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The influence of peritoneal surface area on dialysis adequacy
Michel Fischbach1, Céline Dheu, Pauline Helms
1Nephrology Dialysis and Transplantation, Children's Unit, University Louis Pasteur, Strasbourg, France. Michel.Fischbach@chru-strasbourg.fr
Insights
Optimizing peritoneal dialysis in children requires careful selection of dialysis fluid and fill volume, considering the dynamic peritoneal membrane. Proper scaling by body surface area (BSA) ensures effective dialysis and protects the membrane.
Area of Science:
- Pediatric Nephrology
- Renal Physiology
- Dialysis Technology
Background:
- Peritoneal dialysis (PD) prescription in children hinges on dialysis fluid choice, fill volume (mL/m2 body surface area [BSA]), and contact time.
- The peritoneal membrane functions dynamically, unlike static hemodialyzers, making peritoneal surface area crucial for dialysis adequacy.
Purpose of the Study:
- To analyze the components of peritoneal surface area and their impact on dialysis adequacy in pediatric patients.
- To guide the development of future PD fluids and strategies for optimizing PD in children.
Main Methods:
- Analysis of peritoneal membrane structure and function, including anatomic, contact, and vascular areas.
- Consideration of age-related differences in peritoneal surface area and the necessity of BSA scaling for fill volume.
- Evaluation of factors influencing contact area recruitment and vascular area perfusion.
Main Results:
- Infant anatomic peritoneal area is larger per kilogram but equivalent per m2 BSA compared to adults.
- Scaling fill volume by BSA is essential to maintain an adequate fill volume to exchange area ratio.
- Contact area is a fraction (30-60%) of anatomic area, influenced by posture and fill volume; vascular area depends on perfusion.
Conclusions:
- Peritoneal dialysis adequacy in children is influenced by the dynamic nature of the peritoneal membrane and its surface areas.
- BSA-scaled fill volumes are critical for pediatric PD to prevent a hyperpermeable state.
- Future PD fluids should optimize fill volume tolerance and protect the peritoneal membrane from hyperperfusion and inflammatory agents.
Abstract:
In children, the prescription of peritoneal dialysis is based mainly on the choice of the peritoneal dialysis fluid, the intraperitoneal fill volume (mL/m2 body surface area (BSA)], and the contact time. The working mode of the peritoneal membrane as a dialysis membrane is more related to a dynamic complex structure than to a static hemodialyzer. Thus, the peritoneal surface area impacts on dialysis adequacy. In fact, the peritoneal surface area may be viewed as composed of three exchange entities: the anatomic area, the contact area, and the vascular area. First, in infants, the anatomic area appears to be two-fold larger than in adults when expressed per kilogram body weight. On the other hand, the anatomic area becomes independent of age when expressed per square meter BSA. Therefore, scaling of the intraperitoneal fill volume by BSA (m2) is necessary to prevent a too low ratio of fill volume to exchange area, which would result in a functional "hyperpermeable" peritoneal exchange. Second, the contact area, also called the wetted membrane, is only a portion of the anatomic area, representing 30% to 60% of this area in humans, as measured by computed tomography. Both posture and fill volume may affect the extent of recruitment of contact area. Finally, the vascular area is influenced by the availability of both the anatomic area and the recruited contact area. This surface is governed essentially by both peritonealvascular perfusion, represented by the mesenteric vascular flow and, hence, by the number of perfused capillaries available for exchange. This vascular area is dynamically affected by different factors, such as composition of the peritoneal fluid, the fill volume, and the production of inflammatory agents. Peritoneal dialysis fluids that will be developed in the future for children should allow an optimization of the fill volume owing to a better tolerance in terms of lower achieved intraperitoneal pressure for a given fill volume. Moreover, future peritoneal dialysis fluids should protect the peritoneal membrane from hyperperfusion (lower glucose degradation products).
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