Pentagalloyl glucose-stabilized decellularized bovine jugular vein valved conduits as pulmonary conduit replacement

Dipasha Sinha1, Agnes Nagy-Mehesz1, Dan Simionescu1

  • 1Department of Bioengineering, College of Engineering, Computing and Applied Sciences, Clemson University, Clemson, South Carolina 29634, USA.

Acta Biomaterialia
|August 24, 2023
PubMed

Insights

A new pentagalloyl glucose-stabilized decellularized valved bovine jugular vein conduit (PGG-DBJVC) shows promise for pediatric congenital heart disease patients. This biocompatible implant resists calcification and degradation, potentially reducing reoperations.

Area of Science:

  • Biomaterials Science
  • Cardiovascular Surgery
  • Regenerative Medicine

Background:

  • Congenital heart diseases (CHD) affect ~40,000 US newborns annually.
  • 2,500 CHD patients require conduit artery replacement yearly.
  • Current conduits have limitations: stiffness, calcification, infection, thrombosis, and lack of growth.

Purpose of the Study:

  • To evaluate the functionality and biocompatibility of a novel pentagalloyl glucose (PGG) stabilized decellularized valved bovine jugular vein conduit (PGG-DBJVC).
  • To assess PGG-DBJVC as a potential replacement for native arteries in pediatric patients with CHD.

Main Methods:

  • Mechanical property comparison with native and glutaraldehyde-fixed tissues.
  • Enzymatic degradation resistance testing (collagenase, elastase).
  • Subcutaneous implantation for biocompatibility and calcification assessment in rats.
  • Pulmonary conduit implantation in sheep to evaluate functionality and host response.

Main Results:

  • PGG-DBJVC exhibited mechanical properties similar to native and fixed tissues.
  • Tissues demonstrated resistance to collagenase and elastase degradation.
  • Subcutaneous implants were biocompatible and resistant to calcification.
  • Pulmonary implants in sheep showed good functionality, host cell repopulation, and minimal inflammation.

Conclusions:

  • PGG-DBJVC is a mechanically sound, biocompatible, and degradation-resistant conduit.
  • The device shows potential as a favorable replacement option for pediatric CHD patients.
  • This approach may reduce the need for reoperations due to growth and integration with host tissue.

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