Literature DB >> 28342878

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

Laura G Bracaglia1, Brandon T Smith2, Emma Watson2, Navein Arumugasaamy3, Antonios G Mikos4, John P Fisher5.   

Abstract

To accurately mimic the native tissue environment, tissue engineered scaffolds often need to have a highly controlled and varied display of three-dimensional (3D) architecture and geometrical cues. Additive manufacturing in tissue engineering has made possible the development of complex scaffolds that mimic the native tissue architectures. As such, architectural details that were previously unattainable or irreproducible can now be incorporated in an ordered and organized approach, further advancing the structural and chemical cues delivered to cells interacting with the scaffold. This control over the environment has given engineers the ability to unlock cellular machinery that is highly dependent upon the intricate heterogeneous environment of native tissue. Recent research into the incorporation of physical and chemical gradients within scaffolds indicates that integrating these features improves the function of a tissue engineered construct. This review covers recent advances on techniques to incorporate gradients into polymer scaffolds through additive manufacturing and evaluate the success of these techniques. As covered here, to best replicate different tissue types, one must be cognizant of the vastly different types of manufacturing techniques available to create these gradient scaffolds. We review the various types of additive manufacturing techniques that can be leveraged to fabricate scaffolds with heterogeneous properties and discuss methods to successfully characterize them. STATEMENT OF SIGNIFICANCE: Additive manufacturing techniques have given tissue engineers the ability to precisely recapitulate the native architecture present within tissue. In addition, these techniques can be leveraged to create scaffolds with both physical and chemical gradients. This work offers insight into several techniques that can be used to generate graded scaffolds, depending on the desired gradient. Furthermore, it outlines methods to determine if the designed gradient was achieved. This review will help to condense the abundance of information that has been published on the creation and characterization of gradient scaffolds and to provide a single review discussing both methods for manufacturing gradient scaffolds and evaluating the establishment of a gradient.
Copyright © 2017. Published by Elsevier Ltd.

Entities:  

Keywords:  Additive manufacturing; Gradient scaffolds; Regenerative medicine; Scaffold fabrication; Tissue engineering

Mesh:

Substances:

Year:  2017        PMID: 28342878      PMCID: PMC5544968          DOI: 10.1016/j.actbio.2017.03.030

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


  76 in total

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Review 2.  Scaffolding in tissue engineering: general approaches and tissue-specific considerations.

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3.  The influence of the scaffold design on the distribution of adhering cells after perfusion cell seeding.

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Journal:  Biomaterials       Date:  2011-02-01       Impact factor: 12.479

4.  3D bioprinting of tissues and organs.

Authors:  Sean V Murphy; Anthony Atala
Journal:  Nat Biotechnol       Date:  2014-08       Impact factor: 54.908

5.  Evaluation of 3D printing and its potential impact on biotechnology and the chemical sciences.

Authors:  Bethany C Gross; Jayda L Erkal; Sarah Y Lockwood; Chengpeng Chen; Dana M Spence
Journal:  Anal Chem       Date:  2014-01-30       Impact factor: 6.986

6.  Rapid Continuous Multimaterial Extrusion Bioprinting.

Authors:  Wanjun Liu; Yu Shrike Zhang; Marcel A Heinrich; Fabio De Ferrari; Hae Lin Jang; Syeda Mahwish Bakht; Mario Moisés Alvarez; Jingzhou Yang; Yi-Chen Li; Grissel Trujillo-de Santiago; Amir K Miri; Kai Zhu; Parastoo Khoshakhlagh; Gyan Prakash; Hao Cheng; Xiaofei Guan; Zhe Zhong; Jie Ju; Geyunjian Harry Zhu; Xiangyu Jin; Su Ryon Shin; Mehmet Remzi Dokmeci; Ali Khademhosseini
Journal:  Adv Mater       Date:  2016-11-17       Impact factor: 30.849

Review 7.  Spatial regulation of controlled bioactive factor delivery for bone tissue engineering.

