The partitioning of fluid flows among small and ultrasmall pores of the three-pore model in peritoneal dialysis has been traditionally assessed using 4-hour dwells with 3.86% glucose solutions. Under these conditions, however, back-filtration through small pores has been hard to demonstrate. As nicely shown by Asghar and Davies, however, the use of low-concentration (1.36%) glucose-based solutions allows accurate studies of the partitioning of fluid flows from the peritoneal cavity under conditions of fluid loss
Introduction: The osmotic conductance to glucose (OCG) is a crucial determinant of ultrafiltration (...
Net removal of fluid and sodium from the body during peritoneal dialysis is accomplished with dialys...
The nonlinear mathematical model for solute and fluid transport induced by the osmotic pressure of g...
The partitioning of fluid flows among small and ultrasmall pores of the three-pore model in peritone...
The partitioning of fluid flows among small and ultrasmall pores of the three-pore model in peritone...
The three-pore model of peritoneal fluid transport predicts that once the osmotic gradient has dissi...
This paper deals with the peritoneal microcirculation and with peritoneal exchange occurring in peri...
A quantitative description of solute and fluid transport during peritoneal dialysis. To investigate ...
Computer simulations of peritoneal fluid transport in CAPD. To model the changes in intraperitoneal ...
The contribution of free water transport and small pore transport to the total fluid removal in peri...
Background. In spite of many peritoneal tests proposed, there is still a need for a simple and relia...
A mathematical model for fluid and solute transport in peritoneal dialysis is constructed. The model...
Volume control is critical for peritoneal dialysis. Although peritoneal equilibration test (PET) has...
Background. The development of fluid and salt retention is a potential problem for all peritoneal di...
Simulations of peritoneal solute transport during CAPD. Application of two-pore formalism. Blood per...
Introduction: The osmotic conductance to glucose (OCG) is a crucial determinant of ultrafiltration (...
Net removal of fluid and sodium from the body during peritoneal dialysis is accomplished with dialys...
The nonlinear mathematical model for solute and fluid transport induced by the osmotic pressure of g...
The partitioning of fluid flows among small and ultrasmall pores of the three-pore model in peritone...
The partitioning of fluid flows among small and ultrasmall pores of the three-pore model in peritone...
The three-pore model of peritoneal fluid transport predicts that once the osmotic gradient has dissi...
This paper deals with the peritoneal microcirculation and with peritoneal exchange occurring in peri...
A quantitative description of solute and fluid transport during peritoneal dialysis. To investigate ...
Computer simulations of peritoneal fluid transport in CAPD. To model the changes in intraperitoneal ...
The contribution of free water transport and small pore transport to the total fluid removal in peri...
Background. In spite of many peritoneal tests proposed, there is still a need for a simple and relia...
A mathematical model for fluid and solute transport in peritoneal dialysis is constructed. The model...
Volume control is critical for peritoneal dialysis. Although peritoneal equilibration test (PET) has...
Background. The development of fluid and salt retention is a potential problem for all peritoneal di...
Simulations of peritoneal solute transport during CAPD. Application of two-pore formalism. Blood per...
Introduction: The osmotic conductance to glucose (OCG) is a crucial determinant of ultrafiltration (...
Net removal of fluid and sodium from the body during peritoneal dialysis is accomplished with dialys...
The nonlinear mathematical model for solute and fluid transport induced by the osmotic pressure of g...