Literature DB >> 24334142

Three-dimensional printed trileaflet valve conduits using biological hydrogels and human valve interstitial cells.

B Duan1, E Kapetanovic2, L A Hockaday1, J T Butcher3.   

Abstract

Tissue engineering has great potential to provide a functional de novo living valve replacement, capable of integration with host tissue and growth. Among various valve conduit fabrication techniques, three-dimensional (3-D) bioprinting enables deposition of cells and hydrogels into 3-D constructs with anatomical geometry and heterogeneous mechanical properties. Successful translation of this approach, however, is constrained by the dearth of printable and biocompatible hydrogel materials. Furthermore, it is not known how human valve cells respond to these printed environments. In this study, 3-D printable formulations of hybrid hydrogels are developed, based on methacrylated hyaluronic acid (Me-HA) and methacrylated gelatin (Me-Gel), and used to bioprint heart valve conduits containing encapsulated human aortic valvular interstitial cells (HAVIC). Increasing Me-Gel concentration resulted in lower stiffness and higher viscosity, facilitated cell spreading, and better maintained HAVIC fibroblastic phenotype. Bioprinting accuracy was dependent upon the relative concentrations of Me-Gel and Me-HA, but when optimized enabled the fabrication of a trileaflet valve shape accurate to the original design. HAVIC encapsulated within bioprinted heart valves maintained high viability, and remodeled the initial matrix by depositing collagen and glyosaminoglycans. These findings represent the first rational design of bioprinted trileaflet valve hydrogels that regulate encapsulated human VIC behavior. The use of anatomically accurate living valve scaffolds through bioprinting may accelerate understanding of physiological valve cell interactions and progress towards de novo living valve replacements.
Copyright © 2013 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Extracellular matrix; Microenvironment; Rapid prototyping; Remodeling; Tissue engineering

Mesh:

Substances:

Year:  2013        PMID: 24334142      PMCID: PMC3976766          DOI: 10.1016/j.actbio.2013.12.005

Source DB:  PubMed          Journal:  Acta Biomater        ISSN: 1742-7061            Impact factor:   8.947


  76 in total

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Review 2.  Tissue growth and remodeling.

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Journal:  Annu Rev Biomed Eng       Date:  2004       Impact factor: 9.590

Review 3.  A review of trends and limitations in hydrogel-rapid prototyping for tissue engineering.

Authors:  Thomas Billiet; Mieke Vandenhaute; Jorg Schelfhout; Sandra Van Vlierberghe; Peter Dubruel
Journal:  Biomaterials       Date:  2012-06-07       Impact factor: 12.479

4.  Minimally-invasive implantation of living tissue engineered heart valves: a comprehensive approach from autologous vascular cells to stem cells.

Authors:  Dörthe Schmidt; Petra E Dijkman; Anita Driessen-Mol; Rene Stenger; Christine Mariani; Arja Puolakka; Marja Rissanen; Thorsten Deichmann; Bernhard Odermatt; Benedikt Weber; Maximilian Y Emmert; Gregor Zund; Frank P T Baaijens; Simon P Hoerstrup
Journal:  J Am Coll Cardiol       Date:  2010-08-03       Impact factor: 24.094

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.  Bioprinting vessel-like constructs using hyaluronan hydrogels crosslinked with tetrahedral polyethylene glycol tetracrylates.

Authors:  Aleksander Skardal; Jianxing Zhang; Glenn D Prestwich
Journal:  Biomaterials       Date:  2010-08       Impact factor: 12.479

7.  A collagen-glycosaminoglycan co-culture model for heart valve tissue engineering applications.

Authors:  Thomas C Flanagan; Brendan Wilkins; Alexander Black; Stefan Jockenhoevel; Terence J Smith; Abhay S Pandit
Journal:  Biomaterials       Date:  2005-11-28       Impact factor: 12.479

8.  Tissue-engineered cartilage constructs using composite hyaluronic acid/collagen I hydrogels and designed poly(propylene fumarate) scaffolds.

Authors:  Elly Liao; Michael Yaszemski; Paul Krebsbach; Scott Hollister
Journal:  Tissue Eng       Date:  2007-03

9.  Side-specific endothelial-dependent regulation of aortic valve calcification: interplay of hemodynamics and nitric oxide signaling.

