4.7 Article

Nanoclay-reinforced HA/alginate scaffolds as cell carriers and SDF-1 delivery-platforms for bone tissue engineering

Journal

INTERNATIONAL JOURNAL OF PHARMACEUTICS
Volume 623, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.ijpharm.2022.121895

Keywords

3D Scaffold; Bone; Biomaterials; Nanoclay; Tissue Engineering; SDF-1

Funding

  1. Spanish Ministry of Economy [PID2019-106094RB-I00/AEI/10.13039/501100011033]
  2. Spanish Ministry of Economy, Industry, and Competitiveness [PID2019-106094RB-I00/AEI/10.13039/501100011033]
  3. ICTS NANBIOSIS (Drug Formulation Unit) at the University of the Basque Country [PID2019-106094RB-I00/AEI/10.13039/501100011033]
  4. Basque Country Government (Grupos Consolidados) [U10]
  5. Basque Government [IT907-16, PRE_2021_2_0021]
  6. F.P.U. fellowship from the Ministry of Universidades
  7. Danish Council for Independent Research (Technology and Production Sciences ) [PRE_2021_2_0023]
  8. VIDI research programme [8105-00003B]
  9. Netherlands Organisation for Scientific Research (NWO)
  10. European Union [R0004387]
  11. [951747]

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Bone tissue engineering has successfully created biologically active hydrogel scaffolds through the combination of different materials, which have shown potential for osteogenesis and angiogenesis in in vitro and in vivo experiments. Despite the need to overcome certain obstacles, these bioengineered structures have demonstrated potential as future bone regeneration treatments.
Bone tissue engineering has come on the scene to overcome the difficulties of the current treatment strategies. By combining biomaterials, active agents and growth factors, cells and nanomaterials, tissue engineering makes it possible to create new structures that enhance bone regeneration. Herein, hyaluronic acid and alginate were used to create biologically active hydrogels, and montmorillonite nanoclay was used to reinforce and stabilize them. The developed scaffolds were found to be biocompatible and osteogenic with mMSCs in vitro, especially those reinforced with the nanoclay, and allowed mineralization even in the absence of differentiation media. Moreover, an in vivo investigation was performed to establish the potential of the hydrogels to mend bone and act as cell-carriers and delivery platforms for SDF-1. Scaffolds embedded with SDF-1 exhibited the highest percentages of bone regeneration as well as of angiogenesis, which confirms the suitability of the scaffolds for bone. Although there are a number of obstacles to triumph over, these bioengineered structures showed potential as future bone regeneration treatments.

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