Literature DB >> 28448053

Automated Contraction Analysis of Human Engineered Heart Tissue for Cardiac Drug Safety Screening.

Ingra Mannhardt1, Umber Saleem2, Anika Benzin2, Thomas Schulze2, Birgit Klampe2, Thomas Eschenhagen2, Arne Hansen2.   

Abstract

Cardiac tissue engineering describes techniques to constitute three dimensional force-generating engineered tissues. For the implementation of these procedures in basic research and preclinical drug development, it is important to develop protocols for automated generation and analysis under standardized conditions. Here, we present a technique to generate engineered heart tissue (EHT) from cardiomyocytes of different species (rat, mouse, human). The technique relies on the assembly of a fibrin-gel containing dissociated cardiomyocytes between elastic polydimethylsiloxane (PDMS) posts in a 24-well format. Three-dimensional, force-generating EHTs constitute within two weeks after casting. This procedure allows for the generation of several hundred EHTs per week and is technically limited only by the availability of cardiomyocytes (0.4-1.0 x 106/EHT). Evaluation of auxotonic muscle contractions is performed in a modified incubation chamber with a mechanical interlock for 24-well plates and a camera placed on top of this chamber. A software controls a camera moved on an XYZ axis system to each EHT. EHT contractions are detected by an automated figure recognition algorithm, and force is calculated based on shortening of the EHT and the elastic propensity and geometry of the PDMS posts. This procedure allows for automated analysis of high numbers of EHT under standardized and sterile conditions. The reliable detection of drug effects on cardiomyocyte contraction is crucial for cardiac drug development and safety pharmacology. We demonstrate, with the example of the hERG channel inhibitor E-4031, that the human EHT system replicates drug responses on contraction kinetics of the human heart, indicating it to be a promising tool for cardiac drug safety screening.

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Year:  2017        PMID: 28448053      PMCID: PMC5564700          DOI: 10.3791/55461

Source DB:  PubMed          Journal:  J Vis Exp        ISSN: 1940-087X            Impact factor:   1.355


  25 in total

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Authors:  Arne Hansen; Alexandra Eder; Marlene Bönstrup; Marianne Flato; Marco Mewe; Sebastian Schaaf; Bülent Aksehirlioglu; Alexander P Schwoerer; Alexander Schwörer; June Uebeler; Thomas Eschenhagen
Journal:  Circ Res       Date:  2010-05-06       Impact factor: 17.367

3.  Wnt inhibition correlates with human embryonic stem cell cardiomyogenesis: a structure-activity relationship study based on inhibitors for the Wnt response.

Authors:  Marion Lanier; Dennis Schade; Erik Willems; Masanao Tsuda; Sean Spiering; Jaroslaw Kalisiak; Mark Mercola; John R Cashman
Journal:  J Med Chem       Date:  2012-01-13       Impact factor: 7.446

Review 4.  Engineering adolescence: maturation of human pluripotent stem cell-derived cardiomyocytes.

Authors:  Xiulan Yang; Lil Pabon; Charles E Murry
Journal:  Circ Res       Date:  2014-01-31       Impact factor: 17.367

5.  Evidence for FHL1 as a novel disease gene for isolated hypertrophic cardiomyopathy.

Authors:  Felix W Friedrich; Brendan R Wilding; Silke Reischmann; Claudia Crocini; Patrick Lang; Philippe Charron; Oliver J Müller; Meagan J McGrath; Ingra Vollert; Arne Hansen; Wolfgang A Linke; Christian Hengstenberg; Gisèle Bonne; Stellan Morner; Thomas Wichter; Hugo Madeira; Eloisa Arbustini; Thomas Eschenhagen; Christina A Mitchell; Richard Isnard; Lucie Carrier
Journal:  Hum Mol Genet       Date:  2012-04-20       Impact factor: 6.150

6.  Physiologic force-frequency response in engineered heart muscle by electromechanical stimulation.

Authors:  Amandine F G Godier-Furnémont; Malte Tiburcy; Eva Wagner; Matthias Dewenter; Simon Lämmle; Ali El-Armouche; Stephan E Lehnart; Gordana Vunjak-Novakovic; Wolfram-Hubertus Zimmermann
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Review 7.  How can we improve our understanding of cardiovascular safety liabilities to develop safer medicines?

