Quantitative Analysis of Ice Crystal Growth During Freezing of Dimethyl Sulfoxide Solutions Under Alternating Current Electric Fields.

IF 1.6 4区 生物学
Biopreservation and Biobanking Pub Date : 2024-08-01 Epub Date: 2023-11-22 DOI:10.1089/bio.2023.0035
Liting Liu, Zirui Wang, Menghan Wang, Gang Zhao
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Abstract

During cryopreservation, the growth of ice crystals can cause mechanical damage to samples, which is one of the important factors limiting the quality of preserved samples. To enhance the preservation quality of biological samples, scholars have tried various engineering methods. Among them, an electric field is an essential factor affecting solution freezing. Dimethyl sulfoxide, as a commonly used cryoprotectant, can cause mechanical damage to cells due to ice crystals even when freezing at the optimal freezing rate. Water is a strongly polar dielectric material, and the applied alternating current (AC) electric field will affect the water freezing performance. Therefore, a quantitative study of ice crystal nucleation and growth during freezing of dimethyl sulfoxide solutions under different AC electric field conditions is needed to try to reduce ice crystal damage. We created a liquid-film device to approximate the ice crystal growth process as a two-dimensional image. The frequency of the AC voltage was set from 0 to 50 kHz. We measured the supercooling of the dimethyl sulfoxide solution under AC electric field conditions. As an objective and accurate quantitative analysis of the ice crystal growth process, we propose a Dilated Convolutional Segmentation Transformer for semantic segmentation of ice crystal images. It is concluded that the average area and the growth rate of single ice crystals decrease with increasing electric field frequency at a certain concentration of dimethyl sulfoxide solution. Lower concentrations of dimethyl sulfoxide solution in combination with an AC electric field can achieve similar ice suppression effects as when higher concentrations of dimethyl sulfoxide solution act alone. We believe that AC electric fields are expected to be an aid to cryopreservation and provide some theoretical basis and experimental foundation for its development.

交流电场作用下二甲亚砜溶液冻结过程中冰晶生长的定量分析。
在低温保存过程中,冰晶的生长会对样品造成机械损伤,这是限制保存样品质量的重要因素之一。为了提高生物样品的保存质量,学者们尝试了各种工程方法。其中电场是影响溶液冻结的重要因素。二甲基亚砜作为一种常用的冷冻保护剂,即使在最佳冷冻速率下冷冻,也会因冰晶而对细胞造成机械损伤。水是一种强极性的介电材料,外加的交流电场会影响水的冻结性能。因此,需要对不同交流电场条件下二甲亚砜溶液冻结过程中冰晶的成核和生长进行定量研究,以减少冰晶的损伤。我们创造了一个液体薄膜装置,以二维图像的形式来近似冰晶的生长过程。交流电压的频率设置为0到50 kHz。在交流电场条件下,测量了二甲亚砜溶液的过冷性。为了对冰晶生长过程进行客观准确的定量分析,我们提出了一种用于冰晶图像语义分割的扩展卷积分割变压器。结果表明,在一定浓度的二甲亚砜溶液中,随着电场频率的增加,单晶的平均面积和生长速度减小。较低浓度的二甲亚砜溶液与交流电场结合可以达到与高浓度的二甲亚砜溶液单独作用时相似的抑冰效果。我们认为交流电场有望成为低温保存的辅助手段,并为其发展提供一定的理论基础和实验基础。
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来源期刊
Biopreservation and Biobanking
Biopreservation and Biobanking Biochemistry, Genetics and Molecular Biology-General Biochemistry,Genetics and Molecular Biology
自引率
12.50%
发文量
114
期刊介绍: Biopreservation and Biobanking is the first journal to provide a unifying forum for the peer-reviewed communication of recent advances in the emerging and evolving field of biospecimen procurement, processing, preservation and banking, distribution, and use. The Journal publishes a range of original articles focusing on current challenges and problems in biopreservation, and advances in methods to address these issues related to the processing of macromolecules, cells, and tissues for research. In a new section dedicated to Emerging Markets and Technologies, the Journal highlights the emergence of new markets and technologies that are either adopting or disrupting the biobank framework as they imprint on society. The solutions presented here are anticipated to help drive innovation within the biobank community. Biopreservation and Biobanking also explores the ethical, legal, and societal considerations surrounding biobanking and biorepository operation. Ideas and practical solutions relevant to improved quality, efficiency, and sustainability of repositories, and relating to their management, operation and oversight are discussed as well.
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