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Dynamics of middle cerebral artery blood flow velocity during moderate-intensity exercise

机译:中强度运动时大脑中动脉血流动力学的变化

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摘要

The dynamic response to a stimulus such as exercise can reveal valuable insights into systems control in health and disease that are not evident from the steady-state perturbation. However, the dynamic response profile and kinetics of cerebrovascular function have not been determined to date. We tested the hypotheses that bilateral middle cerebral artery blood flow mean velocity (MCAV) increases exponentially following the onset of moderate-intensity exercise in 10 healthy young subjects. The MCAV response profiles were well fit to a delay (TD) + exponential (time constant, τ) model with substantial agreement for baseline [left (L): 69, right (R): 64 cm/s, coefficient of variation (CV) 11%], response amplitude (L: 16, R: 13 cm/s, CV 23%), TD (L: 54, R: 52 s, CV 9%), τ (L: 30, R: 30 s, CV 22%), and mean response time (MRT) (L: 83, R: 82 s, CV 8%) between left and right MCAV as supported by the high correlations (e.g., MRT r = 0.82, P < 0.05) and low CVs. Test-retest reliability was high with CVs for the baseline, amplitude, and MRT of 3, 14, and 12%, respectively. These responses contrasted markedly with those of three healthy older subjects in whom the MCAV baseline and exercise response amplitude were far lower and the kinetics slowed. A single older stroke patient showed baseline ipsilateral MCAV that was lower still and devoid of any exercise response whatsoever. We conclude that kinetics analysis of MCAV during exercise has significant potential to unveil novel aspects of cerebrovascular function in health and disease.>NEW & NOTEWORTHY Resolution of the dynamic stimulus-response profile provides a greater understanding of the underlying the physiological control processes than steady-state measurements alone. We report a novel method of measuring cerebrovascular blood velocity (MCAv) kinetics under ecologically valid conditions from rest to moderate-intensity exercise. This technique reveals that brain blood flow increases exponentially following the onset of exercise with 1) a strong bilateral coherence in young healthy individuals, and 2) a potential for unique age- and disease-specific profiles.
机译:对刺激(如运动)的动态反应可以揭示出对健康和疾病的系统控制的有价值的见解,而稳态扰动并不能证明这些见解。然而,迄今为止尚未确定脑血管功能的动态反应概况和动力学。我们测试了以下假设:在10名健康的年轻受试者中,进行中等强度的锻炼后,双侧大脑中动脉血流平均速度(MCAV)呈指数增长。 MCAV响应曲线非常适合延迟(TD)+指数(时间常数,τ)模型,并且与基线[左(L):69,右(R):64 cm / s,变异系数(CV) )11%],响应幅度(L:16,R:13 cm / s,CV 23%),TD(L:54,R:52 s,CV 9%),τ(L:30,R:30 s ,CV 22%)和左右MCAV之间的平均响应时间(L:83,R:82 s,CV 8%),得到了高相关性的支持(例如,MRT r = 0.82,P <0.05)和较低的简历。对于基线,幅度和MRT分别为3%,14%和12%的CV,重测的可靠性很高。这些反应与三名健康老年受试者的反应明显不同,在这三名健康老年受试者中,MCAV基线和运动反应幅度低得多,动力学减慢了。一名年龄较大的中风患者显示基线同侧MCAV仍然更低,并且没有任何运动反应。我们得出的结论是,运动过程中MCAV的动力学分析具有揭示健康和疾病中脑血管功能的新方面的巨大潜力。> NEW&NOTEWORTHY 动态刺激-反应谱的解析提供了对潜在的脑血管功能的更好理解。生理控制过程要比仅稳态测量要多。我们报告了从休息到中等强度的运动在生态有效条件下测量脑血管血流速度(MCAv)动力学的一种新方法。这项技术揭示了运动开始后脑血流量呈指数增长,其特征是:1)年轻健康个体的强烈双侧连贯性; 2)可能具有独特的年龄和疾病特异性特征。

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