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In vivo EPR spectroscopy of free radicals in the heart.

机译:心脏中自由基的体内EPR光谱。

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摘要

Electron paramagnetic resonance (EPR) spectroscopy can be applied to directly measure free radicals; however, it has not been possible to measure important biologic radicals in situ because conventional spectrometer designs are not suitable for the performance of measurements on large aqueous structures such as whole organs or tissues. We describe the design, construction, and application of instrumentation developed in an effort to obtain optimum performance in measuring free radicals in intact biologic organs or tissues. This spectrometer consists of a 1- to 2-GHz microwave bridge with the source locked to the resonant frequency of a specially designed recessed gap, loop-gap resonator. The principles of resonator design and construction are analyzed and described. Using this spectrometer radical concentrations as low as 0.4 microM in aqueous solutions could be measured. Studies of isolated beating hearts involving simultaneous real time measurements of free radicals and cardiac contractile function are performed. This in vivo EPR technique is applied to study the kinetics of free radical uptake and metabolism in normally perfused and globally ischemic hearts. In addition, it is demonstrated that this technique can be used to noninvasively measure tissue oxygen consumption. Thus, low frequency EPR spectroscopy offers great promise in the study of in vivo free radical generation and the effects of this radical generation on whole biologic tissues.
机译:电子顺磁共振(EPR)光谱可用于直接测量自由基。但是,由于传统的光谱仪设计不适合在大型水性结构(例如整个器官或组织)上进行测量,因此无法原位测量重要的生物自由基。我们描述了为获得最佳性能来测量完整的生物器官或组织中的自由基而开发的仪器的设计,构造和应用。该光谱仪由一个1至2 GHz的微波电桥组成,其信号源锁定到特殊设计的凹陷间隙,环形间隙谐振器的谐振频率。分析和描述了谐振器设计和构造的原理。使用该光谱仪可以测量水溶液中的自由基浓度低至0.4 microM。对孤立的跳动心脏进行研究,包括同时实时测量自由基和心脏收缩功能。这项体内EPR技术用于研究正常灌注和整体缺血心脏中自由基摄取和代谢的动力学。另外,证明了该技术可用于无创地测量组织耗氧量。因此,低频EPR光谱学在体内自由基产生以及该自由基产生对整个生物组织的影响方面提供了广阔的前景。

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