DocumentCode
1487275
Title
A mathematical model of the carotid baroregulation in pulsating conditions
Author
Ursino, Mauro
Author_Institution
Dept. of Electron. Comput. Sci. & Syst., Bologna Univ., Italy
Volume
46
Issue
4
fYear
1999
fDate
4/1/1999 12:00:00 AM
Firstpage
382
Lastpage
392
Abstract
A mathematical model of short-term arterial pressure control by the carotid baroreceptors in vagotomized subjects is presented. It includes an elastance variable description of the left and right heart, the systemic and pulmonary circulations, the afferent carotid baroreceptor pathway, a central elaboration unit, and the action of five effector mechanisms. Simulation results suggest that the carotid baroreflex is able to significantly modulate the cardiac function curve, but this effect is masked in vivo by changes in arterial pressure and atrial pressure. During heart pacing, cardiac output increases with frequency at moderate levels of heart rate, then fails to increase further due to a reduction in stroke volume. Shifting from nonpulsatile to pulsatile perfusion of the carotid sinuses decreases the overall baroreflex gain. Finally, a sensitivity analysis suggests that venous unstressed volume control plays the major role in the early hemodynamic response to acute hemorrhage, whereas systemic resistance control is less important. In all cases, there has been satisfactory agreement between model and experimental results.
Keywords
biocontrol; haemodynamics; physiological models; pressure control; pulsatile flow; baroreceptors; cardiac function curve; cardiac output; carotid baroregulation; carotid sinuses; effector mechanisms; elastance variable description; heart pacing; left heart; mathematical model; nonpulsatile perfusion; overall baroreflex gain; pulmonary circulation; pulsatile perfusion; pulsating conditions; right heart; short-term arterial pressure control; stroke volume reduction; systemic circulation; systemic resistance control; vagotomized subjects; venous unstressed volume control; Baroreflex; Blood pressure; Control systems; Frequency; Heart rate; Hemodynamics; In vivo; Mathematical model; Pressure control; Sensitivity analysis; Baroreflex; Blood Pressure; Cardiac Output; Cardiac Pacing, Artificial; Carotid Sinus; Elasticity; Hemorrhage; Humans; Models, Cardiovascular; Pulmonary Circulation; Pulsatile Flow; Vagotomy; Vascular Resistance;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/10.752935
Filename
752935
Link To Document