Literature DB >> 21142417

A novel miniaturized multimodal bioreactor for continuous in situ assessment of bioartificial cardiac tissue during stimulation and maturation.

George Kensah1, Ina Gruh, Jörg Viering, Henning Schumann, Julia Dahlmann, Heiko Meyer, David Skvorc, Antonia Bär, Payam Akhyari, Alexander Heisterkamp, Axel Haverich, Ulrich Martin.   

Abstract

Stem cell-based cardiac tissue engineering is a promising approach for regenerative therapy of the injured heart. At present, the small number of stem cell-derived cardiomyocytes that can be obtained using current culture and enrichment techniques represents one of the key limitations for the development of functional bioartificial cardiac tissue (BCT). We have addressed this problem by construction of a novel bioreactor with functional features of larger systems that enables the generation and in situ monitoring of miniaturized BCTs. BCTs were generated from rat cardiomyocytes to demonstrate advantages and usefulness of the bioreactor. Tissues showed spontaneous, synchronized contractions with cell orientation along the axis of strain. Cyclic stretch induced cardiomyocyte hypertrophy, demonstrated by a shift of myosin heavy chain expression from the alpha to beta isoform, together with elevated levels of atrial natriuretic factor. Stretch led to a moderate increase in systolic force (1.42 ± 0.09 mN vs. 0.96 ± 0.09 mN in controls), with significantly higher forces observed after β-adrenergic stimulation with noradrenalin (2.54 ± 0.11 mN). Combined mechanical and β-adrenergic stimulation had no synergistic effect. This study demonstrates for the first time that mechanical stimulation and direct real-time contraction force measurement can be combined into a single multimodal bioreactor system, including electrical stimulation of excitable tissue, perfusion of the culture chamber, and the possibility of (fluorescence) microscopic assessment during continuous cultivation. Thus, this bioreactor represents a valuable tool for monitoring tissue development and, ultimately, the optimization of stem cell-based tissue replacement strategies in regenerative medicine.

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Year:  2011        PMID: 21142417      PMCID: PMC3103055          DOI: 10.1089/ten.TEC.2010.0405

Source DB:  PubMed          Journal:  Tissue Eng Part C Methods        ISSN: 1937-3384            Impact factor:   3.056


  39 in total

1.  Chronic stretch of engineered heart tissue induces hypertrophy and functional improvement.

Authors:  C Fink; S Ergün; D Kralisch; U Remmers; J Weil; T Eschenhagen
Journal:  FASEB J       Date:  2000-04       Impact factor: 5.191

2.  Tissue engineering of a differentiated cardiac muscle construct.

Authors:  W-H Zimmermann; K Schneiderbanger; P Schubert; M Didié; F Münzel; J F Heubach; S Kostin; W L Neuhuber; T Eschenhagen
Journal:  Circ Res       Date:  2002-02-08       Impact factor: 17.367

Review 3.  Engineered heart tissue for regeneration of diseased hearts.

Authors:  Wolfram Hubertus Zimmermann; Ivan Melnychenko; Thomas Eschenhagen
Journal:  Biomaterials       Date:  2004-04       Impact factor: 12.479

4.  Differences between mouse and rat myocardial contractile responsiveness to calcium.

Authors:  W W Brooks; C H Conrad
Journal:  Comp Biochem Physiol A Mol Integr Physiol       Date:  1999-10       Impact factor: 2.320

5.  Human embryonic stem cells can differentiate into myocytes with structural and functional properties of cardiomyocytes.

Authors:  I Kehat; D Kenyagin-Karsenti; M Snir; H Segev; M Amit; A Gepstein; E Livne; O Binah; J Itskovitz-Eldor; L Gepstein
Journal:  J Clin Invest       Date:  2001-08       Impact factor: 14.808

6.  Opposing and synergistic effects of cyclic mechanical stretch and α- or β-adrenergic stimulation on the cardiac gap junction protein Cx43.

Authors:  Aida Salameh; Sebastian Karl; Hjalmar Djilali; Stefan Dhein; Jan Janousek; Ingo Daehnert
Journal:  Pharmacol Res       Date:  2010-08-10       Impact factor: 7.658

Review 7.  Network integration of the adrenergic system in cardiac hypertrophy.

