Literature DB >> 29432987

3D printed microchannel networks to direct vascularisation during endochondral bone repair.

Andrew C Daly1, Pierluca Pitacco2, Jessica Nulty2, Gráinne M Cunniffe2, Daniel J Kelly3.   

Abstract

Bone tissue engineering strategies that recapitulate the developmental process of endochondral ossification offer a promising route to bone repair. Clinical translation of such endochondral tissue engineering strategies will require overcoming a number of challenges, including the engineering of large and often anatomically complex cartilage grafts, as well as the persistence of core regions of avascular cartilage following their implantation into large bone defects. Here 3D printing technology is utilized to develop a versatile and scalable approach to guide vascularisation during endochondral bone repair. First, a sacrificial pluronic ink was used to 3D print interconnected microchannel networks in a mesenchymal stem cell (MSC) laden gelatin-methacryloyl (GelMA) hydrogel. These constructs (with and without microchannels) were next chondrogenically primed in vitro and then implanted into critically sized femoral bone defects in rats. The solid and microchanneled cartilage templates enhanced bone repair compared to untreated controls, with the solid cartilage templates (without microchannels) supporting the highest levels of total bone formation. However, the inclusion of 3D printed microchannels was found to promote osteoclast/immune cell invasion, hydrogel degradation, and vascularisation following implantation. In addition, the endochondral bone tissue engineering strategy was found to support comparable levels of bone healing to BMP-2 delivery, whilst promoting lower levels of heterotopic bone formation, with the microchanneled templates supporting the lowest levels of heterotopic bone formation. Taken together, these results demonstrate that 3D printed hypertrophic cartilage grafts represent a promising approach for the repair of complex bone fractures, particularly for larger defects where vascularisation will be a key challenge.
Copyright © 2018 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  3D printing; Bioprinting; Bone repair; Endochondral; Vascularisation

Mesh:

Year:  2018        PMID: 29432987     DOI: 10.1016/j.biomaterials.2018.01.057

Source DB:  PubMed          Journal:  Biomaterials        ISSN: 0142-9612            Impact factor:   12.479


  36 in total

1.  Recapitulating bone development through engineered mesenchymal condensations and mechanical cues for tissue regeneration.

Authors:  Anna M McDermott; Samuel Herberg; Devon E Mason; Joseph M Collins; Hope B Pearson; James H Dawahare; Rui Tang; Amit N Patwa; Mark W Grinstaff; Daniel J Kelly; Eben Alsberg; Joel D Boerckel
Journal:  Sci Transl Med       Date:  2019-06-05       Impact factor: 17.956

2.  The effect of BMP-mimetic peptide tethering bioinks on the differentiation of dental pulp stem cells (DPSCs) in 3D bioprinted dental constructs.

Authors:  Ji Hoon Park; Gregory J Gillispie; Joshua S Copus; Weibo Zhang; Anthony Atala; James J Yoo; Pamela C Yelick; Sang Jin Lee
Journal:  Biofabrication       Date:  2020-07-01       Impact factor: 9.954

Review 3.  Bio-instructive materials for musculoskeletal regeneration.

Authors:  Tomas Gonzalez-Fernandez; Pawel Sikorski; J Kent Leach
Journal:  Acta Biomater       Date:  2019-07-11       Impact factor: 8.947

4.  Generation of Cost-Effective Paper-Based Tissue Models through Matrix-Assisted Sacrificial 3D Printing.

Authors:  Feng Cheng; Xia Cao; Hongbin Li; Tingting Liu; Xin Xie; Di Huang; Sushila Maharjan; Ho Pan Bei; Ameyalli Gómez; Jun Li; Haoqun Zhan; Haokai Shen; Sanwei Liu; Jinmei He; Yu Shrike Zhang
Journal:  Nano Lett       Date:  2019-05-07       Impact factor: 11.189

Review 5.  Myocardial infarction from a tissue engineering and regenerative medicine point of view: A comprehensive review on models and treatments.

Authors:  Gozde Basara; Gokhan Bahcecioglu; S Gulberk Ozcebe; Bradley W Ellis; George Ronan; Pinar Zorlutuna
Journal:  Biophys Rev (Melville)       Date:  2022-08-30

Review 6.  Gelatin Methacrylate (GelMA)-Based Hydrogels for Cell Transplantation: an Effective Strategy for Tissue Engineering.

Authors:  Shining Xiao; Tengfei Zhao; Jingkai Wang; Chenggui Wang; Jiangnan Du; Liwei Ying; Jiangtao Lin; Caihua Zhang; Wanglu Hu; Linlin Wang; Kan Xu
Journal:  Stem Cell Rev Rep       Date:  2019-10       Impact factor: 5.739

Review 7.  Tissue Engineering Through 3D Bioprinting to Recreate and Study Bone Disease.

Authors:  Adriene Pavek; Christopher Nartker; Maamoon Saleh; Matthew Kirkham; Sana Khajeh Pour; Ali Aghazadeh-Habashi; Jared J Barrott
Journal:  Biomedicines       Date:  2021-05-14

8.  Effect of Pore Size on Cell Behavior Using Melt Electrowritten Scaffolds.

Authors:  Yu Han; Meifei Lian; Qiang Wu; Zhiguang Qiao; Binbin Sun; Kerong Dai
Journal:  Front Bioeng Biotechnol       Date:  2021-07-02

Review 9.  Advanced Hydrogels as Exosome Delivery Systems for Osteogenic Differentiation of MSCs: Application in Bone Regeneration.

Authors:  Elham Pishavar; Hongrong Luo; Mahshid Naserifar; Maryam Hashemi; Shirin Toosi; Anthony Atala; Seeram Ramakrishna; Javad Behravan
Journal:  Int J Mol Sci       Date:  2021-06-08       Impact factor: 5.923

Review 10.  Crosslinking Strategies for 3D Bioprinting of Polymeric Hydrogels.

Authors:  Amin GhavamiNejad; Nureddin Ashammakhi; Xiao Yu Wu; Ali Khademhosseini
Journal:  Small       Date:  2020-07-30       Impact factor: 13.281

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