Literature DB >> 22406433

Toward engineering functional organ modules by additive manufacturing.

Francoise Marga1, Karoly Jakab, Chirag Khatiwala, Benjamin Shepherd, Scott Dorfman, Bradley Hubbard, Stephen Colbert, Forgacs Gabor.   

Abstract

Tissue engineering is emerging as a possible alternative to methods aimed at alleviating the growing demand for replacement tissues and organs. A major pillar of most tissue engineering approaches is the scaffold, a biocompatible network of synthetic or natural polymers, which serves as an extracellular matrix mimic for cells. When the scaffold is seeded with cells it is supposed to provide the appropriate biomechanical and biochemical conditions for cell proliferation and eventual tissue formation. Numerous approaches have been used to fabricate scaffolds with ever-growing complexity. Recently, novel approaches have been pursued that do not rely on artificial scaffolds. The most promising ones utilize matrices of decellularized organs or methods based on multicellular self-assembly, such as sheet-based and bioprinting-based technologies. We briefly overview some of the scaffold-free approaches and detail one that employs biological self-assembly and bioprinting. We describe the technology and its specific applications to engineer vascular and nerve grafts.

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Mesh:

Year:  2012        PMID: 22406433     DOI: 10.1088/1758-5082/4/2/022001

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


  51 in total

1.  A 3D bioprinting system to produce human-scale tissue constructs with structural integrity.

Authors:  Hyun-Wook Kang; Sang Jin Lee; In Kap Ko; Carlos Kengla; James J Yoo; Anthony Atala
Journal:  Nat Biotechnol       Date:  2016-02-15       Impact factor: 54.908

Review 2.  The pharmacology of regenerative medicine.

Authors:  George J Christ; Justin M Saul; Mark E Furth; Karl-Erik Andersson
Journal:  Pharmacol Rev       Date:  2013-07-01       Impact factor: 25.468

Review 3.  Advances in the design of macroporous polymer scaffolds for potential applications in dentistry.

Authors:  Sidi A Bencherif; Thomas M Braschler; Philippe Renaud
Journal:  J Periodontal Implant Sci       Date:  2013-12-31       Impact factor: 2.614

4.  A Method for High-Throughput Robotic Assembly of Three-Dimensional Vascular Tissue.

Authors:  Christopher J Nycz; Hannah A Strobel; Kathy Suqui; Jonian Grosha; Gregory S Fischer; Marsha W Rolle
Journal:  Tissue Eng Part A       Date:  2019-08-09       Impact factor: 3.845

Review 5.  Three-dimensional printing of nanomaterial scaffolds for complex tissue regeneration.

Authors:  Christopher M O'Brien; Benjamin Holmes; Scott Faucett; Lijie Grace Zhang
Journal:  Tissue Eng Part B Rev       Date:  2014-09-16       Impact factor: 6.389

6.  3D bioprinting of tissues and organs.

Authors:  Sean V Murphy; Anthony Atala
Journal:  Nat Biotechnol       Date:  2014-08       Impact factor: 54.908

7.  Polymers for 3D Printing and Customized Additive Manufacturing.

Authors:  Samuel Clark Ligon; Robert Liska; Jürgen Stampfl; Matthias Gurr; Rolf Mülhaupt
Journal:  Chem Rev       Date:  2017-07-30       Impact factor: 60.622

8.  Cell Death Persists in Rapid Extrusion of Lysis-Resistant Coated Cardiac Myoblasts.

Authors:  Calvin F Cahall; Aman Preet Kaur; Kara A Davis; Jonathan T Pham; Hainsworth Y Shin; Brad J Berron
Journal:  Bioprinting       Date:  2019-12-25

9.  Silk based bioinks for soft tissue reconstruction using 3-dimensional (3D) printing with in vitro and in vivo assessments.

Authors:  María J Rodriguez; Joseph Brown; Jodie Giordano; Samuel J Lin; Fiorenzo G Omenetto; David L Kaplan
Journal:  Biomaterials       Date:  2016-11-27       Impact factor: 12.479

10.  Biofabrication and testing of a fully cellular nerve graft.

Authors:  Christopher M Owens; Francoise Marga; Gabor Forgacs; Cheryl M Heesch
Journal:  Biofabrication       Date:  2013-11-06       Impact factor: 9.954

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