He Xiaoming
Multiscale Biothermostability Engineering Laboratory, Department of Mechanical Engineering and Biomedical Engineering Program, University of South Carolina, 300 Main Street, Columbia, SC 29208, USA.
Open Biomed Eng J. 2011;5:47-73. doi: 10.2174/1874120701105010047. Epub 2011 Apr 12.
This review examines the fundamentals and challenges in engineering/understanding the thermostability of biological systems over a wide temperature range (from the cryogenic to hyperthermic regimen). Applications of the bio-thermostability engineering to either destroy unwanted or stabilize useful biologicals for the treatment of diseases in modern medicine are first introduced. Studies on the biological responses to cryogenic and hyperthermic temperatures for the various applications are reviewed to understand the mechanism of thermal (both cryo and hyperthermic) injury and its quantification at the molecular, cellular and tissue/organ levels. Methods for quantifying the thermophysical processes of the various applications are then summarized accounting for the effect of blood perfusion, metabolism, water transport across cell plasma membrane, and phase transition (both equilibrium and non-equilibrium such as ice formation and glass transition) of water. The review concludes with a summary of the status quo and future perspectives in engineering the thermostability of biological systems.
本综述探讨了在很宽的温度范围(从低温到高温状态)下对生物系统进行工程设计/理解其热稳定性的基本原理和挑战。首先介绍了生物热稳定性工程在现代医学中用于破坏有害生物或稳定有益生物以治疗疾病的应用。综述了针对各种应用对低温和高温温度的生物反应的研究,以了解热(低温和高温)损伤的机制及其在分子、细胞和组织/器官水平的量化。然后总结了考虑血液灌注、代谢、水跨细胞质膜运输以及水的相变(平衡和非平衡相变,如结冰和玻璃化转变)影响的各种应用热物理过程的量化方法。综述最后总结了生物系统热稳定性工程的现状和未来展望。