Predictive Thermodynamics for Isochoric (Constant-Volume) Cryopreservation Systems.

IF 2.9 2区 化学 Q3 CHEMISTRY, PHYSICAL The Journal of Physical Chemistry B Pub Date : 2025-02-20 Epub Date: 2025-02-11 DOI:10.1021/acs.jpcb.4c03915
Julia H Grenke, Janet A W Elliott
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Abstract

Cryopreservation is the preservation and storage of biomaterials using low temperatures. There are several approaches to cryopreservation, and these often include the use of cryoprotectants, which are solutes used to lower the freezing point of water. Isochoric (constant-volume) cryopreservation is a form of cryopreservation that has been gaining interest over the past 18 years. This method utilizes the anomalous nature of water in that it expands as it freezes. The expansion of ice on freezing is used to induce a pressure in the system that limits ice growth. In this work, we use Gibbsian thermodynamics, the Elliott et al. multisolute osmotic virial equation, the Feistel and Wagner correlation for ice Ih, and the Grenke and Elliott correlation for the thermodynamic properties of liquid water at low temperatures and high pressures to predict how the pressure, volume fraction of ice, and solute concentration in the unfrozen fraction change as the solution is cooled isochorically. We then verified our model by predicting experimental results for saline solutions and ternary aqueous solutions containing NaCl and organic compounds commonly used as cryoprotectants: glycerol, ethylene glycol, propylene glycol, and dimethyl sulfoxide. We found that our model accurately predicts experimental data that were collected for cryoprotectant concentrations as high as 5 M, and temperatures as low as -25 °C. Since we have shown that our liquid water correlation, on which this work was based, makes accurate predictions to -70 °C, as long as the pressure is not higher than 400 MPa, we anticipate that the prediction methods presented in this work will be accurate down to -70 °C. In this work we also modeled how sealing the isochoric chamber at room temperature versus at the nucleation temperature impacts isochoric freezing. The prediction methods developed in this work can be used in the future design of isochoric cryopreservation experiments and protocols.

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等时(等体积)低温保存系统的预测热力学。
低温保存是使用低温保存和储存生物材料。冷冻保存有几种方法,其中通常包括使用冷冻保护剂,这是一种用于降低水冰点的溶质。等时(等体积)冷冻保存是一种冷冻保存形式,在过去的18年里已经引起了人们的兴趣。这种方法利用了水在冻结时膨胀的反常性质。冰在冻结时的膨胀被用来在系统中产生限制冰生长的压力。在这项工作中,我们使用Gibbsian热力学、Elliott等人的多溶质渗透维里方程、冰Ih的Feistel和Wagner相关性以及低温和高压下液态水的热力学性质的Grenke和Elliott相关性来预测当溶液等时冷却时,未冻结部分的压力、冰的体积分数和溶质浓度是如何变化的。然后,我们通过预测盐水溶液和三元水溶液的实验结果来验证我们的模型,三元水溶液中含有NaCl和通常用作冷冻保护剂的有机化合物:甘油、乙二醇、丙二醇和二甲基亚砜。我们发现我们的模型准确地预测了低温保护剂浓度高达5 M,温度低至-25°C时收集的实验数据。由于我们已经证明,本工作所基于的液态水相关性可以准确预测-70°C,只要压力不高于400 MPa,我们预计本工作中提出的预测方法可以准确预测至-70°C。在这项工作中,我们还模拟了在室温和成核温度下密封等弦室对等弦冻结的影响。本研究建立的预测方法可用于未来等时低温保存实验和方案的设计。
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来源期刊
CiteScore
5.80
自引率
9.10%
发文量
965
审稿时长
1.6 months
期刊介绍: An essential criterion for acceptance of research articles in the journal is that they provide new physical insight. Please refer to the New Physical Insights virtual issue on what constitutes new physical insight. Manuscripts that are essentially reporting data or applications of data are, in general, not suitable for publication in JPC B.
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