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微球体在 +GZ 应激期间局部血流测量中的应用。

Use of microspheres in measurement of regional blood flows during +GZ stress.

作者信息

Laughlin M H, Burns J W, Loxsom F M

出版信息

J Appl Physiol Respir Environ Exerc Physiol. 1979 Dec;47(6):1148-56. doi: 10.1152/jappl.1979.47.6.1148.

Abstract

The use of the radiolabeled microsphere technique for the study of the effects of +GZ acceleration on regional blood flow is examined. A theoretical analysis of the limits of this technique in a high acceleration environment is presented. Chronically implanted, electromagnetic, aortic flow probes were used to determine the relationship between aortic blood flow velocity and +GZ acceleration in conscious adult miniature swine. It was found that conscious straining adult miniature swine, with the assistance of an inflated anti-G suit, are able to compensate quite well to acceleration levels less than or equal to +7 GZ. Exposure to +9 GZ often resulted in unstable cardiovascular states involving relative bradycardia, often progressing to asystole, declining aortic blood pressure, and markedly diminished cardiac outputs approaching zero. It was found that, if aortic pressure and heart rate attain a relatively steady state during acceleration, and if heart level mean aortic pressure is greater than or equal to 100 Torr, the application of the microsphere technique during +GZ acceleration is theoretically valid. This hypothesis was tested using the microsphere technique (9.0 +/- 0.8 microns diam) in conscious miniature swine during exposure to +GZ acceleration. It is concluded that within the defined limits the radiolabeled microsphere technique is as accurate for use during acceleration studies as it is for use in routine laboratory studies.

摘要

本文研究了使用放射性微球技术来研究 +GZ 加速度对局部血流的影响。文中给出了在高加速度环境下该技术局限性的理论分析。使用长期植入的电磁主动脉血流探头来确定清醒成年小型猪的主动脉血流速度与 +GZ 加速度之间的关系。结果发现,在充气抗荷服的辅助下,清醒且用力的成年小型猪能够很好地代偿小于或等于 +7 GZ 的加速度水平。暴露于 +9 GZ 时,常常会导致不稳定的心血管状态,包括相对心动过缓,常进展为心搏停止、主动脉血压下降以及心输出量显著减少至接近零。研究发现,如果在加速度过程中主动脉压力和心率达到相对稳定状态,并且如果心脏水平的平均主动脉压力大于或等于 100 托,则在 +GZ 加速度过程中应用微球技术在理论上是有效的。在清醒小型猪暴露于 +GZ 加速度期间,使用微球技术(直径 9.0 ± 0.8 微米)对这一假设进行了检验。得出的结论是,在规定的限度内,放射性微球技术在加速度研究中的使用与在常规实验室研究中的使用一样准确。

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