Literature DB >> 31696784

Multimaterial Dual Gradient Three-Dimensional Printing for Osteogenic Differentiation and Spatial Segregation.

Brandon T Smith1,2,3,4, Sean M Bittner1,2,3, Emma Watson1,2,3,4, Mollie M Smoak1,2,3, Luis Diaz-Gomez1,2,3, Eric R Molina1,2,3,4, Yu Seon Kim1,2,3, Carrigan D Hudgins1,2,3, Anthony J Melchiorri1,2,3, David W Scott5, K Jane Grande-Allen1, James J Yoo3,6, Anthony Atala3,6, John P Fisher3,7, Antonios G Mikos1,2,3.   

Abstract

In this study of three-dimensional (3D) printed composite β-tricalcium phosphate (β-TCP)-/hydroxyapatite/poly(ɛ-caprolactone)-based constructs, the effects of vertical compositional ceramic gradients and architectural porosity gradients on the osteogenic differentiation of rabbit bone marrow-derived mesenchymal stem cells (MSCs) were investigated. Specifically, three different concentrations of β-TCP (0, 10, and 20 wt%) and three different porosities (33% ± 4%, 50% ± 4%, and 65% ± 3%) were examined to elucidate the contributions of chemical and physical gradients on the biochemical behavior of MSCs and the mineralized matrix production within a 3D culture system. By delaminating the constructs at the gradient transition point, the spatial separation of cellular phenotypes could be specifically evaluated for each construct section. Results indicated that increased concentrations of β-TCP resulted in upregulation of osteogenic markers, including alkaline phosphatase activity and mineralized matrix development. Furthermore, MSCs located within regions of higher porosity displayed a more mature osteogenic phenotype compared to MSCs in lower porosity regions. These results demonstrate that 3D printing can be leveraged to create multiphasic gradient constructs to precisely direct the development and function of MSCs, leading to a phenotypic gradient. Impact Statement In this study, three-dimensional (3D) printed ceramic/polymeric constructs containing discrete vertical gradients of both composition and porosity were fabricated to precisely control the osteogenic differentiation of mesenchymal stem cells. By making simple alterations in construct architecture and composition, constructs containing heterogenous populations of cells were generated, where gradients in scaffold design led to corresponding gradients in cellular phenotype. The study demonstrates that 3D printed multiphasic composite constructs can be leveraged to create complex heterogeneous tissues and interfaces.

Entities:  

Keywords:  bone tissue engineering; construct; gradients; multiphasic scaffold; osteogenic differentiation

Mesh:

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Year:  2019        PMID: 31696784      PMCID: PMC7133451          DOI: 10.1089/ten.TEA.2019.0204

Source DB:  PubMed          Journal:  Tissue Eng Part A        ISSN: 1937-3341            Impact factor:   3.845


  82 in total

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2.  A calcium-induced signaling cascade leading to osteogenic differentiation of human bone marrow-derived mesenchymal stromal cells.

Authors:  Ana M C Barradas; Hugo A M Fernandes; Nathalie Groen; Yoke Chin Chai; Jan Schrooten; Jeroen van de Peppel; Johannes P T M van Leeuwen; Clemens A van Blitterswijk; Jan de Boer
Journal:  Biomaterials       Date:  2012-01-29       Impact factor: 12.479

Review 3.  3D printing for the design and fabrication of polymer-based gradient scaffolds.

Authors:  Laura G Bracaglia; Brandon T Smith; Emma Watson; Navein Arumugasaamy; Antonios G Mikos; John P Fisher
Journal:  Acta Biomater       Date:  2017-03-22       Impact factor: 8.947

4.  Extrusion-based 3D printing of poly(propylene fumarate) scaffolds with hydroxyapatite gradients.

Authors:  Jordan E Trachtenberg; Jesse K Placone; Brandon T Smith; John P Fisher; Antonios G Mikos
Journal:  J Biomater Sci Polym Ed       Date:  2017-02-05       Impact factor: 3.517

5.  Fabrication and mechanical characterization of 3D printed vertical uniform and gradient scaffolds for bone and osteochondral tissue engineering.

