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首页> 外文期刊>BMC Cell Biology >The individual-cell-based cryo-chip for the cryopreservation, manipulation and observation of spatially identifiable cells. I: Methodology
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The individual-cell-based cryo-chip for the cryopreservation, manipulation and observation of spatially identifiable cells. I: Methodology

机译:基于单个细胞的冷冻芯片,用于冷冻保存,操作和观察可识别空间的细胞。一:方法论

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Background Cryopreservation is the only widely applicable method of storing vital cells for nearly unlimited periods of time. Successful cryopreservation is essential for reproductive medicine, stem cell research, cord blood storage and related biomedical areas. The methods currently used to retrieve a specific cell or a group of individual cells with specific biological properties after cryopreservation are quite complicated and inefficient. Results The present study suggests a new approach in cryopreservation, utilizing the Individual Cell-based Cryo-Chip (i3C). The i3C is made of materials having appropriate durability for cryopreservation conditions. The core of this approach is an array of picowells, each picowell designed to maintain an individual cell during the severe conditions of the freezing - thawing cycle and accompanying treatments. More than 97% of cells were found to retain their position in the picowells throughout the entire freezing - thawing cycle and medium exchange. Thus the comparison between pre-freezing and post-thawing data can be achieved at an individual cell resolution. The intactness of cells undergoing slow freezing and thawing, while residing in the i3C, was found to be similar to that obtained with micro-vials. However, in a fast freezing protocol, the i3C was found to be far superior. Conclusions The results of the present study offer new opportunities for cryopreservation. Using the present methodology, the cryopreservation of individual identifiable cells, and their observation and retrieval, at an individual cell resolution become possible for the first time. This approach facilitates the correlation between cell characteristics before and after the freezing - thawing cycle. Thus, it is expected to significantly enhance current cryopreservation procedures for successful regenerative and reproductive medicine.
机译:背景技术低温保存是将生命细胞几乎无限期地存储的唯一广泛应用的方法。成功的低温保存对于生殖医学,干细胞研究,脐带血存储和相关生物医学领域至关重要。冷冻保存后,目前用于检索具有特定生物学特性的特定细胞或一组单个细胞的方法非常复杂且效率低下。结果本研究提出了一种利用基于单个细胞的冷冻芯片(i3C)进行冷冻保存的新方法。 i3C由对冷冻保存条件具有适当耐久性的材料制成。这种方法的核心是一系列微微孔,每个微微孔的设计目的是在严峻的冷冻,解冻周期和相关处理条件下维持单个细胞。发现在整个冷冻-融化循环和培养基交换中,超过97%的细胞在微微孔中保持其位置。因此,可以在单个细胞分辨率下实现冷冻前和解冻后数据之间的比较。发现在i3C中进行缓慢冷冻和融化的细胞的完整性与使用小瓶获得的相似。但是,在快速冻结协议中,发现i3C优越得多。结论本研究的结果为冷冻保存提供了新的机会。使用本发明的方法,单个可分辨细胞的冷冻保存以及它们在单个细胞分辨率下的观察和检索首次成为可能。该方法促进了冷冻-解冻循环之前和之后的细胞特性之间的相关性。因此,预期将显着增强当前用于成功的再生和生殖医学的冷冻保存程序。

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