Authors:  Julia E Samorezov; Eben Alsberg
Journal:  Adv Drug Deliv Rev       Date:  2014-11-29       Impact factor: 15.470

8.  BIOMIMETIC GRADIENT HYDROGELS FOR TISSUE ENGINEERING.

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Journal:  Can J Chem Eng       Date:  2010-12       Impact factor: 2.007

9.  Inkjet printing of macromolecules on hydrogels to steer neural stem cell differentiation.

Authors:  Shirin Ilkhanizadeh; Ana I Teixeira; Ola Hermanson
Journal:  Biomaterials       Date:  2007-06-18       Impact factor: 12.479

10.  Rapid 3D printing of anatomically accurate and mechanically heterogeneous aortic valve hydrogel scaffolds.

Authors:  L A Hockaday; K H Kang; N W Colangelo; P Y C Cheung; B Duan; E Malone; J Wu; L N Girardi; L J Bonassar; H Lipson; C C Chu; J T Butcher
Journal:  Biofabrication       Date:  2012-08-23       Impact factor: 9.954

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  30 in total

Review 1.  Progress in three-dimensional printing with growth factors.

Authors:  Gerry L Koons; Antonios G Mikos
Journal:  J Control Release       Date:  2018-12-20       Impact factor: 9.776

Review 2.  New substrates for stem cell control.

Authors:  Sara Schmidt; Annamaria Lilienkampf; Mark Bradley
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2018-07-05       Impact factor: 6.237

3.  Multimaterial Segmented Fiber Printing for Gradient Tissue Engineering.

Authors:  Luis Diaz-Gomez; Brandon T Smith; Panayiotis D Kontoyiannis; Sean M Bittner; Anthony J Melchiorri; Antonios G Mikos
Journal:  Tissue Eng Part C Methods       Date:  2018-12-28       Impact factor: 3.056

4.  3D printed fiber optic faceplates by custom controlled fused deposition modeling.

Authors:  Ye Wang; John Gawedzinski; Michal E Pawlowski; Tomasz S Tkaczyk
Journal:  Opt Express       Date:  2018-06-11       Impact factor: 3.894

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

Authors:  Brandon T Smith; Sean M Bittner; Emma Watson; Mollie M Smoak; Luis Diaz-Gomez; Eric R Molina; Yu Seon Kim; Carrigan D Hudgins; Anthony J Melchiorri; David W Scott; K Jane Grande-Allen; James J Yoo; Anthony Atala; John P Fisher; Antonios G Mikos
Journal:  Tissue Eng Part A       Date:  2019-12-27       Impact factor: 3.845

6.  Extrusion and Microfluidic-based Bioprinting to Fabricate Biomimetic Tissues and Organs.

Authors:  Elham Davoodi; Einollah Sarikhani; Hossein Montazerian; Samad Ahadian; Marco Costantini; Wojciech Swieszkowski; Stephanie Willerth; Konrad Walus; Mohammad Mofidfar; Ehsan Toyserkani; Ali Khademhosseini; Nureddin Ashammakhi
Journal:  Adv Mater Technol       Date:  2020-05-26

Review 7.  Hierarchically designed bone scaffolds: From internal cues to external stimuli.

Authors:  Yingying Du; Jason L Guo; Jianglin Wang; Antonios G Mikos; Shengmin Zhang
Journal:  Biomaterials       Date:  2019-07-03       Impact factor: 12.479

8.  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

9.  Three-dimensional Printing of Multilayered Tissue Engineering Scaffolds.

Authors:  Sean M Bittner; Jason L Guo; Anthony Melchiorri; Antonios G Mikos
Journal:  Mater Today (Kidlington)       Date:  2018-03-20       Impact factor: 31.041

10.  Buoyancy-Driven Gradients for Biomaterial Fabrication and Tissue Engineering.

Authors:  Chunching Li; Liliang Ouyang; Isaac J Pence; Axel C Moore; Yiyang Lin; Charles W Winter; James P K Armstrong; Molly M Stevens
Journal:  Adv Mater       Date:  2019-03-07       Impact factor: 30.849

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