Literature DB >> 31081613

Multiscale Porosity in Compressible Cryogenically 3D Printed Gels for Bone Tissue Engineering.

Deepak Gupta, Atul Kumar Singh1, Ashwin Dravid2, Jayesh Bellare.   

Abstract

Three-dimensional (3D) printing technology has seen several refinements when introduced in the field of medical devices and regenerative medicines. However, it is still a challenge to 3D print gels for building complex constructs as per the desired shape and size. Here, we present a novel method to 3D print gelatin/carboxymethylchitin/hydroxyapatite composite gel constructs of a complex shape. The objective of this study is to fabricate a bioactive gel scaffold with a controlled hierarchical structure. The hierarchy ranges from 3D outer shape to macroporosity to microporosity and rough surface. The fabrication process developed here uses 3D printing in a local cryogenic atmosphere, followed by lyophilization and cross-linking. The gel instantly freezes after extrusion on the cold plate. The cooling action is not limited to the build plate, but the entire gel scaffold is cooled during the 3D printing process. This enables the construction of a stable self-sustaining large-sized 3D complex geometry. Further, lyophilization introduces bulk microporosity into the scaffolds. The outer shape and macroporosity were controlled with the 3D printer, whereas the microporous structure and desirable rough surface morphology were obtained through lyophilization. With cryogenic 3D printing, up to 90% microporosity could be incorporated into the scaffolds. The microporosity and pore size distribution were controlled by changing the cross-linker and total polymer concentration, which resulted in six times increase in surface open pores of size <20 μm on increasing the cross-linker concentration from 25 to 100 mg/mL. The introduction of bulk microporosity was shown to increase swelling by 1.8 times along with a significant increase in human umbilical cord mesenchymal stem cells and Saos-2 cell attachment (2×), proliferation (2.4×), Saos-2 cell alkaline phosphatase level (2×), and mineralization (3×). The scaffolds are spongy in nature in a wet state, thus making them potential implants for bone cavities with a small opening. The application of these cryogenically 3D printed compressible gel scaffolds with multiscale porosity extends to a small- as well as a large-sized open/partially open patient-specific bone defect.

Entities:  

Keywords:  bone tissue engineering; carboxymethylchitin; cryogenic 3D printing; gelatin; hydrogel; hydroxyapatite; multiscale porosity

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Year:  2019        PMID: 31081613     DOI: 10.1021/acsami.9b05460

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  4 in total

1.  3D Plotting using Camphene as Pore-regulating Agent to Produce Hierarchical Macro/micro-porous Poly(ε-caprolactone)/calcium phosphate Composite Scaffolds.

Authors:  Jae-Won Choi; Woo-Youl Maeng; Young-Hag Koh; Hyun Lee; Hyoun-Ee Kim
Journal:  Materials (Basel)       Date:  2019-08-21       Impact factor: 3.623

Review 2.  3D-Printed Objects for Multipurpose Applications.

Authors:  Nayem Hossain; Mohammad Asaduzzaman Chowdhury; Md Bengir Ahmed Shuvho; Mohammod Abul Kashem; Mohamed Kchaou
Journal:  J Mater Eng Perform       Date:  2021-03-26       Impact factor: 1.819

3.  3D Printing of Hierarchically Porous Lattice Structures Based on Åkermanite Glass Microspheres and Reactive Silicone Binder.

Authors:  Arish Dasan; Jozef Kraxner; Luca Grigolato; Gianpaolo Savio; Hamada Elsayed; Dušan Galusek; Enrico Bernardo
Journal:  J Funct Biomater       Date:  2022-01-13

4.  Microchannelled alkylated chitosan sponge to treat noncompressible hemorrhages and facilitate wound healing.

Authors:  Xinchen Du; Le Wu; Hongyu Yan; Zhuyan Jiang; Shilin Li; Wen Li; Yanli Bai; Hongjun Wang; Zhaojun Cheng; Deling Kong; Lianyong Wang; Meifeng Zhu
Journal:  Nat Commun       Date:  2021-08-05       Impact factor: 14.919

  4 in total

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