Authors:  Hg Laverty; C Benson; Ej Cartwright; Mj Cross; C Garland; T Hammond; C Holloway; N McMahon; J Milligan; Bk Park; M Pirmohamed; C Pollard; J Radford; N Roome; P Sager; S Singh; T Suter; W Suter; A Trafford; Pga Volders; R Wallis; R Weaver; M York; Jp Valentin
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8.  Impact of ANKRD1 mutations associated with hypertrophic cardiomyopathy on contraction parameters of engineered heart tissue.

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9.  Human engineered heart tissue as a versatile tool in basic research and preclinical toxicology.

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10.  Miniaturized iPS-Cell-Derived Cardiac Muscles for Physiologically Relevant Drug Response Analyses.

Authors:  Nathaniel Huebsch; Peter Loskill; Nikhil Deveshwar; C Ian Spencer; Luke M Judge; Mohammad A Mandegar; Cade B Fox; Tamer M A Mohamed; Zhen Ma; Anurag Mathur; Alice M Sheehan; Annie Truong; Mike Saxton; Jennie Yoo; Deepak Srivastava; Tejal A Desai; Po-Lin So; Kevin E Healy; Bruce R Conklin
Journal:  Sci Rep       Date:  2016-04-20       Impact factor: 4.379

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  13 in total

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Journal:  Biomaterials       Date:  2020-04-12       Impact factor: 12.479

2.  Bioengineering Cardiac Tissue Constructs With Adult Rat Cardiomyocytes.

Authors:  Ze-Wei Tao; Mohamed Mohamed; Jeffrey G Jacot; Ravi K Birla
Journal:  ASAIO J       Date:  2018 Sep/Oct       Impact factor: 2.872

Review 3.  Biomaterializing the promise of cardiac tissue engineering.

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Journal:  Biotechnol Adv       Date:  2019-02-20       Impact factor: 14.227

Review 4.  Progress in multicellular human cardiac organoids for clinical applications.

Authors:  Hyeonyu Kim; Roger D Kamm; Gordana Vunjak-Novakovic; Joseph C Wu
Journal:  Cell Stem Cell       Date:  2022-04-07       Impact factor: 25.269

Review 5.  Use of Human Induced Pluripotent Stem Cell-Derived Cardiomyocytes in Preclinical Cancer Drug Cardiotoxicity Testing: A Scientific Statement From the American Heart Association.

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6.  A micromachined force sensing apparatus and method for human engineered cardiac tissue and induced pluripotent stem cell characterization.

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Review 7.  Engineering hiPSC cardiomyocyte in vitro model systems for functional and structural assessment.

Authors:  Alison Schroer; Gaspard Pardon; Erica Castillo; Cheavar Blair; Beth Pruitt
Journal:  Prog Biophys Mol Biol       Date:  2018-12-20       Impact factor: 4.799

8.  Microphysiological System for High-Throughput Computer Vision Measurement of Microtissue Contraction.

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Journal:  ACS Sens       Date:  2021-03-03       Impact factor: 9.618

9.  Contractile Work Contributes to Maturation of Energy Metabolism in hiPSC-Derived Cardiomyocytes.

Authors:  Bärbel M Ulmer; Andrea Stoehr; Mirja L Schulze; Sajni Patel; Marjan Gucek; Ingra Mannhardt; Sandra Funcke; Elizabeth Murphy; Thomas Eschenhagen; Arne Hansen
Journal:  Stem Cell Reports       Date:  2018-03-01       Impact factor: 7.765

Review 10.  Genetic and Tissue Engineering Approaches to Modeling the Mechanics of Human Heart Failure for Drug Discovery.

Authors:  Michael J Greenberg; Neil J Daily; Ann Wang; Michael K Conway; Tetsuro Wakatsuki
Journal:  Front Cardiovasc Med       Date:  2018-09-19
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