Literature DB >> 17406425

Micropatterned cell cultures on elastic membranes as an in vitro model of myocardium.

Patrizia Camelliti1, John O Gallagher, Peter Kohl, Andrew D McCulloch.   

Abstract

We describe here a new in vitro protocol for structuring cardiac cell cultures to mimic important aspects of the in vivo ventricular myocardial phenotype by controlling the location and mechanical environment of cultured cells. Microlithography is used to engineer microstructured silicon metal wafers. Those are used to fabricate either microgrooved silicone membranes or silicone molds for microfluidic application of extracellular matrix proteins onto elastic membranes (involving flow control at micrometer resolution). The physically or microfluidically structured membranes serve as a cell culture growth substrate that supports cell alignment and allows the application of stretch. The latter is achieved with a stretching device that can deliver isotropic or anisotropic stretch. Neonatal ventricular cardiomyocytes, grown on these micropatterned membranes, develop an in vivo-like morphology with regular sarcomeric patterns. The entire process from fabrication of the micropatterned silicon metal wafers to casting of silicone molds, microfluidic patterning and cell isolation and seeding takes approximately 7 days.

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Year:  2006        PMID: 17406425     DOI: 10.1038/nprot.2006.203

Source DB:  PubMed          Journal:  Nat Protoc        ISSN: 1750-2799            Impact factor:   13.491


  34 in total

1.  Stimulus interval, rate and direction differentially regulate phosphorylation for mechanotransduction in neonatal cardiac myocytes.

Authors:  Samuel E Senyo; Yevgeniya E Koshman; Brenda Russell
Journal:  FEBS Lett       Date:  2007-08-08       Impact factor: 4.124

2.  Novel micropatterned cardiac cell cultures with realistic ventricular microstructure.

Authors:  Nima Badie; Nenad Bursac
Journal:  Biophys J       Date:  2009-05-06       Impact factor: 4.033

Review 3.  Biomechanics of cardiac electromechanical coupling and mechanoelectric feedback.

Authors:  Emily R Pfeiffer; Jared R Tangney; Jeffrey H Omens; Andrew D McCulloch
Journal:  J Biomech Eng       Date:  2014-02       Impact factor: 2.097

4.  The use of a novel cardiac bioreactor system in investigating fibroblast physiology and its perspectives.

Authors:  Liang Lu; Ursula Ravens
Journal:  Organogenesis       Date:  2013-04-01       Impact factor: 2.500

5.  Formation of cardiac fibers in Matrigel matrix.

Authors:  Karina Bakunts; Nikki Gillum; Zaruhi Karabekian; Narine Sarvazyan
Journal:  Biotechniques       Date:  2008-03       Impact factor: 1.993

6.  Laser-guided cell micropatterning system.

Authors:  Russell K Pirlo; Zhen Ma; Andrew Sweeney; Honghai Liu; Julie X Yun; Xiang Peng; Xiaocong Yuan; George X Guo; Bruce Z Gao
Journal:  Rev Sci Instrum       Date:  2011-01       Impact factor: 1.523

7.  A novel platform for in situ investigation of cells and tissues under mechanical strain.

Authors:  W W Ahmed; M H Kural; T A Saif
Journal:  Acta Biomater       Date:  2010-02-25       Impact factor: 8.947

8.  Caveolae in ventricular myocytes are required for stretch-dependent conduction slowing.

Authors:  E R Pfeiffer; A T Wright; A G Edwards; J C Stowe; K McNall; J Tan; I Niesman; H H Patel; D M Roth; J H Omens; A D McCulloch
Journal:  J Mol Cell Cardiol       Date:  2014-09-26       Impact factor: 5.000

9.  Responsive microgrooves for the formation of harvestable tissue constructs.

Authors:  Halil Tekin; Gozde Ozaydin-Ince; Tonia Tsinman; Karen K Gleason; Robert Langer; Ali Khademhosseini; Melik C Demirel
Journal:  Langmuir       Date:  2011-03-30       Impact factor: 3.882

10.  Increased cell membrane capacitance is the dominant mechanism of stretch-dependent conduction slowing in the rabbit heart: a computational study.

Authors:  Bernardo L de Oliveira; Emily R Pfeiffer; Joakim Sundnes; Samuel T Wall; Andrew D McCulloch
Journal:  Cell Mol Bioeng       Date:  2015-03-24       Impact factor: 2.321

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