Literature DB >> 27860335

Development of a synthetic tissue engineered three-dimensional printed bioceramic-based bone graft with homogenously distributed osteoblasts and mineralizing bone matrix in vitro.

Doaa Adel-Khattab1,2, Francesca Giacomini1, Renate Gildenhaar3, Georg Berger3, Cynthia Gomes3, Ulf Linow3, Martin Hardt4, Barbara Peleska5, Jens Günster3, Michael Stiller1, Alireza Houshmand1, Khaled Abdel Ghaffar2, Ahmed Gamal2, Mohamed El-Mofty2, Christine Knabe1.   

Abstract

Over the last decade there have been increasing efforts to develop three-dimensional (3D) scaffolds for bone tissue engineering from bioactive ceramics with 3D printing emerging as a promising technology. The overall objective of the present study was to generate a tissue engineered synthetic bone graft with homogenously distributed osteoblasts and mineralizing bone matrix in vitro, thereby mimicking the advantageous properties of autogenous bone grafts and facilitating usage for reconstructing segmental discontinuity defects in vivo. To this end, 3D scaffolds were developed from a silica-containing calcium alkali orthophosphate, using, first, a replica technique - the Schwartzwalder-Somers method - and, second, 3D printing, (i.e. rapid prototyping). The mechanical and physical scaffold properties and their potential to facilitate homogenous colonization by osteogenic cells and extracellular bone matrix formation throughout the porous scaffold architecture were examined. Osteoblastic cells were dynamically cultured for 7 days on both scaffold types with two different concentrations of 1.5 and 3 × 109 cells/l. The amount of cells and bone matrix formed and osteogenic marker expression were evaluated using hard tissue histology, immunohistochemical and histomorphometric analysis. 3D-printed scaffolds (RPS) exhibited more micropores, greater compressive strength and silica release. RPS seeded with 3 × 109 cells/l displayed greatest cell and extracellular matrix formation, mineralization and osteocalcin expression. In conclusion, RPS displayed superior mechanical and biological properties and facilitated generating a tissue engineered synthetic bone graft in vitro, which mimics the advantageous properties of autogenous bone grafts, by containing homogenously distributed terminally differentiated osteoblasts and mineralizing bone matrix and therefore is suitable for subsequent in vivo implantation for regenerating segmental discontinuity bone defects.
Copyright © 2016 John Wiley & Sons, Ltd. Copyright © 2016 John Wiley & Sons, Ltd.

Entities:  

Keywords:  bone tissue engineering; calcium alkali orthophosphate; extracellular matrix mineralization; mandible; osteoblast differentiation; rapid prototyping; scaffold; segmental discontinuity bone defects

Mesh:

Substances:

Year:  2017        PMID: 27860335     DOI: 10.1002/term.2362

Source DB:  PubMed          Journal:  J Tissue Eng Regen Med        ISSN: 1932-6254            Impact factor:   3.963


  4 in total

1.  Fabrication and Histological Evaluation of Porous Carbonate Apatite Block from Gypsum Block Containing Spherical Phenol Resin as a Porogen.

Authors:  Yuta Sakemi; Koichiro Hayashi; Akira Tsuchiya; Yasuharu Nakashima; Kunio Ishikawa
Journal:  Materials (Basel)       Date:  2019-12-02       Impact factor: 3.623

Review 2.  Role of three-dimensional printing in periodontal regeneration and repair: Literature review.

Authors:  Meisha Gul; Aysha Arif; Robia Ghafoor
Journal:  J Indian Soc Periodontol       Date:  2019 Nov-Dec

Review 3.  Tissue engineering applications in otolaryngology-The state of translation.

Authors:  Weston L Niermeyer; Cole Rodman; Michael M Li; Tendy Chiang
Journal:  Laryngoscope Investig Otolaryngol       Date:  2020-06-19

Review 4.  3D Printed and Bioprinted Membranes and Scaffolds for the Periodontal Tissue Regeneration: A Narrative Review.

Authors:  Irina-Georgeta Sufaru; Georgiana Macovei; Simona Stoleriu; Maria-Alexandra Martu; Ionut Luchian; Diana-Cristala Kappenberg-Nitescu; Sorina Mihaela Solomon
Journal:  Membranes (Basel)       Date:  2022-09-19
  4 in total

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