Related Experiment Video
Updated: Aug 15, 2026

Urinary Bladder Distention Evoked Visceromotor Responses as a Model for Bladder Pain in Mice
Published on: April 27, 2014
Vasomotion model explanation for urea rebound
1Transonic System, Inc., Ithaca, New York 14850, USA.
Abstract:
Urea rebound after hemodialysis is generally attributed to urea entering the circulation from poorly perfused tissue and/or entering from regions with low membrane permeability for urea. Another explanation for rebound is based on disorders in the microcirculation, connected with the phenomenon of vasomotion, i.e., cyclic opening and closing of microvessels. The purpose of the following mathematical model is to explain observed urea rebound by the vasomotion phenomenon. The significance of vasomotion is related to the fact that a significant fraction, up to 80-95%, of all microvessels are closed while others are being perfused. The rate with which open microvessels "migrate" through the tissue determines quality of perfusion. A stochastic scheme for describing vasomotion is developed. Probabilities to change the state of microvessels are defined as follows: alpha = probability to be open and remain open; beta = to be open and become closed; v = to be closed and remain closed; mu = to be closed and become open. The activity of vasomotion is defined by the rate of vasomotion, R, R = beta + mu, and can be measured using a curve of urea concentration.
Related Concept Videos
Urea Cycle
Hormonal Regulation
Hormonal Regulation of Blood Pressure
Epinephrine and Norepinephrine
The adrenal medulla releases epinephrine and norepinephrine, catecholamines that enhance and extend the sympathetic or "fight or flight" physiological response. These hormones escalate heart rate and the force of contraction while...
Autoregulation of Blood Flow
Chemical Signaling in Autoregulation
Chemical signaling operates at the precapillary sphincter level, inciting either contraction or relaxation.
Physiology of the Genitourinary System I: Renal Blood Flow and Glomerular Filtration
Physiology of the Genitourinary System III: Urine Concentration and Dilution

