Literature DB >> 33355523

Bone tissue engineering in the greater omentum with computer-aided design/computer-aided manufacturing scaffolds is enhanced by a periosteum transplant.

Hendrik Naujokat1, Klaas Loger1, Juliane Schulz1, Yahya Açil1, Jörg Wiltfang1.   

Abstract

Aim: This study aimed to evaluate two different vascularized bone flap scaffolds and the impact of two barrier membranes for the reconstruction of critical-size bone defects. Materials & methods: 3D-printed scaffolds of biodegradable calcium phosphate and bioinert titanium were loaded with rhBMP-2 bone marrow aspirate, wrapped by a collagen membrane or a periosteum transplant and implanted into the greater omentum of miniature pigs.
Results: Histological evaluation demonstrated significant bone formation within the first 8 weeks in both scaffolds. The periosteum transplant led to enhanced bone formation and a homogenous distribution in the scaffolds. The omentum tissue grew out a robust vascular supply.
Conclusion: Endocultivation using 3D-printed scaffolds in the greater omentum is a very promising approach in defect-specific bone tissue regeneration.

Entities:  

Keywords:  CAD/CAM scaffolds; bone morphogenetic protein; bone tissue engineering; endocultivation; greater omentum; periosteum transplant

Year:  2020        PMID: 33355523     DOI: 10.2217/rme-2020-0115

Source DB:  PubMed          Journal:  Regen Med        ISSN: 1746-0751            Impact factor:   3.806


  1 in total

1.  Periosteal Flaps Enhance Prefabricated Engineered Bone Reparative Potential.

Authors:  A G Abu-Shahba; T Wilkman; R Kornilov; M Adam; K M Salla; J Lindén; A K Lappalainen; R Björkstrand; R Seppänen-Kaijansinkko; B Mannerström
Journal:  J Dent Res       Date:  2021-09-11       Impact factor: 6.116

  1 in total

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