Literature DB >> 27257095

Granular gel support-enabled extrusion of three-dimensional alginate and cellular structures.

Yifei Jin1, Ashley Compaan, Tapomoy Bhattacharjee, Yong Huang.   

Abstract

Freeform fabrication of soft structures has been of great interest in recent years. In particular, it is viewed as a critical step toward the grand vision of organ printing--the on-demand design and fabrication of three-dimensional (3D) human organ constructs for implantation and regenerative medicine. The objective of this study is to develop a novel granular gel support material-enabled, two-step gelation-based 'printing-then-gelation' approach to fabricate 3D alginate structures using filament extrusion. Specifically, a granular Carbopol microgel bath holds the ungelled alginate structure being extruded, avoiding the instantaneous gelation of each printed layer as well as resultant surface tension-induced nozzle clogging. Since Carbopol microgels react with multivalent cations, which are needed for alginate crosslinking, gelatin is introduced as a sacrificial material to make an alginate and gelatin bioink for extrusion, which gels thermally (step-one gelation) to initially stabilize the printed structure for removal from Carbopol. Then gelatin is melted and diffused away while alginate is ionically crosslinked in a 37 °C calcium chloride bath (step-two gelation), resulting in an alginate structure. The proposed 'printing-then-gelation' approach works for alginate structure fabrication, and it is also applicable for the printing of cellular constructs and other similar homogeneous soft structures using a two-step or even multi-step approach. The main conclusions are: (1) 0.8% (w/v) Carbopol bath with a neutral pH value may be most suitable for soft structure printing; (2) it is most effective to use a 0.9% (w/v) NaCl solution to facilitate the removal of residual Carbopol; and (3) alginate structures fabricated using the proposed approach demonstrate better mechanical properties than those fabricated using the conventional 'gelation-while-printing' approach.

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Year:  2016        PMID: 27257095     DOI: 10.1088/1758-5090/8/2/025016

Source DB:  PubMed          Journal:  Biofabrication        ISSN: 1758-5082            Impact factor:   9.954


  13 in total

Review 1.  Freeform 3D printing of soft matters: recent advances in technology for biomedical engineering.

Authors:  Shengyang Chen; Wen See Tan; Muhammad Aidil Bin Juhari; Qian Shi; Xue Shirley Cheng; Wai Lee Chan; Juha Song
Journal:  Biomed Eng Lett       Date:  2020-09-29

Review 2.  Biomaterials for Bioprinting Microvasculature.

Authors:  Ryan W Barrs; Jia Jia; Sophia E Silver; Michael Yost; Ying Mei
Journal:  Chem Rev       Date:  2020-09-01       Impact factor: 60.622

3.  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

4.  Effects of living cells on the bioink printability during laser printing.

Authors:  Zhengyi Zhang; Changxue Xu; Ruitong Xiong; Douglas B Chrisey; Yong Huang
Journal:  Biomicrofluidics       Date:  2017-06-15       Impact factor: 2.800

5.  Bioprinting of stem cell expansion lattices.

Authors:  Christopher D Lindsay; Julien G Roth; Bauer L LeSavage; Sarah C Heilshorn
Journal:  Acta Biomater       Date:  2019-05-13       Impact factor: 8.947

6.  Computational Modeling and Experimental Characterization of Extrusion Printing into Suspension Baths.

Authors:  Margaret E Prendergast; Jason A Burdick
Journal:  Adv Healthc Mater       Date:  2021-11-20       Impact factor: 9.933

7.  3D freeform printing of silk fibroin.

Authors:  Maria J Rodriguez; Thomas A Dixon; Eliad Cohen; Wenwen Huang; Fiorenzo G Omenetto; David L Kaplan
Journal:  Acta Biomater       Date:  2018-03-15       Impact factor: 8.947

Review 8.  3D bioprinting of functional tissue models for personalized drug screening and in vitro disease modeling.

Authors:  Xuanyi Ma; Justin Liu; Wei Zhu; Min Tang; Natalie Lawrence; Claire Yu; Maling Gou; Shaochen Chen
Journal:  Adv Drug Deliv Rev       Date:  2018-06-21       Impact factor: 15.470

9.  3D Printing Low-Stiffness Silicone Within a Curable Support Matrix.

Authors:  Taylor E Greenwood; Serah E Hatch; Mark B Colton; Scott L Thomson
Journal:  Addit Manuf       Date:  2020-10-31

Review 10.  Biomechanical factors in three-dimensional tissue bioprinting.

Authors:  Liqun Ning; Carmen J Gil; Boeun Hwang; Andrea S Theus; Lilanni Perez; Martin L Tomov; Holly Bauser-Heaton; Vahid Serpooshan
Journal:  Appl Phys Rev       Date:  2020-12       Impact factor: 19.162

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