Related Experiment Video
Updated: Aug 3, 2026

Autologous Endothelial Progenitor Cell-Seeding Technology and Biocompatibility Testing For Cardiovascular Devices in Large Animal Model
Published on: September 9, 2011
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.
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.
Abstract:
Congenital heart diseases (CHD) are one of the most frequently diagnosed congenital disorders, affecting approximately 40,000 live births annually in the United States. Out of the new patients diagnosed with CHD yearly, an estimated 2,500 patients require a substitute, non-native conduit artery to replace structures congenitally absent or hypoplastic. Devices used for conduit replacement encounter limitations exhibiting varying degrees of stiffness, calcification, susceptibility to infection, thrombosis, and a lack of implant growth capacity. Here, we report the functionality of pentagalloyl glucose (PGG) stabilized decellularized valved bovine jugular vein conduit (PGG-DBJVC). The PGG-DBJVC tissues demonstrated mechanical properties comparable to native and glutaraldehyde fixed tissues, while exhibiting resistance to both collagenase and elastase enzymatic degradation. Subcutaneous implantation of tissues established their biocompatibility and resistance to calcification, while implantation in sheep in the pulmonary position demonstrated adequate implant functionality, and repopulation of host cells, without excessive inflammation. In conclusion, this PGG-DBJVC device could be a favorable replacement option for pediatric patients, reducing the need for reoperations required with current devices. STATEMENT OF SIGNIFICANCE: Congenital Heart Disease (CHD) is a common congenital disorder affecting many newborns in the United States each year. The use of substitute conduit arteries is necessary for some patients with CHD who have missing or underdeveloped structures. Current conduit replacement devices have limitations, including stiffness, susceptibility to infection and thrombosis, and lack of implant growth capacity. Pentagalloyl glucose-stabilized bovine jugular vein valved tissue (PGG-DBJVC) offers a promising solution as it is resistant to calcification, and biocompatible. When implanted in rats and as pulmonary conduit replacement in sheep, the PGG-DBJVC demonstrated cellular infiltration without excessive inflammation, which could lead to remodeling and integration with host tissue and eliminate the need for replacement as the child grows.
More Related Videos
05:31Transcatheter Pulmonary Valve Replacement from Autologous Pericardium with a Self-Expandable Nitinol Stent in an Adult Sheep Model
Published on: June 8, 2022
07:53Author Spotlight: Improved Imaging for Neovascular Development in Congenital Heart Disease Research
Published on: April 26, 2024
Related Concept Videos
Arteries and Arterioles
Alveoli and Alveolar Ducts
Gross Anatomy of the Lungs
Carbon Dioxide Transport in the Blood
Forms of CO2 Transport
1. Dissolved in plasma: A small percentage (7-10%) of CO2 is transported and dissolved directly in the plasma.
2. Carbaminohemoglobin: Just over 20% of CO2 is chemically bound to...
Blood Supply to the Digestive System
Blood Supply to the Digestive System: The splanchnic circulation involves three main arteries: the celiac artery (also known as the celiac trunk) and the superior and inferior mesenteric...
Oxygen Delivering System III: Tracheostomy and T-piece
Tracheostomy
A tracheostomy is a surgically created opening (stoma) in the anterior part of the trachea. It is used to establish a patient airway, bypass an upper airway obstruction, simplify the removal of secretions, permit long-term...