Cleft palate is a congenital anomaly that causes functional and esthetic challenges, and the hard palate is essential for feeding, speech, and separation of the oral and nasal cavities. Yet, current reconstructive techniques do not restore its bony component. Building on previous in vitro work showing that decellularized palatal mucoperiosteum, microperforated with Quantum Molecular Resonance (QMR®) technology and recellularized with mesenchymal stem cells, preserves the collagen microenvironment, supports engraftment, and shows osteoinductive potential, this study evaluated the early feasibility and regenerative potential of bioengineered mucoperiosteal scaffolds (BEMS) in Landrace pigs model. Bone marrow was collected from recipient pigs to isolate pBM-MSCs. Donor palatal mucoperiosteum was decellularized, microperforated, and recellularized with these cells to generate BEMS. After surgical creation of a cleft palate, four pigs received BEMS, and two controls underwent standard palatoplasty. At one month, scaffold-treated animals showed early mucosal and osseous regeneration, including neo-epithelium, connective tissue, and new bone formation, without clinical or routine histological signs of acute rejection. SPARC (Secreted protein acidic and rich in cysteine) expression supported osteogenic activity. Regenerated palates were stable and fracture-resistant, whereas controls showed incomplete repair and fractures. These findings suggest that BEMS may address limitations of conventional palatal reconstruction and support further investigation for human palatal bone regeneration.

Rizzo, M. I., Caristo, M. E., Ribaldone, C., Marino, S. F. M., Spuntarelli, G., Contini, A. C., Dall'Oglio, L., Tomao, L., Algeri, M., Tedesco, S., Pozzato, G., De Stefanis, C., Cardoni, A., Lupoi, L., Codazzi, C., Leone, L., Zama, M., Raponi, M., Rizzo, M. I., Caristo, M. E., Ribaldone, C., Marino, S. F. M., Spuntarelli, G., Contini, A. C., Dall'Oglio, L., Tomao, L., Algeri, M., Tedesco, S., Pozzato, G., De Stefanis, C., Cardoni, A., Lupoi, L., Codazzi, C., Leone, L., Zama, M., Raponi, M., Full-Thickness Regeneration of the Hard Palate Using Bioengineered Mucoperiosteal Scaffolds in a Porcine Model, <<BIOMIMETICS>>, 2026; 11 (9): 652-674. [doi:10.3390/biomimetics11090652] [https://hdl.handle.net/10807/346296]

Full-Thickness Regeneration of the Hard Palate Using Bioengineered Mucoperiosteal Scaffolds in a Porcine Model

Caristo, Maria Emiliana;Dall'Oglio, Luigi;Codazzi, Camilla;Leone, Lucia
;
Zama, Mario;Raponi, Massimiliano;Caristo, Maria Emiliana;Dall'Oglio, Luigi;Codazzi, Camilla;Leone, Lucia
;
Zama, Mario
;
Raponi, Massimiliano
2026

Abstract

Cleft palate is a congenital anomaly that causes functional and esthetic challenges, and the hard palate is essential for feeding, speech, and separation of the oral and nasal cavities. Yet, current reconstructive techniques do not restore its bony component. Building on previous in vitro work showing that decellularized palatal mucoperiosteum, microperforated with Quantum Molecular Resonance (QMR®) technology and recellularized with mesenchymal stem cells, preserves the collagen microenvironment, supports engraftment, and shows osteoinductive potential, this study evaluated the early feasibility and regenerative potential of bioengineered mucoperiosteal scaffolds (BEMS) in Landrace pigs model. Bone marrow was collected from recipient pigs to isolate pBM-MSCs. Donor palatal mucoperiosteum was decellularized, microperforated, and recellularized with these cells to generate BEMS. After surgical creation of a cleft palate, four pigs received BEMS, and two controls underwent standard palatoplasty. At one month, scaffold-treated animals showed early mucosal and osseous regeneration, including neo-epithelium, connective tissue, and new bone formation, without clinical or routine histological signs of acute rejection. SPARC (Secreted protein acidic and rich in cysteine) expression supported osteogenic activity. Regenerated palates were stable and fracture-resistant, whereas controls showed incomplete repair and fractures. These findings suggest that BEMS may address limitations of conventional palatal reconstruction and support further investigation for human palatal bone regeneration.
2026
Inglese
Rizzo, M. I., Caristo, M. E., Ribaldone, C., Marino, S. F. M., Spuntarelli, G., Contini, A. C., Dall'Oglio, L., Tomao, L., Algeri, M., Tedesco, S., Pozzato, G., De Stefanis, C., Cardoni, A., Lupoi, L., Codazzi, C., Leone, L., Zama, M., Raponi, M., Rizzo, M. I., Caristo, M. E., Ribaldone, C., Marino, S. F. M., Spuntarelli, G., Contini, A. C., Dall'Oglio, L., Tomao, L., Algeri, M., Tedesco, S., Pozzato, G., De Stefanis, C., Cardoni, A., Lupoi, L., Codazzi, C., Leone, L., Zama, M., Raponi, M., Full-Thickness Regeneration of the Hard Palate Using Bioengineered Mucoperiosteal Scaffolds in a Porcine Model, <<BIOMIMETICS>>, 2026; 11 (9): 652-674. [doi:10.3390/biomimetics11090652] [https://hdl.handle.net/10807/346296]
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