DocumentCode :
319763
Title :
Mathematical analysis of the autonomic influence on the heart rate variability
Author :
Cavalcanti, Silvio ; Severi, Stefano ; Boarini, Claudia
Author_Institution :
DEIS, Bologna, Italy
Volume :
4
fYear :
1996
fDate :
31 Oct-3 Nov 1996
Firstpage :
1580
Abstract :
The influence of arterial baroreceptor reflex on the heart rate variability is analysed by using a simple computer model of short-term autonomic regulation of heart activity. As basic mechanisms sufficient to elicit heart rate oscillations, the model incorporates: the systemic circulation, a non-pulsatile cardiac pump and a delayed non-linear negative-feedback simulating the arterial baroreceptor reflex. Short-term autonomic control of the cardiac pump is effected through sympathetic and parasympathetic divisions whose activities are modulated by afferent vagal tone. Model dynamics result high sensitive to changes of autonomic regulation parameters whose variations within a physiological range cause heart rate and arterial pressure to oscillate with frequencies within 0.1-0.4 Hz band. Simulation results reveal that because of the different latent periods characterising the sympathetic- and vagal-mediate controls two distinct oscillatory components with incommensurate frequencies may appear. Heart rate power spectrum exhibits a peak in LF band whose frequency diminishes form 0.17 to 0.12 Hz when efferent parasympathetic activity is partially depressed. Instead, an oscillatory component with high-frequency (0.4 Hz) appears when an enhancement of vagal activation or a partial inhibition of the sympathetic excitation is simulated
Keywords :
biocontrol; cardiology; haemodynamics; mechanoception; neurophysiology; physiological models; 0.1 to 0.4 Hz; afferent vagal tone; autonomic influence; delayed nonlinear negative-feedback; heart activity; heart rate oscillations; heart rate power spectrum; heart rate variability; latent periods; mathematical analysis; nonpulsatile cardiac pump; short-term autonomic control; short-term autonomic regulation; simple computer model; systemic circulation; Baroreflex; Biological system modeling; Blood pressure; Cardiovascular system; Frequency conversion; Hafnium; Heart rate; Heart rate variability; Mathematical analysis; Resonant frequency;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Engineering in Medicine and Biology Society, 1996. Bridging Disciplines for Biomedicine. Proceedings of the 18th Annual International Conference of the IEEE
Conference_Location :
Amsterdam
Print_ISBN :
0-7803-3811-1
Type :
conf
DOI :
10.1109/IEMBS.1996.647560
Filename :
647560
Link To Document :
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