Literature DB >> 30980937

The bone regeneration capacity of 3D-printed templates in calvarial defect models: A systematic review and meta-analysis.

Mohamad Nageeb Hassan1, Mohammed Ahmed Yassin2, Salwa Suliman3, Stein Atle Lie4, Harald Gjengedal5, Kamal Mustafa6.   

Abstract

3D-printed templates are being used for bone tissue regeneration (BTR) as temporary guides. In the current review, we analyze the factors considered in producing potentially bioresorbable/degradable 3D-printed templates and their influence on BTR in calvarial bone defect (CBD) animal models. In addition, a meta-analysis was done to compare the achieved BTR for each type of template material (polymer, ceramic or composites). Database collection was completed by January 2018, and the inclusion criteria were all titles and keywords combining 3D printing and BTR in CBD models. Clinical trials and poorly-documented in vivo studies were excluded from this study. A total of 45 relevant studies were finally included and reviewed, and an additional check list was followed before inclusion in the meta-analysis, where material type, porosity %, and the regenerated bone area were collected and analyzed statistically. Overall, the capacity of the printed templates to support BTR was found to depend in large part on the amount of available space (porosity %) provided by the printed templates. Printed ceramic and composite templates showed the best BTR capacity, and the optimum printed template structure was found to have total porosity >50% with a pore diameter between 300 and 400 µm. Additional features and engineered macro-channels within the printed templates increased BTR capacity at long time points (12 weeks). Although the size of bone defects in rabbits was larger than in rats, BTR was greater in rabbits (almost double) at all time points and for all materials used. STATEMENT OF SIGNIFICANCE: In the present study, we reviewed the factors considered in producing degradable 3D-printed templates and their influence on bone tissue regeneration (BTR) in calvarial bone defects through the last 15 years. A meta-analysis was applied on the collected data to quantify and analyze BTR related to each type of template material. The concluded data states the importance of 3D-printed templates for BTR and indicates the ideal design required for an effective clinical translation. The evidence-based guidelines for the best BTR capacity endorse the use of printed composite and ceramic templates with total porosity >50%, pore diameter between 300 and 400 µm, and added engineered macro-channels within the printed templates.
Copyright © 2019 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  3D printing; Bone regeneration; Calvarial bone defect; Degradable template

Mesh:

Substances:

Year:  2019        PMID: 30980937     DOI: 10.1016/j.actbio.2019.04.017

Source DB:  PubMed          Journal:  Acta Biomater        ISSN: 1742-7061            Impact factor:   8.947


  11 in total

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Journal:  Front Bioeng Biotechnol       Date:  2022-06-08

2.  Scaffold-Free Spheroids with Two-Dimensional Heteronano-Layers (2DHNL) Enabling Stem Cell and Osteogenic Factor Codelivery for Bone Repair.

Authors:  Xifeng Liu; Linli Li; Bipin Gaihre; Sungjo Park; Yong Li; Andre Terzic; Benjamin D Elder; Lichun Lu
Journal:  ACS Nano       Date:  2022-01-24       Impact factor: 18.027

3.  Desktop-Stereolithography 3D Printing of a Polyporous Extracellular Matrix Bioink for Bone Defect Regeneration.

Authors:  Yunxiang Luo; Hao Pan; Jiuzhou Jiang; Chenchen Zhao; Jianfeng Zhang; Pengfei Chen; Xianfeng Lin; Shunwu Fan
Journal:  Front Bioeng Biotechnol       Date:  2020-11-06

4.  Evidence-based biomaterials research.

Authors:  Kai Zhang; Bin Ma; Kaiyan Hu; Bo Yuan; Xin Sun; Xu Song; Zhonglan Tang; Hai Lin; Xiangdong Zhu; Yufeng Zheng; Andrés J García; Antonios G Mikos; James M Anderson; Xingdong Zhang
Journal:  Bioact Mater       Date:  2022-04-25

5.  Bifunctional, Copper-Doped, Mesoporous Silica Nanosphere-Modified, Bioceramic Scaffolds for Bone Tumor Therapy.

Authors:  Hongshi Ma; Zhenjiang Ma; Qufei Chen; Wentao Li; Xiangfei Liu; Xiaojun Ma; Yuanqing Mao; Han Yang; Hui Ma; Jinwu Wang
Journal:  Front Chem       Date:  2020-12-09       Impact factor: 5.221

6.  Design of 3D Additively Manufactured Hybrid Structures for Cranioplasty.

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Journal:  Materials (Basel)       Date:  2021-01-02       Impact factor: 3.623

Review 7.  Biodegradable metals for bone fracture repair in animal models: a systematic review.

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Journal:  Regen Biomater       Date:  2020-12-03

8.  Bone regeneration in rat calvarial defects using dissociated or spheroid mesenchymal stromal cells in scaffold-hydrogel constructs.

Authors:  Siddharth Shanbhag; Salwa Suliman; Samih Mohamed-Ahmed; Carina Kampleitner; Mohamed Nageeb Hassan; Patrick Heimel; Toni Dobsak; Stefan Tangl; Anne Isine Bolstad; Kamal Mustafa
Journal:  Stem Cell Res Ther       Date:  2021-11-14       Impact factor: 6.832

9.  Ectopic Bone Tissue Engineering in Mice Using Human Gingiva or Bone Marrow-Derived Stromal/Progenitor Cells in Scaffold-Hydrogel Constructs.

Authors:  Siddharth Shanbhag; Carina Kampleitner; Samih Mohamed-Ahmed; Mohammed Ahmad Yassin; Harsh Dongre; Daniela Elena Costea; Stefan Tangl; Andreas Stavropoulos; Anne Isine Bolstad; Salwa Suliman; Kamal Mustafa
Journal:  Front Bioeng Biotechnol       Date:  2021-11-30

Review 10.  3D-Printed Hydroxyapatite and Tricalcium Phosphates-Based Scaffolds for Alveolar Bone Regeneration in Animal Models: A Scoping Review.

Authors:  Nurulhuda Mohd; Masfueh Razali; Mariyam Jameelah Ghazali; Noor Hayaty Abu Kasim
Journal:  Materials (Basel)       Date:  2022-04-02       Impact factor: 3.623

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