Authors:  Sean M Bittner; Brandon T Smith; Luis Diaz-Gomez; Carrigan D Hudgins; Anthony J Melchiorri; David W Scott; John P Fisher; Antonios G Mikos
Journal:  Acta Biomater       Date:  2019-03-21       Impact factor: 8.947

6.  Fabrication, mechanical and in vivo performance of polycaprolactone/tricalcium phosphate composite scaffolds.

Authors:  Stefan Lohfeld; Senan Cahill; Valerie Barron; Peter McHugh; Lutz Dürselen; Ludwika Kreja; Christine Bausewein; Anita Ignatius
Journal:  Acta Biomater       Date:  2012-05-29       Impact factor: 8.947

7.  Performance of degradable composite bone repair products made via three-dimensional fabrication techniques.

Authors:  Tithi Dutta Roy; Joshua L Simon; John L Ricci; E Dianne Rekow; Van P Thompson; J Russell Parsons
Journal:  J Biomed Mater Res A       Date:  2003-08-01       Impact factor: 4.396

8.  Viable osteogenic cells are obligatory for tissue-engineered ectopic bone formation in goats.

Authors:  M C Kruyt; J D de Bruijn; C E Wilson; F C Oner; C A van Blitterswijk; A J Verbout; W J A Dhert
Journal:  Tissue Eng       Date:  2003-04

9.  Evaluation of Gelatin Microparticles as Adherent-Substrates for Mesenchymal Stem Cells in a Hydrogel Composite.

Authors:  Steven Lu; Esther J Lee; Johnny Lam; Yasuhiko Tabata; Antonios G Mikos
Journal:  Ann Biomed Eng       Date:  2016-03-02       Impact factor: 3.934

10.  Effect of initial cell seeding density on early osteogenic signal expression of rat bone marrow stromal cells cultured on cross-linked poly(propylene fumarate) disks.

Authors:  Kyobum Kim; David Dean; Antonios G Mikos; John P Fisher
Journal:  Biomacromolecules       Date:  2009-05-26       Impact factor: 6.988

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  7 in total

1.  Three-Dimensional Extrusion Printing of Porous Scaffolds Using Storable Ceramic Inks.

Authors:  Luis Diaz-Gomez; Maryam E Elizondo; Panayiotis D Kontoyiannis; Gerry L Koons; Bruno Dacunha-Marinho; Xiang Zhang; Pulickel Ajayan; John A Jansen; Anthony J Melchiorri; Antonios G Mikos
Journal:  Tissue Eng Part C Methods       Date:  2020-05-13       Impact factor: 3.056

2.  Esophagus tissue engineering: from decellularization to in vivo recellularization in two sites.

Authors:  Sahar Eftekharzadeh; Aram Akbarzadeh; Nastaran Sabetkish; Minoo Rostami; Amir Hossein Zabolian; Javad Hashemi; Seyed Mohammad Tavangar; Abdol-Mohammad Kajbafzadeh
Journal:  Cell Tissue Bank       Date:  2021-08-19       Impact factor: 1.522

3.  Three-Dimensional Printing of Click Functionalized, Peptide Patterned Scaffolds for Osteochondral Tissue Engineering.

Authors:  Jason L Guo; Luis Diaz-Gomez; Virginia Y Xie; Sean M Bittner; Emily Y Jiang; Bonnie Wang; Antonios G Mikos
Journal:  Bioprinting       Date:  2021-03-26

4.  Swelling Behaviors of 3D Printed Hydrogel and Hydrogel-Microcarrier Composite Scaffolds.

Authors:  Sean M Bittner; Hannah A Pearce; Katie J Hogan; Mollie M Smoak; Jason L Guo; Anthony J Melchiorri; David W Scott; Antonios G Mikos
Journal:  Tissue Eng Part A       Date:  2021-02-24       Impact factor: 4.080

5.  The potential mechanism of Fructus Ligustri Lucidi promoting osteogenetic differentiation of bone marrow mesenchymal stem cells based on network pharmacology, molecular docking and experimental identification.

Authors:  Yuanhang Kong; Xinnan Ma; Xin Zhang; Leilei Wu; Dechun Chen; Bo Su; Daqian Liu; Xintao Wang
Journal:  Bioengineered       Date:  2022-04       Impact factor: 6.832

6.  Effect of 3D Printing Temperature on Bioactivity of Bone Morphogenetic Protein-2 Released from Polymeric Constructs.

Authors:  Gerry L Koons; Panayiotis D Kontoyiannis; Mani Diba; Letitia K Chim; David W Scott; Antonios G Mikos
Journal:  Ann Biomed Eng       Date:  2021-02-09       Impact factor: 4.219

7.  Cryogenic 3D Printing of ß-TCP/PLGA Composite Scaffolds Incorporated With BpV (Pic) for Treating Early Avascular Necrosis of Femoral Head.

Authors:  Feng Li; Zhifu Cao; Kai Li; Ke Huang; Chengliang Yang; Ye Li; Chuanchuan Zheng; Yulu Ye; Tingjie Zhou; Haoqiang Peng; Jia Liu; Chong Wang; Kegong Xie; Yujin Tang; Liqiang Wang
Journal:  Front Bioeng Biotechnol       Date:  2022-01-18
  7 in total

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