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.

Related Concept Videos

Peritoneal Dialysis I: Introduction and Procedure01:30

Peritoneal Dialysis I: Introduction and Procedure

Peritoneal dialysis (PD) is a procedure that facilitates the exchange of solutes, waste products, electrolytes, and excess fluid between the blood in the peritoneal capillaries and a dialysis solution introduced into the peritoneal cavity.Principles of Peritoneal Dialysis (PD)Diffusion: Waste products such as urea and electrolytes move from high concentrations in the blood to low concentrations in the dialysate across the peritoneal membrane. This mechanism is driven by the concentration...
Peritoneal Dialysis II: Peritoneal Dialysis Systems and Complications01:25

Peritoneal Dialysis II: Peritoneal Dialysis Systems and Complications

Peritoneal dialysis (PD) is a medical process that removes waste products and excess fluid from the body using the peritoneal membrane as a natural filter.Peritoneal Dialysis MethodsSeveral methods can be used for peritoneal dialysis, including Acute Intermittent Peritoneal Dialysis, Continuous Ambulatory Peritoneal Dialysis, and Automated Peritoneal Dialysis, also known as Continuous Cyclic Peritoneal Dialysis.Acute Intermittent Peritoneal Dialysis (AIPD) is used for patients with uremic...
Hemodialysis I: Introduction01:25

Hemodialysis I: Introduction

Hemodialysis (HD) is a medical treatment that artificially removes waste products, excess fluids, and toxins from the blood when the kidneys are no longer able to perform these functions effectively. In this process, blood is filtered through a semipermeable membrane, allowing for the selective removal of waste while preserving necessary components like blood cells and proteins. Hemodialysis is typically performed in patients with end-stage renal disease (ESRD) or severe kidney...
Acute Kidney Injury V: Interprofessional Care01:20

Acute Kidney Injury V: Interprofessional Care

Acute Kidney Injury (AKI) requires a collaborative healthcare approach to restore renal function and prevent complications. Essential management strategies involve monitoring fluid and electrolyte balance, adjusting medications, initiating dialysis when necessary, and providing nutritional support.Fluid and Electrolyte ManagementFluid Monitoring: Regularly monitoring body weight, central venous pressure, and urine output helps detect fluid imbalances early. Patient intake and output are...
Dialysis01:27

Dialysis

Renal failure occurs when the kidneys lose their ability to filter waste products from the blood effectively. It can be classified into two types: acute renal failure (ARF) and chronic renal failure (CRF).
Acute kidney injury develops suddenly and can be caused by pre-renal causes (e.g., hypovolemia, shock), intrinsic renal causes (e.g., acute tubular necrosis), or post-renal causes (e.g., urinary obstruction). In contrast, chronic renal failure progresses gradually over time and is often...
Dialysis01:15

Dialysis

Dialysis is a diffusion-based purification process that separates analyte molecules from a complex matrix. This is accomplished by allowing molecules in the solution to pass through a semipermeable membrane into a liquid on the other side. The membrane is usually made of cellulose acetate or cellulose nitrate, and the second liquid must be miscible with the solution. Ions (e.g., chloride or sodium) or organic molecules (e.g., glucose) can pass through the membrane pores, which generally have...