Eliminating osmotic stress during cryoprotectant loading: A mathematical investigation of solute-solvent transport.

IF 2.3 3区 生物学 Q2 BIOLOGY Cryobiology Pub Date : 2025-01-15 DOI:10.1016/j.cryobiol.2025.105198
Joseph R Kangas, Christopher J Hogan, John C Bischof
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Abstract

Osmotic stresses during cryoprotectant loading induce changes in cellular volume, leading to membrane damage or even cell death. Appropriate model-guided mitigation of these osmotic gradients during cryoprotectant loading is currently lacking, but would be highly beneficial in reducing viability loss during the loading process. To address this need, we reformulate the two-parameter formalism described by Jacobs and Stewart for cryoprotectant loading under the constraint of constant cell volume. We then derive simple, concise, analytic solutions to these equations, showing the transient extracellular permeating and nonpermeating cryoprotectant concentrations required to load a cell at constant volume, thus eliminating osmotic stresses during cryoprotectant loading. Additionally, we show analytic approximations of both ramp (linear) as well as step-wise loading and how one can use the hydraulic conductivity Lp, membrane permeability Ps, cell volume Vo, and osmotically inactive fraction to derive cryoprotectant loading protocols that minimize osmotic stress. We also present timescales for water and cryoprotectant transport which can be used to estimate loading times as well as Lp and Ps. We discuss how previous optimized loading strategies are inherently sensitive to parameter uncertainties and biological variability, increasing the likelihood of exceeding critical osmotic limits. By contrast, the proposed protocol provides a larger buffer against deviations, offering a safer and more robust solution to CPA loading. Importantly, we demonstrate that the volume-loss-free CPA loading protocols outlined in this paper occur on the same timescale as conventional and step-loading methods, suggesting that these protocols could be a safer, more efficient alternative for CPA loading.

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在冷冻保护剂装载过程中消除渗透应力:溶质-溶剂运输的数学研究。
在冷冻保护剂加载过程中的渗透应力会引起细胞体积的变化,导致膜损伤甚至细胞死亡。在冷冻保护剂加载过程中,目前还缺乏适当的模型引导来缓解这些渗透梯度,但这对减少加载过程中的生存力损失非常有益。为了满足这一需求,我们重新制定了由Jacobs和Stewart描述的在恒定细胞体积约束下冷冻保护剂加载的双参数形式。然后,我们推导出这些方程的简单、简洁的解析解,显示了恒定体积加载细胞所需的瞬时细胞外渗透和非渗透冷冻保护剂浓度,从而消除了冷冻保护剂加载期间的渗透应力。此外,我们展示了斜坡(线性)和阶梯加载的解析近似,以及如何使用水力电导率Lp、膜渗透率Ps、细胞体积Vo和渗透非活性组分来推导出将渗透应力最小化的冷冻保护剂加载方案。我们还提出了水和冷冻保护剂运输的时间尺度,可用于估计加载时间以及Lp和Ps。我们讨论了先前优化的加载策略如何对参数不确定性和生物变异性固有地敏感,从而增加了超过临界渗透极限的可能性。相比之下,所提出的协议提供了更大的偏差缓冲,为CPA加载提供了更安全、更健壮的解决方案。重要的是,我们证明了本文中概述的无体积损失的CPA加载协议与传统和阶梯加载方法在相同的时间尺度上发生,这表明这些协议可能是CPA加载的更安全,更有效的替代方案。
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来源期刊
Cryobiology
Cryobiology 生物-生理学
CiteScore
5.40
自引率
7.40%
发文量
71
审稿时长
56 days
期刊介绍: Cryobiology: International Journal of Low Temperature Biology and Medicine publishes research articles on all aspects of low temperature biology and medicine. Research Areas include: • Cryoprotective additives and their pharmacological actions • Cryosurgery • Freeze-drying • Freezing • Frost hardiness in plants • Hibernation • Hypothermia • Medical applications of reduced temperature • Perfusion of organs • All pertinent methodologies Cryobiology is the official journal of the Society for Cryobiology.
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