy of Sciences, Suzhou, China.

Jinan Guoke Medical Technology Development Co., Ltd, Jinan, China.

出版信息

Lab Chip. 2025 Feb 11;25(4):565-576. doi: 10.1039/d4lc00888j.

DOI:10.1039/d4lc00888j
PMID:39816004
Abstract

In regular biosample cryopreservation operations, dropwise pipetting and continuous swirling are ordinarily needed to prevent cell damage ( sudden osmotic change, toxicity and dissolution heat) caused by the high-concentration cryoprotectant (CPA) addition process. The following CPA removal process after freezing and rewarming also requires multiple sample transfer processes and manual work. In order to optimize the cryopreservation process, especially for trace sample preservation, here we present a microfluidic approach integrating CPA addition, sample storage, CPA removal and sample resuspension processes on a 30 × 30 × 4 mm three-layer chip. The sample solution could be added into CPA solution with pre-generated increasing concentration to decrease possible osmotic damage. Utilizing specially designed microfluidic structure and fluid field analysis, on-chip sample enrichment and CPA removal were achieved. A novel dead-end micro valve strategy with a simplified control module was applied and evaluated to assist on-chip mixing and sample pellet resuspension. The entire biosample cryopreservation process was also performed that verified the functions of the integrated microfluidic platform. Altogether, this developed platform could be an effective approach to realize automatic, all-in-one, low-damage cryopreservation operation.

摘要

在常规生物样本冷冻保存操作中,通常需要逐滴移液和持续涡旋,以防止因添加高浓度冷冻保护剂(CPA)过程导致的细胞损伤(突然的渗透变化、毒性和溶解热)。冷冻和复温后的后续CPA去除过程也需要多个样本转移过程和人工操作。为了优化冷冻保存过程,特别是对于微量样本保存,在此我们提出一种微流控方法,该方法在一个30×30×4 mm的三层芯片上集成了CPA添加、样本存储、CPA去除和样本重悬过程。样本溶液可以添加到预先生成的浓度递增的CPA溶液中,以减少可能的渗透损伤。利用专门设计的微流控结构和流场分析,实现了芯片上的样本富集和CPA去除。应用并评估了一种具有简化控制模块的新型死端微阀策略,以辅助芯片上的混合和样本沉淀重悬。还进行了整个生物样本冷冻保存过程,验证了集成微流控平台的功能。总之,这个开发的平台可能是实现自动、一体化、低损伤冷冻保存操作的有效方法。

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