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Cardiovascular dynamics during head-up tilt assessed via pulsatile and non-pulsatile models
- Source :
- Journal of mathematical biology. 79(3)
- Publication Year :
- 2018
-
Abstract
- This study develops non-pulsatile and pulsatile models for the prediction of blood flow and pressure during head-up tilt. This test is used to diagnose potential pathologies within the autonomic control system, which acts to keep the cardiovascular system at homeostasis. We show that mathematical modeling can be used to predict changes in cardiac contractility, vascular resistance, and arterial compliance, quantities that cannot be measured but are useful to assess the system’s state. These quantities are predicted as time-varying parameters modeled using piecewise linear splines. Having models with various levels of complexity formulated with a common set of parameters, allows us to combine long-term non-pulsatile simulations with pulsatile simulations on a shorter time-scale. We illustrate results for a representative subject tilted head-up from a supine position to a $$60^{\circ }$$ angle. The tilt is maintained for 5 min before the subject is tilted back down. Results show that if volume data is available for all vascular compartments three parameters can be identified, cardiovascular resistance, vascular compliance, and ventricular contractility, whereas if model predictions are made against arterial pressure and cardiac output data alone, only two parameters can be estimated either resistance and contractility or resistance and compliance.
- Subjects :
- Adult
Male
Cardiac output
Supine position
Pulsatile flow
Blood Pressure
01 natural sciences
010305 fluids & plasmas
Contractility
03 medical and health sciences
Heart Rate
Tilt-Table Test
0103 physical sciences
medicine
Supine Position
Humans
Cardiac Output
030304 developmental biology
Mathematics
0303 health sciences
Applied Mathematics
Hemodynamics
Models, Cardiovascular
Blood flow
Agricultural and Biological Sciences (miscellaneous)
Compliance (physiology)
Tilt (optics)
medicine.anatomical_structure
Modeling and Simulation
Pulsatile Flow
Vascular resistance
Vascular Resistance
Biomedical engineering
Subjects
Details
- ISSN :
- 14321416
- Volume :
- 79
- Issue :
- 3
- Database :
- OpenAIRE
- Journal :
- Journal of mathematical biology
- Accession number :
- edsair.doi.dedup.....12ac1711104cff8ad5ecb4e8bfc04173