Literature DB >> 32622020

Direct 3D bioprinting of cardiac micro-tissues mimicking native myocardium.

Justin Liu1, Kathleen Miller2, Xuanyi Ma3, Sukriti Dewan3, Natalie Lawrence2, Grace Whang2, Peter Chung2, Andrew D McCulloch4, Shaochen Chen5.   

Abstract

The heart possesses a complex three-dimensional (3D) laminar myofiber organization; however, because engineering physiologically relevant 3D tissues remains a technical challenge, the effects of cardiomyocyte alignment on excitation-contraction coupling, shortening and force development have not been systematically studied. Cellular shape and orientations in 3D can be controlled by engineering scaffold microstructures and encapsulating cells near these geometric cues. Here, we show that a novel method of cell encapsulation in 3D methacrylated gelatin (GelMA) scaffolds patterned via Microscale Continuous Optical Printing (μCOP) can rapidly micropattern neonatal mouse ventricular cardiomyocytes (NMVCMs) in photocrosslinkable hydrogels. Encapsulated cardiomyocytes preferentially align with the engineered microarchitecture and can display morphology and myofibril alignment phenotypic of myocardium in vivo. Utilizing the μCOP system, an asymmetric, multi-material, cantilever-based scaffold was directly printed, so that the force produced by the microtissue was transmitted onto a single deformable pillar. Aligned 3D encapsulated NMVCM scaffolds produced nearly 2 times the force compared to aligned 2D seeded samples. To further highlight the flexibility of μCOP, NMVCMs were encapsulated in several patterns to compare the effects of varying degrees of alignment on tissue displacement and synchronicity. Well aligned myofiber cultured patterns generated 4-10 times the contractile force of less anisotropically patterned constructs. Finally, normalized fluo-4 fluorescence of NMVCM-encapsulated structures showed characteristic calcium transient waveforms that increased in magnitude and rate of decline during treatment with 100 nM isoproterenol. This novel instrumented 3D cardiac microtissue serves as a physiologically relevant in vitro model system with great potential for use in cardiac disease modeling and drug screening.
Copyright © 2020 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  3D bioprinting; Cardiomyocytes; Hydrogel; Organ-on-a-chip; Tissue engineering

Mesh:

Substances:

Year:  2020        PMID: 32622020      PMCID: PMC7423764          DOI: 10.1016/j.biomaterials.2020.120204

Source DB:  PubMed          Journal:  Biomaterials        ISSN: 0142-9612            Impact factor:   12.479


  42 in total

1.  A microfabricated platform to measure and manipulate the mechanics of engineered cardiac microtissues.

Authors:  Thomas Boudou; Wesley R Legant; Anbin Mu; Michael A Borochin; Nimalan Thavandiran; Milica Radisic; Peter W Zandstra; Jonathan A Epstein; Kenneth B Margulies; Christopher S Chen
Journal:  Tissue Eng Part A       Date:  2012-01-04       Impact factor: 3.845

Review 2.  Engineering complex tissues.

Authors:  Anthony Atala; F Kurtis Kasper; Antonios G Mikos
Journal:  Sci Transl Med       Date:  2012-11-14       Impact factor: 17.956

3.  Direct 3D-printing of cell-laden constructs in microfluidic architectures.

Authors:  Justin Liu; Henry H Hwang; Pengrui Wang; Grace Whang; Shaochen Chen
Journal:  Lab Chip       Date:  2016-04-21       Impact factor: 6.799

4.  Biohybrid thin films for measuring contractility in engineered cardiovascular muscle.

Authors:  Patrick W Alford; Adam W Feinberg; Sean P Sheehy; Kevin K Parker
Journal:  Biomaterials       Date:  2010-02-09       Impact factor: 12.479

5.  Tension development and sarcomere length in rat cardiac trabeculae. Evidence of length-dependent activation.

Authors:  H E ter Keurs; W H Rijnsburger; R van Heuningen; M J Nagelsmit
Journal:  Circ Res       Date:  1980-05       Impact factor: 17.367

6.  Cell-laden microengineered gelatin methacrylate hydrogels.

Authors:  Jason W Nichol; Sandeep T Koshy; Hojae Bae; Chang M Hwang; Seda Yamanlar; Ali Khademhosseini
Journal:  Biomaterials       Date:  2010-04-24       Impact factor: 12.479

7.  Micropatterning Alginate Substrates for in vitro Cardiovascular Muscle on a Chip.

Authors:  Ashutosh Agarwal; Yohan Farouz; Alexander Peyton Nesmith; Leila F Deravi; Megan Laura McCain; Kevin Kit Parker
Journal:  Adv Funct Mater       Date:  2013-08-12       Impact factor: 18.808

