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深低温状态下的脑能量代谢与缺氧耐受性

Brain energetics and tolerance to anoxia in deep hypothermia.

作者信息

Andjus Radoslav K, Dzakula Zeljko, Markley John L, Macura Slobodan

机构信息

University of Belgrade, Yugoslavia.

出版信息

Ann N Y Acad Sci. 2005 Jun;1048:10-35. doi: 10.1196/annals.1342.003.

Abstract

The remarkable time-resolution enhancement by deep lethargic hypothermia (15 degrees C rectal temperature, "cold narcosis," "anesthesia by internal cold") of metabolic events in the rat brain after oxygen deprivation has been exploited to monitor metabolic changes by in vivo (31)P-NMR. A correlation was established between the bioenergetic status of the brain and physiological descriptors of tolerance (survival and revival times) determined in parallel experiments with large series of animals. Spectral peak integrals were transformed into absolute concentrations by comparison to biochemically determined time series of data obtained in freeze-trapping experiments conducted under identical conditions. Serial spectra were used to reconstruct the time-course kinetics of intracellular brain pH and of concentration changes of inorganic phosphate, phosphocreatine, ATP, and ADP. Both the biochemical and NMR time series of data were simultaneously fitted by a set of exponential kinetic equations accounting for relationships imposed by the Lohmann and adenylate kinase reactions. Depletion profiles were then computed for a number of descriptors of brain energy status (energy charge, phosphorylation potential, total adenylate, and primary energy stores expressed as the sum of high-energy phosphate-bond equivalents). The results contribute to the understanding of the role of brain energetics in tolerance to oxygen deprivation.

摘要

深度低温昏睡(直肠温度15摄氏度,“冷麻醉”,“体内低温麻醉”)显著增强了大鼠脑缺氧后代谢事件的时间分辨率,利用这一特性通过体内(31)P - NMR监测代谢变化。在对大量动物进行的平行实验中,确定了脑的生物能量状态与耐受性的生理指标(存活和苏醒时间)之间的相关性。通过与在相同条件下进行的冷冻捕获实验中生化测定的数据时间序列进行比较,将光谱峰积分转换为绝对浓度。利用系列光谱重建细胞内脑pH值以及无机磷酸盐、磷酸肌酸、ATP和ADP浓度变化的时间进程动力学。生化和NMR数据时间序列同时由一组指数动力学方程拟合,这些方程考虑了洛曼反应和腺苷酸激酶反应所施加的关系。然后计算了一些脑能量状态描述符(能量电荷、磷酸化电位、总腺苷酸以及以高能磷酸键当量总和表示的主要能量储备)的消耗曲线。这些结果有助于理解脑能量学在缺氧耐受性中的作用。

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