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Synthesis of Graphene-Hydroxyapatite Nanocomposites for Potential Use in Bone Tissue Engineering
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Alginate-nanohydroxyapatite hydrogel system: Optimizing the formulation for enhanced bone regeneration.

J Barros1, M P Ferraz2, J Azeredo3

  • 1i3S - Instituto de Investigação e Inovação em Saúde, Universidade do Porto, Porto, Portugal; INEB - Instituto de Engenharia Biomédica, Universidade Porto, Porto, Portugal; FEUP - Faculdade de Engenharia, DEMM, Universidade do Porto, Porto, Portugal.

Materials Science & Engineering. C, Materials for Biological Applications
|September 25, 2019
PubMed
Summary

This study investigated how different concentrations of nanohydroxyapatite (nanoHA) affect the performance of alginate-based hydrogels for bone regeneration. Researchers tested nanoHA concentrations from 30 to 70 wt% and evaluated the hydrogels' properties and biological response. They found that 30 wt% nanoHA enhanced cell proliferation and bone formation, while higher concentrations reduced these effects. The study also showed that nanoHA content influenced calcium release and pH stability. Ex vivo testing confirmed the in vitro findings, showing that 30 wt% nanoHA promoted collagen and bone matrix formation. The results suggest that optimizing nanoHA concentration is essential for effective bone repair. The authors propose that lower nanoHA concentrations may be more suitable for clinical use. These findings could guide the development of better biomaterials for bone regeneration.

Keywords:
AlginateBiocompatibilityBiomaterialsCompositeHydrogelNanohydroxyapatiteOsteogenic activitySolubilitybone tissue engineeringhydrogel formulationosteogenic cell responsebiomaterials for bone repair

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Area of Science:

  • Biomaterials engineering in regenerative medicine
  • Tissue engineering within orthopedic research

Background:

Bone tissue regeneration remains a significant challenge in orthopedic and reconstructive surgery. Traditional approaches often fail to provide the structural and biochemical support needed for effective healing. While ceramic/polymer composites have shown promise due to their biocompatibility and injectability, their performance can vary with the ceramic content. Prior research has established that nanohydroxyapatite (nanoHA) can influence hydrogel properties, but the precise impact of varying nanoHA concentrations on bone regeneration remains unclear. This gap motivated the current investigation into how nanoHA content affects alginate-based hydrogels. No prior work had resolved the optimal nanoHA concentration for bone regeneration. Understanding this relationship is crucial for developing reliable biomaterials. The study aimed to clarify how nanoHA content influences both the physical and biological behavior of the composite. This uncertainty drove the need for in vitro and ex vivo assessments. The goal was to identify the best formulation for bone tissue regeneration. The research focused on determining the most effective nanoHA concentration.

Purpose Of The Study:

The study aimed to determine the optimal nanohydroxyapatite (nanoHA) concentration in alginate-based hydrogels for bone regeneration. Researchers sought to evaluate how varying nanoHA content affects the composite system's properties and biological response. The specific problem addressed was the lack of clarity on the ideal nanoHA concentration for maximizing bone tissue regeneration. The motivation stemmed from the need to improve the performance of injectable biomaterials. The study focused on the relationship between nanoHA content and hydrogel behavior. The goal was to identify the best formulation for clinical applications. The research tested nanoHA concentrations ranging from 30 to 70 wt%. The findings could guide future biomaterial design for bone repair.

Main Methods:

The study evaluated alginate-nanohydroxyapatite hydrogels with nanoHA content ranging from 30 to 70 wt%. Researchers assessed the composites' physicochemical properties, including water-swelling rate and stability at extreme pH. They also analyzed apatite formation and calcium ion release. In vitro experiments involved human osteoblastic cells to assess cytocompatibility. Ex vivo testing used embryonic chick segmental bone defects to evaluate functional performance. The alginate network's morphological features were examined for changes. The study compared the biological response across different nanoHA concentrations. The data combined physicochemical and biological assessments to determine the optimal formulation.

Main Results:

Hydrogels with 30 wt% nanoHA showed the highest osteoblastic cell proliferation and osteogenic transcription factor expression. At 50 and 70 wt%, cell response decreased significantly. The 30 wt% composition also enhanced collagenous deposition and matrix mineralization in ex vivo models. Higher nanoHA concentrations reduced trabecular bone formation. Water-swelling rate and pH stability varied with nanoHA content. Calcium release was dose-dependent, with lower concentrations showing more controlled release. The 30 wt% formulation outperformed others in both in vitro and ex vivo assessments. These results suggest that nanoHA concentration critically affects the composite's performance.

Conclusions:

The study found that nanoHA concentration significantly influences the physicochemical and biological properties of alginate-based hydrogels. The 30 wt% nanoHA formulation showed the best performance in promoting bone regeneration. Higher concentrations reduced osteogenic cell activity and tissue response. The findings suggest that optimizing nanoHA content is essential for effective bone repair. The results support the need for precise formulation control in biomaterial design. The study highlights the importance of balancing nanoHA content for optimal outcomes. The authors propose that lower nanoHA concentrations may be more suitable for clinical applications. These conclusions align with the observed in vitro and ex vivo data.

The study found that 30 wt% nanoHA in alginate hydrogels enhanced bone regeneration the most.

NanoHA content influenced calcium release, with lower concentrations showing more controlled release.

Higher nanoHA concentrations reduced cell proliferation and bone formation in both in vitro and ex vivo models.

Ex vivo testing confirmed in vitro findings, showing enhanced collagen and bone matrix formation with 30 wt% nanoHA.

Yes, 50 and 70 wt% nanoHA reduced osteogenic cell response and tissue regeneration.

The results suggest that optimizing nanoHA content is crucial for maximizing bone tissue regeneration.