A Translational Tissue Engineering Approach to Airway Reconstruction Leveraging Decellularized Meniscus and Cartilage Progenitor Cells
Gehret, P. M.; Ali Akbari Ghavimi, S.; Dumas, A.; Borek, R. C.; Aronson, M.; Carpenter, K.; Jacobs, I. N.; Gottardi, R.
Show abstract
Severe subglottic stenosis develops in over 20,000 infants per year and requires laryngotracheal reconstruction (LTR) to enlarge the airway by implanting autologous cartilage from a rib graft. However, young children often lack sufficiently sized costal cartilage resulting in increased donor site morbidity and operative time, as well as an elevated risk for airway restenosis necessitating revision surgery. To overcome these limitations, we have created a first-of-its-kind scaffold based on porcine meniscal cartilage decellularization (MEND) by selectively digesting the elastin and blood vessels uniquely present in the meniscus to create microchannels that support cellular re-invasion. Here we demonstrated that MEND can be fully recellularized in 3 days with ear-derived cartilage progenitor cells (eCPCs) and reaches structural and functional maturation suitable for implant within 3 weeks of chondrogenic differentiation, a time frame compatible with clinical translation, a first in airway tissue engineering. To further this therapy toward clinical translation, we validated the eCPCs-MEND grafts in a New Zealand white rabbit LTR model. Our results demonstrated airway expansion, graft re-epitheliazation, neocartilage formation, and integration with adjacent native laryngotracheal cartilage, notably at a higher degree than the standard of care of autologous costal cartilage. No instances of adverse events of extrusion, granulation, infection, or calcification were observed in any of the 38 rabbits of our 3 months study. These results demonstrate the feasibility of our translational tissue engineering approach to laryngotracheal reconstruction and could overcome the autograft-associated limitations in pediatric patients and a decrease the risk of invasive revision surgery.
Matching journals
The top 6 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Temporal enzymatic treatment to enhance the remodelling of multiple cartilage microtissues into a structurally organised tissue 96%
- Biofabrication of spatially organized temporo-mandibular fibrocartilage assembloids 96%
- Bioassembly of region-specific fibrocartilage microtissues to engineer zonally defined meniscal grafts 96%
Similar papers in this journal
- Rapid Restoration of Cell Phenotype and Matrix Forming Capacity Following Transient Nuclear Softening 96%
- Syngeneic adipose-derived stromal cells modulate the immune response but have limited persistence within decellularized adipose tissue implants in C57BL/6 mice 95%
- Conserved and tissue-specific immune responses to biologic scaffold implantation 95%
Similar papers in this journal
- CRISPRi-Driven Osteogenesis in Adipose-Derived Stem Cells for Bone Healing and Tissue Engineering 96%
- Modular, Vascularized Hypertrophic Cartilage Constructsfor Bone Tissue Engineering Applications 95%
- Engineered cartilage from human chondrocytes with homozygous knockout of cell cycle inhibitor p21 95%
Similar papers in this journal
- An immunologically active, adipose-derived extracellular matrix biomaterial for soft tissue reconstruction: concept to clinical trial 96%
- Immunomodulatory Contribution of Mast Cells to the Regenerative Biomaterial Microenvironment 94%
- Endogenous Tenocyte Activation Underlies the Regenerative Capacity of Adult Zebrafish Tendon 92%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.