BMP-7 blocks mesenchymal conversion of mesothelial cells and prevents peritoneal damage induced by dialysis fluid

Jesús Loureiro1, Margot Schilte, Abelardo Aguilera

  • 1Unidad de Biología Molecular, Hospital Universitario de la Princesa, Madrid, Spain.

Abstract

Insights

Bone morphogenic protein-7 (BMP-7) blocks transforming growth factor-beta1 (TGF-beta1)-induced epithelial-to-mesenchymal transition (EMT) in mesothelial cells. BMP-7 administration reduced fibrosis and angiogenesis in a rat peritoneal dialysis model.

Area of Science:

  • Cell Biology
  • Nephrology
  • Regenerative Medicine

Background:

  • Peritoneal dialysis (PD) is associated with mesothelial cell (MC) epithelial-to-mesenchymal transition (EMT), leading to peritoneal membrane (PM) damage.
  • Bone morphogenic protein-7 (BMP-7) antagonizes transforming growth factor-beta1 (TGF-beta1), a key mediator of EMT and fibrosis.

Purpose of the Study:

  • To investigate the role of BMP-7 in modulating MC EMT.
  • To evaluate the protective effects of BMP-7 in a rat model of PD-induced peritoneal injury.

Main Methods:

  • Analysis of BMP-7, TGF-beta1, EMT markers, and fibrosis in MC in vitro and in rat peritoneum.
  • In vivo study involving daily PD fluid instillation with or without BMP-7 in rats for 5 weeks.
  • Histological, immunofluorescence, and ELISA techniques were used for quantification of cellular changes, fibrosis, angiogenesis, and hyaluronic acid levels.

Main Results:

  • BMP-7 expression was downregulated during MC EMT; recombinant BMP-7 blocked TGF-beta1-induced EMT via a Smad-dependent pathway.
  • PD fluid induced inflammation, regeneration, MC invasion, fibrosis, and angiogenesis in rat peritoneum.
  • BMP-7 administration reduced MC invasion, fibrosis, and angiogenesis but did not affect inflammatory responses.

Conclusions:

  • A balance between BMP-7 and TGF-beta1 is crucial for controlling MC EMT.
  • Blocking EMT represents a potential therapeutic strategy to mitigate peritoneal membrane damage during PD.

Related Concept Videos

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...
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 III: Nursing Management01:25

Peritoneal Dialysis III: Nursing Management

Peritoneal dialysis, or PD, utilizes the peritoneal membrane as a filter to eliminate excess fluid and waste products. Effective nursing management is essential for ensuring patient safety, preventing complications, and promoting optimal function of the peritoneal dialysis process.Assessment and MonitoringNurses must thoroughly assess the patient before, during, and after each dialysis session. Regular monitoring includes vital signs, daily weight, fluid intake and output, and laboratory values...
Hemodialysis II: Procedure and Complications01:24

Hemodialysis II: Procedure and Complications

DialyzersA hemodialysis (HD) dialyzer is a plastic cartridge containing thousands of parallel hollow fibers, which serve as semipermeable membranes. These fibers are typically made from cellulose-based or other synthetic materials. During HD, blood is pumped into the top of the cartridge and distributed among these fibers. Simultaneously, dialysis fluid, known as dialysate, is introduced into the bottom of the cartridge, bathing the outside of the fibers. Across the semipermeable membrane,...