Authors:  Liza Barki-Harrington; Cinzia Perrino; Howard A Rockman
Journal:  Cardiovasc Res       Date:  2004-08-15       Impact factor: 10.787

8.  Norepinephrine-stimulated hypertrophy of cultured rat myocardial cells is an alpha 1 adrenergic response.

Authors:  P Simpson
Journal:  J Clin Invest       Date:  1983-08       Impact factor: 14.808

9.  Mechanical stretch regimen enhances the formation of bioengineered autologous cardiac muscle grafts.

Authors:  Payam Akhyari; Paul W M Fedak; Richard D Weisel; Tsu-Yee Joseph Lee; Subodh Verma; Donald A G Mickle; Ren-Ke Li
Journal:  Circulation       Date:  2002-09-24       Impact factor: 29.690

Review 10.  Cardiac hypertrophy: the good, the bad, and the ugly.

Authors:  N Frey; E N Olson
Journal:  Annu Rev Physiol       Date:  2003-01-09       Impact factor: 19.318

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  37 in total

Review 1.  Tissue-Engineering for the Study of Cardiac Biomechanics.

Authors:  Stephen P Ma; Gordana Vunjak-Novakovic
Journal:  J Biomech Eng       Date:  2016-02       Impact factor: 2.097

Review 2.  Maturing human pluripotent stem cell-derived cardiomyocytes in human engineered cardiac tissues.

Authors:  Nicole T Feric; Milica Radisic
Journal:  Adv Drug Deliv Rev       Date:  2015-05-05       Impact factor: 15.470

3.  Microfabricated perfusable cardiac biowire: a platform that mimics native cardiac bundle.

Authors:  Yun Xiao; Boyang Zhang; Haijiao Liu; Jason W Miklas; Mark Gagliardi; Aric Pahnke; Nimalan Thavandiran; Yu Sun; Craig Simmons; Gordon Keller; Milica Radisic
Journal:  Lab Chip       Date:  2014-03-07       Impact factor: 6.799

4.  Recapitulating maladaptive, multiscale remodeling of failing myocardium on a chip.

Authors:  Megan L McCain; Sean P Sheehy; Anna Grosberg; Josue A Goss; Kevin Kit Parker
Journal:  Proc Natl Acad Sci U S A       Date:  2013-05-28       Impact factor: 11.205

5.  It's all in the timing: modeling isovolumic contraction through development and disease with a dynamic dual electromechanical bioreactor system.

Authors:  Kathy Ye Morgan; Lauren Deems Black
Journal:  Organogenesis       Date:  2014-10-31       Impact factor: 2.500

6.  A novel customizable modular bioreactor system for whole-heart cultivation under controlled 3D biomechanical stimulation.

Authors:  Jörn Hülsmann; Hug Aubin; Alexander Kranz; Erhardt Godehardt; Hiroshi Munakata; Hiroyuki Kamiya; Mareike Barth; Artur Lichtenberg; Payam Akhyari
Journal:  J Artif Organs       Date:  2013-04-16       Impact factor: 1.731

7.  Robust T-tubulation and maturation of cardiomyocytes using tissue-engineered epicardial mimetics.

Authors:  Weining Bian; Nima Badie; Herman D Himel; Nenad Bursac
Journal:  Biomaterials       Date:  2014-02-06       Impact factor: 12.479

8.  Mimicking isovolumic contraction with combined electromechanical stimulation improves the development of engineered cardiac constructs.

Authors:  Kathy Ye Morgan; Lauren Deems Black
Journal:  Tissue Eng Part A       Date:  2014-04-07       Impact factor: 3.845

9.  Optimizing a spontaneously contracting heart tissue patch with rat neonatal cardiac cells on fibrin gel.

Authors:  Ze-Wei Tao; Mohamed Mohamed; Matthew Hogan; Laura Gutierrez; Ravi K Birla
Journal:  J Tissue Eng Regen Med       Date:  2014-04-28       Impact factor: 3.963

Review 10.  Bioreactor engineering of stem cell environments.

Authors:  Nina Tandon; Darja Marolt; Elisa Cimetta; Gordana Vunjak-Novakovic
Journal:  Biotechnol Adv       Date:  2013-03-24       Impact factor: 14.227

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