Literature DB >> 22092279

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

Thomas Boudou1, Wesley R Legant, Anbin Mu, Michael A Borochin, Nimalan Thavandiran, Milica Radisic, Peter W Zandstra, Jonathan A Epstein, Kenneth B Margulies, Christopher S Chen.   

Abstract

Engineered myocardial tissues can be used to elucidate fundamental features of myocardial biology, develop organotypic in vitro model systems, and as engineered tissue constructs for replacing damaged heart tissue in vivo. However, a key limitation is an inability to test the wide range of parameters (cell source, mechanical, soluble and electrical stimuli) that might impact the engineered tissue in a high-throughput manner and in an environment that mimics native heart tissue. Here we used microelectromechanical systems technology to generate arrays of cardiac microtissues (CMTs) embedded within three-dimensional micropatterned matrices. Microcantilevers simultaneously constrain CMT contraction and report forces generated by the CMTs in real time. We demonstrate the ability to routinely produce ~200 CMTs per million cardiac cells (<1 neonatal rat heart) whose spontaneous contraction frequency, duration, and forces can be tracked. Independently varying the mechanical stiffness of the cantilevers and collagen matrix revealed that both the dynamic force of cardiac contraction as well as the basal static tension within the CMT increased with boundary or matrix rigidity. Cell alignment is, however, reduced within a stiff collagen matrix; therefore, despite producing higher force, CMTs constructed from higher density collagen have a lower cross-sectional stress than those constructed from lower density collagen. We also study the effect of electrical stimulation on cell alignment and force generation within CMTs and we show that the combination of electrical stimulation and auxotonic load strongly improves both the structure and the function of the CMTs. Finally, we demonstrate the suitability of our technique for high-throughput monitoring of drug-induced changes in spontaneous frequency or contractility in CMTs as well as high-speed imaging of calcium dynamics using fluorescent dyes. Together, these results highlight the potential for this approach to quantitatively demonstrate the impact of physical parameters on the maturation, structure, and function of cardiac tissue and open the possibility to use high-throughput, low volume screening for studies on engineered myocardium.

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Mesh:

Year:  2012        PMID: 22092279      PMCID: PMC3338105          DOI: 10.1089/ten.tea.2011.0341

Source DB:  PubMed          Journal:  Tissue Eng Part A        ISSN: 1937-3341            Impact factor:   3.845


  50 in total

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

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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

3.  In vitro engineering of heart muscle: artificial myocardial tissue.

Authors:  T Kofidis; P Akhyari; J Boublik; P Theodorou; U Martin; A Ruhparwar; S Fischer; T Eschenhagen; H P Kubis; T Kraft; R Leyh; A Haverich
Journal:  J Thorac Cardiovasc Surg       Date:  2002-07       Impact factor: 5.209

4.  Cardiac tissue engineering: characteristics of in unison contracting two- and three-dimensional neonatal rat ventricle cell (co)-cultures.

Authors:  M J A van Luyn; R A Tio; X J Gallego y van Seijen; J A Plantinga; L F M H de Leij; M J L DeJongste; P B van Wachem
Journal:  Biomaterials       Date:  2002-12       Impact factor: 12.479

5.  Survival and function of bioengineered cardiac grafts.

Authors:  R K Li; Z Q Jia; R D Weisel; D A Mickle; A Choi; T M Yau
Journal:  Circulation       Date:  1999-11-09       Impact factor: 29.690

6.  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

7.  Fabrication of pulsatile cardiac tissue grafts using a novel 3-dimensional cell sheet manipulation technique and temperature-responsive cell culture surfaces.

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Journal:  Circ Res       Date:  2002-02-22       Impact factor: 17.367

8.  Bioengineered cardiac grafts: A new approach to repair the infarcted myocardium?

Authors:  J Leor; S Aboulafia-Etzion; A Dar; L Shapiro; I M Barbash; A Battler; Y Granot; S Cohen
Journal:  Circulation       Date:  2000-11-07       Impact factor: 29.690

9.  Fibronectin forms the most extensible biological fibers displaying switchable force-exposed cryptic binding sites.

Authors:  Enrico Klotzsch; Michael L Smith; Kristopher E Kubow; Simon Muntwyler; William C Little; Felix Beyeler; Delphine Gourdon; Bradley J Nelson; Viola Vogel
Journal:  Proc Natl Acad Sci U S A       Date:  2009-10-13       Impact factor: 11.205

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Journal:  Curr Opin Crit Care       Date:  2002-10       Impact factor: 3.687

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  174 in total

1.  Contractility of single cardiomyocytes differentiated from pluripotent stem cells depends on physiological shape and substrate stiffness.

Authors:  Alexandre J S Ribeiro; Yen-Sin Ang; Ji-Dong Fu; Renee N Rivas; Tamer M A Mohamed; Gadryn C Higgs; Deepak Srivastava; Beth L Pruitt
Journal:  Proc Natl Acad Sci U S A       Date:  2015-09-28       Impact factor: 11.205

Review 2.  Engineered heart tissues and induced pluripotent stem cells: Macro- and microstructures for disease modeling, drug screening, and translational studies.

Authors:  Evangeline Tzatzalos; Oscar J Abilez; Praveen Shukla; Joseph C Wu
Journal:  Adv Drug Deliv Rev       Date:  2015-09-30       Impact factor: 15.470

Review 3.  Electrical and mechanical stimulation of cardiac cells and tissue constructs.

Authors:  Whitney L Stoppel; David L Kaplan; Lauren D Black
Journal:  Adv Drug Deliv Rev       Date:  2015-07-30       Impact factor: 15.470

Review 4.  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

5.  A chemo-mechanical free-energy-based approach to model durotaxis and extracellular stiffness-dependent contraction and polarization of cells.

Authors:  Vivek B Shenoy; Hailong Wang; Xiao Wang
Journal:  Interface Focus       Date:  2016-02-06       Impact factor: 3.906

Review 6.  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

7.  Monitoring of Microphysiological Systems: Integrating Sensors and Real-Time Data Analysis toward Autonomous Decision-Making.

Authors:  Ashlyn T Young; Kristina R Rivera; Patrick D Erb; Michael A Daniele
Journal:  ACS Sens       Date:  2019-04-19       Impact factor: 7.711

Review 8.  Microfabricated mammalian organ systems and their integration into models of whole animals and humans.

Authors:  Jong H Sung; Mandy B Esch; Jean-Matthieu Prot; Christopher J Long; Alec Smith; James J Hickman; Michael L Shuler
Journal:  Lab Chip       Date:  2013-04-07       Impact factor: 6.799

9.  Mechanoregulation of valvular interstitial cell phenotype in the third dimension.

Authors:  Mehmet H Kural; Kristen L Billiar
Journal:  Biomaterials       Date:  2013-11-07       Impact factor: 12.479

Review 10.  A Review of Single-Cell Adhesion Force Kinetics and Applications.

Authors:  Ashwini Shinde; Kavitha Illath; Pallavi Gupta; Pallavi Shinde; Ki-Taek Lim; Moeto Nagai; Tuhin Subhra Santra
Journal:  Cells       Date:  2021-03-05       Impact factor: 6.600

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