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Mathematical Theory of Reliability and Aging: Teaching Comes from Kiev

机译:可靠性和老化的数学理论:教学来自基辅

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摘要

The field of systems biology, in dealing with the problem of reliability, incorporates theoretical and experimental investigations of quantitative characteristics and mechanisms of failures and renewal processes. Regular conferences on the problems of reliability of biological systems, starting from 1975 in Kiev, former USSR, have given the strong impetus to research in this direction. It has also spurred the studies on biological reliability (under the style of "robustness") on other side of the former "iron curtain". In this report, I present the results of application of the systems reliability theory to the problems of aging. On this basis, the universal features of aging, such as the exponential growth of mortality rate with time and the correlation of longevity with the species-specific resting metabolism are naturally explained. The stochastic malfunctions of the mitochondrial electron transport nanoreactors, which produce superoxide radicals, seem to be of first importance. The longevity of human brain could reach 250 years should the antioxidant defense against the free-radical failures be perfect. Thus, aging occurs as the consequence of the genetically preset deficiency in reliability of the biomolecular constructions while the free-radical timer serves as the effective stochastic mechanism of realization of the program of aging. Besides, the systems reliability approach serves as heuristic methodology for development of novel preventive medicine.
机译:系统生物学领域在处理可靠性问题时,结合了定量特征以及故障和更新过程机理的理论和实验研究。自1975年以来,在前苏联基辅举行的有关生物系统可靠性问题的定期会议为这一方向的研究提供了强大的动力。它也刺激了以前“铁幕”另一侧的生物可靠性研究(以“鲁棒性”的形式)。在这份报告中,我介绍了将系统可靠性理论应用于老化问题的结果。在此基础上,自然地解释了衰老的普遍特征,例如死亡率随时间的指数增长以及寿命与特定物种的静止代谢的相关性。产生超氧自由基的线粒体电子传输纳米反应器的随机故障似乎是最重要的。如果抗氧化剂能够抵抗自由基的破坏,那么人类大脑的寿命可以达到250年。因此,老化是生物分子结构可靠性的遗传预设缺陷的结果,而自由基计时器则是实现老化程序的有效随机机制。此外,系统可靠性方法可作为启发式方法论,用于开发新型预防医学。

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