首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >Spin-label oximetry: kinetic study of cell respiration using a rapid-passage T1-sensitive electron spin resonance display.
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Spin-label oximetry: kinetic study of cell respiration using a rapid-passage T1-sensitive electron spin resonance display.

机译:自旋标记血氧饱和度法:使用快速通道T1敏感的电子自旋共振显示器进行细胞呼吸的动力学研究。

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摘要

An unusual ESR display has been developed that exhibits sensitivity to bimolecular collisions of dissolved oxygen in water with nitroxide radical spin probes at oxygen concentrations as low as 0.1 microM, requiring only 1 microliter of sample. The method involves observation of the ESR rapid-passage signal when tuned to the dispersion using a loop-gap resonator. The bimolecular collision rate determines the phase of the signal. The method has been used in a closed-chamber geometry to study respiration of asynchronous populations of Chinese hamster ovary (CHO) cells. An integral of the Michaelis-Menten equation permits direct comparison with experiment and is shown to be incompatible with the data. The theory of diffusion limitation also is developed and shown to be inconsistent with experiment. The average oxygen concentration is found to decrease as Vmaxt, where t is the time after sealing the chamber, to a critical oxygen concentration of 5.2 microM. Below 5.2 microM, the concentration can be fitted to an exponential form, exp(-t/tau), where tau = 15 sec for 4000 cells per microliter. It is believed that this experimental behavior is determined by complex enzyme kinetics.
机译:已开发出一种不寻常的ESR显示器,该显示器对氧浓度低至0.1 microM的亚硝酸根自由基自旋探针对水中溶解氧的双分子碰撞具有敏感性,只需要1微升样品即可。该方法包括使用环路间隙谐振器将ESR快速通过信号调谐到色散时进行观察。双分子碰撞率决定了信号的相位。该方法已用于封闭室几何中,以研究中国仓鼠卵巢(CHO)细胞异步种群的呼吸作用。 Michaelis-Menten方程的积分可以直接与实验进行比较,并显示与数据不兼容。扩散限制的理论也得到发展,并显示出与实验不一致。发现平均氧气浓度降低为Vmaxt(t是密封腔室后的时间)至5.2 microM的临界氧气浓度。低于5.2 microM,浓度可以拟合为指数形式exp(-t / tau),其中tau = 15秒(每微升4000个细胞)。据信,这种实验行为是由复杂的酶动力学决定的。

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