8.  Carbon-nanotube-embedded hydrogel sheets for engineering cardiac constructs and bioactuators.

Authors:  Su Ryon Shin; Sung Mi Jung; Momen Zalabany; Keekyoung Kim; Pinar Zorlutuna; Sang Bok Kim; Mehdi Nikkhah; Masoud Khabiry; Mohamed Azize; Jing Kong; Kai-Tak Wan; Tomas Palacios; Mehmet R Dokmeci; Hojae Bae; Xiaowu Shirley Tang; Ali Khademhosseini
Journal:  ACS Nano       Date:  2013-02-22       Impact factor: 15.881

9.  Functional improvement and maturation of rat and human engineered heart tissue by chronic electrical stimulation.

Authors:  Marc N Hirt; Jasper Boeddinghaus; Alice Mitchell; Sebastian Schaaf; Christian Börnchen; Christian Müller; Herbert Schulz; Norbert Hubner; Justus Stenzig; Andrea Stoehr; Christiane Neuber; Alexandra Eder; Pradeep K Luther; Arne Hansen; Thomas Eschenhagen
Journal:  J Mol Cell Cardiol       Date:  2014-05-19       Impact factor: 5.000

10.  High and low molecular weight hyaluronic acid differentially regulate human fibrocyte differentiation.

Authors:  Anu S Maharjan; Darrell Pilling; Richard H Gomer
Journal:  PLoS One       Date:  2011-10-11       Impact factor: 3.240

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  8 in total

Review 1.  Recent advances in bioprinting technologies for engineering cardiac tissue.

Authors:  Tarun Agarwal; Gabriele Maria Fortunato; Sung Yun Hann; Bugra Ayan; Kiran Yellappa Vajanthri; Dario Presutti; Haitao Cui; Alex H P Chan; Marco Costantini; Valentina Onesto; Concetta Di Natale; Ngan F Huang; Pooyan Makvandi; Majid Shabani; Tapas Kumar Maiti; Lijie Grace Zhang; Carmelo De Maria
Journal:  Mater Sci Eng C Mater Biol Appl       Date:  2021-03-25

Review 2.  Polysaccharide-Based Materials Created by Physical Processes: From Preparation to Biomedical Applications.

Authors:  Paulo R Souza; Ariel C de Oliveira; Bruno H Vilsinski; Matt J Kipper; Alessandro F Martins
Journal:  Pharmaceutics       Date:  2021-04-27       Impact factor: 6.321

Review 3.  Recent Advances in Cardiac Tissue Engineering for the Management of Myocardium Infarction.

Authors:  Vineeta Sharma; Sanat Kumar Dash; Kavitha Govarthanan; Rekha Gahtori; Nidhi Negi; Mahmood Barani; Richa Tomar; Sudip Chakraborty; Santosh Mathapati; Dillip Kumar Bishi; Poonam Negi; Kamal Dua; Sachin Kumar Singh; Rohit Gundamaraju; Abhijit Dey; Janne Ruokolainen; Vijay Kumar Thakur; Kavindra Kumar Kesari; Niraj Kumar Jha; Piyush Kumar Gupta; Shreesh Ojha
Journal:  Cells       Date:  2021-09-25       Impact factor: 6.600

4.  Programmable and contractile materials through cell encapsulation in fibrous hydrogel assemblies.

Authors:  Matthew D Davidson; Margaret E Prendergast; Ehsan Ban; Karen L Xu; Gabriel Mickel; Patricia Mensah; Abhishek Dhand; Paul A Janmey; Vivek B Shenoy; Jason A Burdick
Journal:  Sci Adv       Date:  2021-11-10       Impact factor: 14.136

Review 5.  Possible Treatment of Myocardial Infarct Based on Tissue Engineering Using a Cellularized Solid Collagen Scaffold Functionalized with Arg-Glyc-Asp (RGD) Peptide.

Authors:  Olivier Schussler; Pierre E Falcoz; Juan C Chachques; Marco Alifano; Yves Lecarpentier
Journal:  Int J Mol Sci       Date:  2021-11-22       Impact factor: 5.923

Review 6.  3D bioprinting of complex tissues in vitro: state-of-the-art and future perspectives.

Authors:  Yi Xiang; Kathleen Miller; Jiaao Guan; Wisarut Kiratitanaporn; Min Tang; Shaochen Chen
Journal:  Arch Toxicol       Date:  2022-01-10       Impact factor: 5.153

Review 7.  3-Dimensional Bioprinting of Cardiovascular Tissues: Emerging Technology.

Authors:  Kevin Sung; Nisha R Patel; Nureddin Ashammakhi; Kim-Lien Nguyen
Journal:  JACC Basic Transl Sci       Date:  2021-05-24

Review 8.  3D bioprinting in cardiac tissue engineering.

Authors:  Zihan Wang; Ling Wang; Ting Li; Sitian Liu; Baolin Guo; Wenhua Huang; Yaobin Wu
Journal:  Theranostics       Date:  2021-07-06       Impact factor: 11.556

  8 in total

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