Literature DB >> 32263038

Biofabrication of reinforced 3D-scaffolds using two-component hydrogels.

Kristel W M Boere1, Maarten M Blokzijl, Jetze Visser, J Elder A Linssen, Jos Malda, Wim E Hennink, Tina Vermonden.   

Abstract

Progress in biofabrication technologies is mainly hampered by the limited number of suitable hydrogels that can act as bioinks. Here, we present a new bioink for 3D-printing, capable of forming large, highly defined constructs. Hydrogel formulations consisted of a thermoresponsive polymer mixed with a poly(ethylene glycol) (PEG) or a hyaluronic acid (HA) cross-linker with a total polymer concentration of 11.3 and 9.1 wt% respectively. These polymer solutions were partially cross-linked before plotting by a chemoselective reaction called oxo-ester mediated native chemical ligation, yielding printable formulations. Deposition on a heated plate of 37 °C resulted in the stabilization of the construct due to the thermosensitive nature of the hydrogel. Subsequently, further chemical cross-linking of the hydrogel precursors proceeded after extrusion to form mechanically stable hydrogels that exhibited a storage modulus of 9 kPa after 3 hours. Flow and elastic properties of the polymer solutions and hydrogels were analyzed under similar conditions to those used during the 3D-printing process. These experiments showed the ability to extrude the hydrogels, as well as their rapid recovery after applied shear forces. Hydrogels were printed in grid-like structures, hollow cones and a model representing a femoral condyle, with a porosity of 48 ± 2%. Furthermore, an N-hydroxysuccinimide functionalized thermoplastic poly-ε-caprolactone (PCL) derivative was successfully synthesized and 3D-printed. We demonstrated that covalent grafting of the developed hydrogel to the thermoplastic reinforced network resulted in improved mechanical properties and yielded high construct integrity. Reinforced constructs also containing hyaluronic acid showed high cell viability of chondrocytes, underlining their potential for further use in regenerative medicine applications.

Entities:  

Year:  2015        PMID: 32263038      PMCID: PMC7116180          DOI: 10.1039/c5tb01645b

Source DB:  PubMed          Journal:  J Mater Chem B        ISSN: 2050-750X            Impact factor:   6.331


  36 in total

Review 1.  Designing cell-compatible hydrogels for biomedical applications.

Authors:  Dror Seliktar
Journal:  Science       Date:  2012-06-01       Impact factor: 47.728

Review 2.  A review on stereolithography and its applications in biomedical engineering.

Authors:  Ferry P W Melchels; Jan Feijen; Dirk W Grijpma
Journal:  Biomaterials       Date:  2010-05-15       Impact factor: 12.479

3.  3D fiber-deposited scaffolds for tissue engineering: influence of pores geometry and architecture on dynamic mechanical properties.

Authors:  L Moroni; J R de Wijn; C A van Blitterswijk
Journal:  Biomaterials       Date:  2005-08-01       Impact factor: 12.479

Review 4.  Click hydrogels, microgels and nanogels: emerging platforms for drug delivery and tissue engineering.

Authors:  Yanjiao Jiang; Jing Chen; Chao Deng; Erik J Suuronen; Zhiyuan Zhong
Journal:  Biomaterials       Date:  2014-03-24       Impact factor: 12.479

5.  Photocrosslinkable hyaluronan-gelatin hydrogels for two-step bioprinting.

Authors:  Aleksander Skardal; Jianxing Zhang; Lindsi McCoard; Xiaoyu Xu; Siam Oottamasathien; Glenn D Prestwich
Journal:  Tissue Eng Part A       Date:  2010-08       Impact factor: 3.845

6.  In vivo biocompatibility and biodegradation of 3D-printed porous scaffolds based on a hydroxyl-functionalized poly(ε-caprolactone).