Authors:  Jennifer Richards; Ismail El-Hamamsy; Si Chen; Zubair Sarang; Padmini Sarathchandra; Magdi H Yacoub; Adrian H Chester; Jonathan T Butcher
Journal:  Am J Pathol       Date:  2013-03-13       Impact factor: 4.307

10.  Rapid 3D printing of anatomically accurate and mechanically heterogeneous aortic valve hydrogel scaffolds.

Authors:  L A Hockaday; K H Kang; N W Colangelo; P Y C Cheung; B Duan; E Malone; J Wu; L N Girardi; L J Bonassar; H Lipson; C C Chu; J T Butcher
Journal:  Biofabrication       Date:  2012-08-23       Impact factor: 9.954

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  61 in total

Review 1.  Advances in the Fabrication of Scaffold and 3D Printing of Biomimetic Bone Graft.

Authors:  Bharti Bisht; Ashley Hope; Anubhab Mukherjee; Manash K Paul
Journal:  Ann Biomed Eng       Date:  2021-03-05       Impact factor: 3.934

2.  JetValve: Rapid manufacturing of biohybrid scaffolds for biomimetic heart valve replacement.

Authors:  Andrew K Capulli; Maximillian Y Emmert; Francesco S Pasqualini; Debora Kehl; Etem Caliskan; Johan U Lind; Sean P Sheehy; Sung Jin Park; Seungkuk Ahn; Benedikt Weber; Josue A Goss; Simon P Hoerstrup; Kevin Kit Parker
Journal:  Biomaterials       Date:  2017-04-18       Impact factor: 12.479

Review 3.  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

4.  Optimizing Photo-Encapsulation Viability of Heart Valve Cell Types in 3D Printable Composite Hydrogels.

Authors:  Laura Hockaday Kang; Patrick A Armstrong; Lauren Julia Lee; Bin Duan; Kevin Heeyong Kang; Jonathan Talbot Butcher
Journal:  Ann Biomed Eng       Date:  2016-04-22       Impact factor: 3.934

5.  Heart valve tissue-derived hydrogels: Preparation and characterization of mitral valve chordae, aortic valve, and mitral valve gels.

Authors:  Jinglei Wu; Bryn Brazile; Sara R McMahan; Jun Liao; Yi Hong
Journal:  J Biomed Mater Res B Appl Biomater       Date:  2018-11-12       Impact factor: 3.368

6.  Bioprinting 101: Design, Fabrication, and Evaluation of Cell-Laden 3D Bioprinted Scaffolds.

Authors:  Kaivalya A Deo; Kanwar Abhay Singh; Charles W Peak; Daniel L Alge; Akhilesh K Gaharwar
Journal:  Tissue Eng Part A       Date:  2020-03       Impact factor: 3.845

Review 7.  Naturally-Derived Biomaterials for Tissue Engineering Applications.

Authors:  Matthew Brovold; Joana I Almeida; Iris Pla-Palacín; Pilar Sainz-Arnal; Natalia Sánchez-Romero; Jesus J Rivas; Helen Almeida; Pablo Royo Dachary; Trinidad Serrano-Aulló; Shay Soker; Pedro M Baptista
Journal:  Adv Exp Med Biol       Date:  2018       Impact factor: 2.622

Review 8.  Printing of Three-Dimensional Tissue Analogs for Regenerative Medicine.

Authors:  Vivian K Lee; Guohao Dai
Journal:  Ann Biomed Eng       Date:  2016-04-11       Impact factor: 3.934

Review 9.  3D Bioprinting for Tissue and Organ Fabrication.

Authors:  Kan Yue; Julio Aleman; Kamyar Mollazadeh Moghaddam; Syeda Mahwish Bakht; Yu Shrike Zhang; Jingzhou Yang; Weitao Jia; Valeria Dell'Erba; Pribpandao Assawes; Su Ryon Shin; Mehmet Remzi Dokmeci; Rahmi Oklu; Ali Khademhosseini
Journal:  Ann Biomed Eng       Date:  2016-04-28       Impact factor: 3.934

10.  3D Printed Bionic Nanodevices.

Authors:  Yong Lin Kong; Maneesh K Gupta; Blake N Johnson; Michael C McAlpine
Journal:  Nano Today       Date:  2016-04-29       Impact factor: 20.722

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