Literature DB >> 30802775

Indirect 3D bioprinting and characterization of alginate scaffolds for potential nerve tissue engineering applications.

Saman Naghieh1, M D Sarker2, Emily Abelseth3, Xiongbiao Chen4.   

Abstract

Low-concentration hydrogels have favorable properties for many cell functions in tissue engineering but are considerably limited from a scaffold fabrication point of view due to poor three-dimensional (3D) printability. Here, we developed an indirect-bioprinting process for alginate scaffolds and characterized the potential of these scaffolds for nerve tissue engineering applications. The indirect-bioprinting process involves (1) printing a sacrificial framework from gelatin, (2) impregnating the framework with low-concentration alginate, and (3) removing the gelatin framework by an incubation process, thus forming low-concentration alginate scaffolds. The scaffolds were characterized by compression testing, swelling, degradation, and morphological and biological assessment of incorporated or seeded Schwann cells. For comparison, varying concentrations of alginate scaffolds (from 0.5% to 3%) were fabricated and sterilized using either ultraviolet light or ethanol. Results indicated that scaffolds can be fabricated using the indirect-bioprinting process, wherein the scaffold properties are affected by the concentration of alginate and sterilization technique used. These factors provide effective means of regulating the properties of scaffolds fabricated using the indirect-bioprinting process. Cell-incorporated scaffolds demonstrated better cell viability than bulk gels. In addition, scaffolds showed better cell functionality when fabricated with a lower concentration of alginate compared to a higher concentration. The indirect-bioprinting process that we implemented could be extended to other types of low-concentration hydrogels to address the tradeoffs between printability and properties for favorable cell functions.
Copyright © 2019 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  3D bioprinting; Alginate; Cell viability; Indirect bioprinting; Mechanical properties; Nerve tissue engineering

Year:  2019        PMID: 30802775     DOI: 10.1016/j.jmbbm.2019.02.014

Source DB:  PubMed          Journal:  J Mech Behav Biomed Mater        ISSN: 1878-0180


  12 in total

Review 1.  Microorganism-derived biological macromolecules for tissue engineering.

Authors:  Naser Amini; Peiman Brouki Milan; Vahid Hosseinpour Sarmadi; Bahareh Derakhshanmehr; Ahmad Hivechi; Fateme Khodaei; Masoud Hamidi; Sara Ashraf; Ghazaleh Larijani; Alireza Rezapour
Journal:  Front Med       Date:  2022-06-10       Impact factor: 9.927

Review 2.  3D Bioprinting of Neural Tissues.

Authors:  Melissa Cadena; Liqun Ning; Alexia King; Boeun Hwang; Linqi Jin; Vahid Serpooshan; Steven A Sloan
Journal:  Adv Healthc Mater       Date:  2020-11-16       Impact factor: 11.092

Review 3.  Trends in 3D Printing Processes for Biomedical Field: Opportunities and Challenges.

Authors:  Alina Ghilan; Aurica P Chiriac; Loredana E Nita; Alina G Rusu; Iordana Neamtu; Vlad Mihai Chiriac
Journal:  J Polym Environ       Date:  2020-03-31       Impact factor: 3.667

Review 4.  3D Printing and Bioprinting Nerve Conduits for Neural Tissue Engineering.

Authors:  Xiaoling Yu; Tian Zhang; Yuan Li
Journal:  Polymers (Basel)       Date:  2020-07-23       Impact factor: 4.329

Review 5.  Milestones and current achievements in development of multifunctional bioscaffolds for medical application.

Authors:  Jagoda Litowczenko; Marta J Woźniak-Budych; Katarzyna Staszak; Karolina Wieszczycka; Stefan Jurga; Bartosz Tylkowski
Journal:  Bioact Mater       Date:  2021-01-28

Review 6.  3D Bioprinting of Functional Skin Substitutes: From Current Achievements to Future Goals.

Authors:  Paula Gabriela Manita; Itxaso Garcia-Orue; Edorta Santos-Vizcaino; Rosa Maria Hernandez; Manoli Igartua
Journal:  Pharmaceuticals (Basel)       Date:  2021-04-14

Review 7.  Layer-By-Layer: The Case for 3D Bioprinting Neurons to Create Patient-Specific Epilepsy Models.

Authors:  Natasha Antill-O'Brien; Justin Bourke; Cathal D O'Connell
Journal:  Materials (Basel)       Date:  2019-10-01       Impact factor: 3.623

8.  3D printing of silk fibroin-based hybrid scaffold treated with platelet rich plasma for bone tissue engineering.

Authors:  Liang Wei; Shaohua Wu; Mitchell Kuss; Xiping Jiang; Runjun Sun; Patrick Reid; Xiaohong Qin; Bin Duan
Journal:  Bioact Mater       Date:  2019-09-25

9.  Effect on Rheological Properties and 3D Printability of Biphasic Calcium Phosphate Microporous Particles in Hydrocolloid-Based Hydrogels.

Authors:  Helena Herrada-Manchón; David Rodríguez-González; Manuel Alejandro Fernández; Nathan William Kucko; Florence Barrère-de Groot; Enrique Aguilar
Journal:  Gels       Date:  2022-01-02

10.  A Study of the Printability of Alginate-Based Bioinks by 3D Bioprinting for Articular Cartilage Tissue Engineering.

Authors:  Izar Gorroñogoitia; Uzuri Urtaza; Ana Zubiarrain-Laserna; Ana Alonso-Varona; Ane Miren Zaldua
Journal:  Polymers (Basel)       Date:  2022-01-17       Impact factor: 4.329

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