Authors:  Hajar Seyednejad; Debby Gawlitta; Raoul V Kuiper; Alain de Bruin; Cornelus F van Nostrum; Tina Vermonden; Wouter J A Dhert; Wim E Hennink
Journal:  Biomaterials       Date:  2012-03-20       Impact factor: 12.479

7.  Hydrogels Formed by Oxo-ester Mediated Native Chemical Ligation.

Authors:  Iossif Strehin; Dmitri Gourevitch; Yong Zhang; Ellen Heber-Katz; Phillip B Messersmith
Journal:  Biomater Sci       Date:  2013-06-01       Impact factor: 6.843

Review 8.  Hyaluronic acid based scaffolds for tissue engineering--a review.

Authors:  Maurice N Collins; Colin Birkinshaw
Journal:  Carbohydr Polym       Date:  2012-10-17       Impact factor: 9.381

Review 9.  Hydrogels as extracellular matrices for skeletal tissue engineering: state-of-the-art and novel application in organ printing.

Authors:  Natalja E Fedorovich; Jacqueline Alblas; Joost R de Wijn; Wim E Hennink; Ab J Verbout; Wouter J A Dhert
Journal:  Tissue Eng       Date:  2007-08

10.  Photocrosslinked hyaluronic acid hydrogels: natural, biodegradable tissue engineering scaffolds.

Authors:  Jennie Baier Leach; Kathryn A Bivens; Charles W Patrick; Christine E Schmidt
Journal:  Biotechnol Bioeng       Date:  2003-06-05       Impact factor: 4.530

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  8 in total

1.  Melt Electrospinning Writing of Poly-Hydroxymethylglycolide-co-ε-Caprolactone-Based Scaffolds for Cardiac Tissue Engineering.

Authors:  Miguel Castilho; Dries Feyen; María Flandes-Iparraguirre; Gernot Hochleitner; Jürgen Groll; Pieter A F Doevendans; Tina Vermonden; Keita Ito; Joost P G Sluijter; Jos Malda
Journal:  Adv Healthc Mater       Date:  2017-07-12       Impact factor: 9.933

Review 2.  Bioprinting: From Tissue and Organ Development to in Vitro Models.

Authors:  Carlos Mota; Sandra Camarero-Espinosa; Matthew B Baker; Paul Wieringa; Lorenzo Moroni
Journal:  Chem Rev       Date:  2020-05-14       Impact factor: 60.622

3.  Use of liquid lithography to form in vitro intestinal crypts with varying microcurvature surrounding the stem cell niche.

Authors:  R Logan Howard; Yuli Wang; Nancy L Allbritton
Journal:  J Micromech Microeng       Date:  2021-10-26       Impact factor: 1.881

4.  Simultaneous Micropatterning of Fibrous Meshes and Bioinks for the Fabrication of Living Tissue Constructs.

Authors:  Mylène de Ruijter; Alexandre Ribeiro; Inge Dokter; Miguel Castilho; Jos Malda
Journal:  Adv Healthc Mater       Date:  2018-06-17       Impact factor: 9.933

5.  Stem cell-laden hydrogel bioink for generation of high resolution and fidelity engineered tissues with complex geometries.

Authors:  Oju Jeon; Yu Bin Lee; Sang Jin Lee; Nazilya Guliyeva; Joanna Lee; Eben Alsberg
Journal:  Bioact Mater       Date:  2021-12-22

Review 6.  Recent advances in melt electro writing for tissue engineering for 3D printing of microporous scaffolds for tissue engineering.

Authors:  Sebastian Loewner; Sebastian Heene; Timo Baroth; Henrik Heymann; Fabian Cholewa; Holger Blume; Cornelia Blume
Journal:  Front Bioeng Biotechnol       Date:  2022-08-17

7.  Development of a thermosensitive HAMA-containing bio-ink for the fabrication of composite cartilage repair constructs.

Authors:  V H M Mouser; A Abbadessa; R Levato; W E Hennink; T Vermonden; D Gawlitta; J Malda
Journal:  Biofabrication       Date:  2017-03-23       Impact factor: 9.954

8.  Ex vivo model unravelling cell distribution effect in hydrogels for cartilage repair.

Authors:  Vivian H M Mouser; Noël M M Dautzenberg; Riccardo Levato; Mattie H P van Rijen; Wouter J A Dhert; Jos Malda; Debby Gawlitta
Journal:  ALTEX       Date:  2017-09-08       Impact factor: 6.043

  8 in total

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