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分形心率动力学丧失的生理背景。

Physiological background of the loss of fractal heart rate dynamics.

作者信息

Tulppo Mikko P, Kiviniemi Antti M, Hautala Arto J, Kallio Mika, Seppänen Tapio, Mäkikallio Timo H, Huikuri Heikki V

机构信息

Merikoski Rehabilitation and Research Centre, Kasarmintie 13, PO Box 404, FIN-90101 Oulu, Finland.

出版信息

Circulation. 2005 Jul 19;112(3):314-9. doi: 10.1161/CIRCULATIONAHA.104.523712. Epub 2005 Jul 11.

Abstract

BACKGROUND

Altered fractal heart rate (HR) dynamics occur during various disease states, but the physiological background of abnormal fractal HR behavior is not well known. We tested the hypothesis that the fractal organization of human HR dynamics is determined by the balance between sympathetic and vagal outflow.

METHODS AND RESULTS

A short-term fractal scaling exponent (alpha1) of HR dynamics, analyzed by the detrended fluctuation analysis (DFA) method, and the high-frequency (HF) and low-frequency (LF) spectral components of R-R intervals (0.15 to 0.4 Hz; n=13), along with muscle sympathetic nervous activity (MSNA) from the peroneus nerve (n=11), were assessed at rest and during cold face and cold hand immersion in healthy subjects. During cold face immersion, HF power increased (from 6.9+/-1.3 to 7.6+/-1.2 ln ms2, P<0.01), as did MSNA (from 32+/-17 to 44+/-14 bursts/100 heartbeats, P<0.001), and LF/HF ratio decreased (P<0.01). Cold hand immersion resulted in a similar increase in MSNA (from 34+/-17 to 52+/-19 bursts/100 heartbeats, P<0.001) but a decrease in HF spectral power (from 7.0+/-1.3 to 6.5+/-1.1 ln ms2, P<0.05) and an increase in the LF/HF ratio (P<0.05). The fractal scaling index alpha1 decreased in all subjects (from 0.85+/-0.27 to 0.67+/-0.30, P<0.0001) during cold face immersion but increased during cold hand immersion (from 0.77+/-0.22 to 0.97+/-0.20, P<0.01).

CONCLUSIONS

The fractal organization of human HR dynamics is determined by a delicate interplay between sympathetic and vagal outflow, with the breakdown of fractal HR behavior toward more random dynamics occurring during coactivation of sympathetic and vagal outflow.

摘要

背景

在各种疾病状态下,心率(HR)的分形动力学都会发生改变,但异常分形HR行为的生理背景尚不清楚。我们检验了这样一个假设,即人类HR动力学的分形组织是由交感神经和迷走神经输出之间的平衡所决定的。

方法与结果

通过去趋势波动分析(DFA)方法分析HR动力学的短期分形标度指数(alpha1),以及RR间期的高频(HF)和低频(LF)频谱成分(0.15至0.4Hz;n = 13),同时评估健康受试者在静息状态下以及冷脸和冷手浸入过程中来自腓神经的肌肉交感神经活动(MSNA)(n = 11)。在冷脸浸入过程中,HF功率增加(从6.9±1.3增加到7.6±1.2 ln ms2,P<0.01),MSNA也增加(从32±17增加到44±14次爆发/100次心跳,P<0.001),而LF/HF比值降低(P<0.01)。冷手浸入导致MSNA有类似增加(从34±17增加到52±19次爆发/100次心跳,P<0.001),但HF频谱功率降低(从7.0±1.3降低到6.5±1.1 ln ms2,P<0.05),LF/HF比值增加(P<0.05)。在冷脸浸入过程中,所有受试者的分形标度指数alpha1均降低(从0.85±0.27降低到0.67±0.30,P<0.0001),而在冷手浸入过程中增加(从0.77±0.22增加到0.97±0.20,P<0.01)。

结论

人类HR动力学的分形组织由交感神经和迷走神经输出之间的微妙相互作用所决定,在交感神经和迷走神经输出共同激活期间,分形HR行为会向更随机动力学方向瓦解。

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