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Functional improvement of collagen-based bioscaffold to enhance periodontal-defect healing via combination with dietary antioxidant and COMP-angiopoietin 1

  • Govinda Bhattarai
  • , Young Mi Jeon
  • , Ki Choon Choi
  • , Sajeev Wagle
  • , Hyun Jaung Sim
  • , Jeong In Kim
  • , Sen Zhao
  • , Jong Ghee Kim
  • , Eui Sic Cho*
  • , Sung Ho Kook
  • , Jeong Chae Lee
  • *Corresponding author for this work
  • Jeonbuk National University
  • Rural Development Administration

Research output: Contribution to journalJournal articlepeer-review

Abstract

Scaffolds combined with bioactive agents can enhance bone regeneration at therapeutic sites. We explore whether combined supplementation with coumaric acid and recombinant human-cartilage oligomeric matrix protein-angiopoietin 1 (rhCOMP-Ang1) is an ideal approach for bone tissue engineering. We developed coumaric acid-conjugated absorbable collagen scaffold (CA-ACS) and investigated whether implanting CA-ACS in combination with rhCOMP-Ang1 facilitates ACS- or CA-ACS-mediated bone formation using a rat model of critically sized mandible defects. We examined the mechanisms by which coumaric acid and rhCOMP-Ang1 regulate behaviors of human periodontal ligament fibroblasts (hPLFs). The CA-ACS exhibits greater anti-degradation and mechanical strength properties than does ACS alone. Implanting CA-ACS loaded with rhCOMP-Ang1 greatly enhances bone regeneration at the defect via the activation of angiogenic, osteogenic, and anti-osteoclastic responses compared with other rat groups implanted with an ACS alone or CA-ACS. Treatment with both rhCOMP-Ang1 and coumaric acid increases proliferation, mineralization, and migration of cultured hPLFs via activation of the Ang1/Tie2 signaling axis at a greater rate than treatment with either of them alone. Collectively, this study demonstrates that CA-ACS impregnated with rhCOMP-Ang1 enhances bone regeneration at therapeutic sites, and this enhancement is associated with a synergistic interaction between rhCOMP-Ang1-mediated angiogenesis and coumaric acid–related antioxidant responses.

Original languageEnglish
Article number112673
JournalBiomaterials Advances
Volume135
DOIs
StatePublished - 2022.04

Keywords

  • Absorbable collagen scaffold
  • COMP-angiopoietin 1
  • Coumaric acid
  • Critical-sized bone defects
  • Therapeutic enhancement

Quacquarelli Symonds(QS) Subject Topics

  • Materials Science
  • Medicine
  • Engineering - Chemical
  • Biological Sciences

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