Fish scale–derived hydroxyapatite for alveolar ridge preservation

Гидроксиапатит из рыбьей чешуи для сохранения альвеолярного гребня
Pereira Prathibha, Nebu George Thomas, Yogesh Bharat Dalvi, Kevin George Varghese, P. K. Binsi, A.A. Zynudheen, Maya Lekshmi, J. Shilpa, Vellappally Sajith, Anil Sukumaran
2024-07-01

FTIR characterizationSaos-2 cell viability and osteogenesisalveolar ridge preservationfish scale-derived hydroxyapatitein vivo rat socket preservation model
Alveolar ridge resorption following tooth extraction poses significant challenges for future dental restorations. This study investigated the efficacy of fish scale-derived hydroxyapatite (FSHA) as a socket preservation graft material to maintain alveolar bone volume and architecture. FSHA was extracted from *Labeo rohita* fish scales and characterized using Fourier transform infrared (FTIR) analysis. In vitro, biocompatibility and osteogenic potential were assessed using Saos-2 human osteosarcoma cells. Cell viability, migration, and proliferation were evaluated using MTT and scratch assays. In vivo performance was assessed in a rat model, and FSHA was compared to a commercial xenograft (Osseograft) and ungrafted controls. Histological analysis was performed at 8-week post-implantation to quantify new bone formation. FTIR confirmed the purity and homogeneity of FSHA. In vitro, FSHA enhanced Saos-2 viability, migration, and proliferation compared to controls. In vivo, FSHA demonstrated superior bone regeneration compared to Osseograft and ungrafted sites, with balanced graft resorption and new bone formation. Histological analysis revealed an active incorporation of FSHA into new bone, with minimal gaps and ongoing remodeling. Approximately 50%-60% of FSHA was resorbed by 8 weeks, closely matching the rate of new bone deposition. FSHA stimulated more bone formation in the apical socket region than in coronal areas. In conclusion, FSHA is a promising biomaterial for alveolar ridge preservation, exhibiting excellent biocompatibility, osteogenic potential, and balanced resorption. Its ability to promote robust bone regeneration highlights its potential as an effective alternative to currently used graft materials in socket preservation procedures.
1
Approximately 50%–60% of FSHA was resorbed by 8 weeks, matching the rate of new bone deposition and indicating balanced graft resorption and formation.
2
FSHA (fish scale-derived hydroxyapatite) was successfully extracted from Labeo rohita scales and FTIR confirmed its purity and homogeneity.
3
Histology showed active incorporation of FSHA into new bone with minimal gaps and ongoing remodeling, and greater bone formation in apical versus coronal socket regions.
4
In a rat socket preservation model, FSHA produced superior bone regeneration compared to a commercial xenograft (Osseograft) and ungrafted controls.
5
In vitro, FSHA enhanced Saos-2 cell viability, migration, and proliferation compared to controls, indicating good biocompatibility and osteogenic potential.

Fish scale–derived hydroxyapatite (FSHA) used as a socket preservation graft material for alveolar ridge preservation

Biocompatibility, osteogenic potential, resorption behavior, and bone-regenerative efficacy of FSHA in vitro (Saos-2 cells) and in vivo (rat extraction socket) compared to a commercial xenograft and ungrafted controls

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Publication Date
2024-07-01
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Pereira Prathibha
Nebu George Thomas
Yogesh Bharat Dalvi
Kevin George Varghese
P. K. Binsi
A.A. Zynudheen
Maya Lekshmi
J. Shilpa
Vellappally Sajith
Anil Sukumaran
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