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Analytical optimal controls for the state constrained addition and removal of cryoprotective agents

机译:用于状态约束添加和冷冻保护剂的分析最佳控制

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摘要

Cryobiology is a field with enormous scientific, financial and even cultural impact. Successful cryopreservation of cells and tissues depends on the equilibration of these materials with high concentrations of permeating chemicals (CPAs) such as glycerol or 1,2 propylene glycol. Because cells and tissues are exposed to highly anisosmotic conditions, the resulting gradients cause large volume fluctuations that have been shown to damage cells and tissues. On the other hand, there is evidence that toxicity to these high levels of chemicals is time dependent, and therefore it is ideal to minimize exposure time as well. Because solute and solvent flux is governed by a system of ordinary differential equations, CPA addition and removal from cells is an ideal context for the application of optimal control theory. Recently, we presented a mathematical synthesis of the optimal controls for the ODE system commonly used in cryobiology in the absence of state constraints and showed that controls defined by this synthesis were optimal. Here we define the appropriate model, analytically extend the previous theory to one encompassing state constraints, and as an example apply this to the critical and clinically important cell type of human oocytes, where current methodologies are either difficult to implement or have very limited success rates. We show that an enormous increase in equilibration efficiency can be achieved under the new protocols when compared to classic protocols, potentially allowing a greatly increased survival rate for human oocytes, and pointing to a direction for the cryopreservation of many other cell types.
机译:冷冻学是一个具有巨大科学,金融甚至文化影响的领域。成功的细胞和组织的冷冻保存取决于这些材料的平衡,具有高浓度的渗透化学品(CPA),例如甘油或1,2个丙二醇。因为细胞和组织暴露于高度侧鼻菌状况,所以所得梯度导致大的体积波动已被显示为损害细胞和组织。另一方面,有证据表明,这些高水平的化学物质的毒性是依赖于时间的,因此它也是最小化暴露时间的理想选择。由于溶质和溶剂通量由常微分方程的系统管辖,所以CPA添加和从细胞中移除是应用最佳控制理论的理想背景。最近,我们介绍了在没有状态约束的情况下在冷冻生物学中使用的ode系统的最佳控制的数学合成,并且显示由该合成定义的对照是最佳的。在这里,我们定义了适当的模型,分析到一个包含状态约束的先前理论,作为一个例子,并将其应用于危急和临床上重要的细胞类型的人卵母细胞,其中当前方法难以实施或具有非常有限的成功率。我们表明,与经典方案相比,新方案可以在新的方案下实现巨大的平衡效率的增加,可能允许大大增加人卵母细胞的存活率,并指向许多其他细胞类型的冷冻保存方向。

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