Literature DB >> 34507304

A biofabrication method to align cells within bioprinted photocrosslinkable and cell-degradable hydrogel constructs via embedded fibers.

Margaret E Prendergast1, Matthew D Davidson1, Jason A Burdick1.   

Abstract

The extracellular matrix (ECM) is composed of biochemical and biophysical cues that control cell behaviors and bulk mechanical properties. For example, anisotropy of the ECM and cell alignment are essential in the directional properties of tissues such as myocardium, tendon, and the knee meniscus. Technologies are needed to introduce anisotropic behavior into biomaterial constructs that can be used for the engineering of tissues as models and towards translational therapies. To address this, we developed an approach to align hydrogel fibers within cell-degradable bioink filaments with extrusion printing, where shear stresses during printing align fibers and photocrosslinking stabilizes the fiber orientation. Suspensions of hydrogel fibers were produced through the mechanical fragmentation of electrospun scaffolds of norbornene-modified hyaluronic acid, which were then encapsulated with meniscal fibrochondrocytes, mesenchymal stromal cells, or cardiac fibroblasts within gelatin-methacrylamide bioinks during extrusion printing into agarose suspension baths. Bioprinting parameters such as the needle diameter and the bioink flow rate influenced shear profiles, whereas the suspension bath properties and needle translation speed influenced filament diameters and uniformity. When optimized, filaments were formed with high levels of fiber alignment, which resulted in directional cell spreading during culture over one week. Controls that included bioprinted filaments without fibers or non-printed hydrogels of the same compositions either with or without fibers resulted in random cell spreading during culture. Further, constructs were printed with variable fiber and resulting cell alignment by varying print direction or using multi-material printing with and without fibers. This biofabrication technology advances our ability to fabricate constructs containing aligned cells towards tissue repair and the development of physiological tissue models.
© 2021 IOP Publishing Ltd.

Entities:  

Keywords:  alignment; anisotropy; bioprinting; fibers; hydrogel

Mesh:

Substances:

Year:  2021        PMID: 34507304      PMCID: PMC8603602          DOI: 10.1088/1758-5090/ac25cc

Source DB:  PubMed          Journal:  Biofabrication        ISSN: 1758-5082            Impact factor:   11.061


  55 in total

1.  Improving viability of stem cells during syringe needle flow through the design of hydrogel cell carriers.

Authors:  Brian A Aguado; Widya Mulyasasmita; James Su; Kyle J Lampe; Sarah C Heilshorn
Journal:  Tissue Eng Part A       Date:  2011-12-20       Impact factor: 3.845

Review 2.  Engineering cell alignment in vitro.

Authors:  Yuhui Li; Guoyou Huang; Xiaohui Zhang; Lin Wang; Yanan Du; Tian Jian Lu; Feng Xu
Journal:  Biotechnol Adv       Date:  2013-11-22       Impact factor: 14.227

3.  Thermally-controlled extrusion-based bioprinting of collagen.

Authors:  Kazim K Moncal; Veli Ozbolat; Pallab Datta; Dong N Heo; Ibrahim T Ozbolat
Journal:  J Mater Sci Mater Med       Date:  2019-04-30       Impact factor: 3.896

4.  Engineering muscle cell alignment through 3D bioprinting.

Authors:  Pamela Mozetic; Sara Maria Giannitelli; Manuele Gori; Marcella Trombetta; Alberto Rainer
Journal:  J Biomed Mater Res A       Date:  2017-06-15       Impact factor: 4.396

5.  Composite Biomaterials as Long-Lasting Scaffolds for 3D Bioprinting of Highly Aligned Muscle Tissue.

Authors:  Andrea García-Lizarribar; Xiomara Fernández-Garibay; Ferran Velasco-Mallorquí; Albert G Castaño; Josep Samitier; Javier Ramon-Azcon
Journal:  Macromol Biosci       Date:  2018-08-29       Impact factor: 4.979

6.  Synthesis and orthogonal photopatterning of hyaluronic acid hydrogels with thiol-norbornene chemistry.

Authors:  William M Gramlich; Iris L Kim; Jason A Burdick
Journal:  Biomaterials       Date:  2013-09-20       Impact factor: 12.479

7.  Suspended Manufacture of Biological Structures.

Authors:  Samuel R Moxon; Megan E Cooke; Sophie C Cox; Martyn Snow; Lee Jeys; Simon W Jones; Alan M Smith; Liam M Grover
Journal:  Adv Mater       Date:  2017-02-01       Impact factor: 30.849

8.  Void-free 3D Bioprinting for In-situ Endothelialization and Microfluidic Perfusion.

Authors:  Liliang Ouyang; James P K Armstrong; Qu Chen; Yiyang Lin; Molly M Stevens
Journal:  Adv Funct Mater       Date:  2019-11-11       Impact factor: 18.808

9.  3D bioprinting via an in situ crosslinking technique towards engineering cartilage tissue.

Authors:  Jonathan H Galarraga; Mi Y Kwon; Jason A Burdick
Journal:  Sci Rep       Date:  2019-12-27       Impact factor: 4.379

10.  Complexation-induced resolution enhancement of 3D-printed hydrogel constructs.

Authors:  Jiaxing Gong; Carl C L Schuurmans; Anne Metje van Genderen; Xia Cao; Wanlu Li; Feng Cheng; Jacqueline Jialu He; Arturo López; Valentin Huerta; Jennifer Manríquez; Ruiquan Li; Hongbin Li; Clément Delavaux; Shikha Sebastian; Pamela E Capendale; Huiming Wang; Jingwei Xie; Mengfei Yu; Rosalinde Masereeuw; Tina Vermonden; Yu Shrike Zhang
Journal:  Nat Commun       Date:  2020-03-09       Impact factor: 14.919

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  2 in total

Review 1.  Functional biomaterials for tendon/ligament repair and regeneration.

Authors:  Yunkai Tang; Zhen Wang; Lei Xiang; Zhenyu Zhao; Wenguo Cui
Journal:  Regen Biomater       Date:  2022-09-05

Review 2.  Natural biopolymer scaffold for meniscus tissue engineering.

Authors:  Yachen Peng; Meng Lu; Zhongsheng Zhou; Chenyu Wang; Enbo Liu; Yanbo Zhang; Tong Liu; Jianlin Zuo
Journal:  Front Bioeng Biotechnol       Date:  2022-09-30
  2 in total

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