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Contractile tension and beating rates of self-exciting monolayers and 3D-tissue constructs of neonatal rat cardiomyocytes

  • The CellDrum technology (The term 'CellDrum technology' includes a couple of slightly different technological setups for measuring lateral mechanical tension in various types of cell monolayers or 3D-tissue constructs) was designed to quantify the contraction rate and mechanical tension of self-exciting cardiac myocytes. Cells were grown either within flexible, circular collagen gels or as monolayer on top of respective 1-mum thin silicone membranes. Membrane and cells were bulged outwards by air pressure. This biaxial strain distribution is rather similar the beating, blood-filled heart. The setup allowed presetting the mechanical residual stress level externally by adjusting the centre deflection, thus, mimicking hypertension in vitro. Tension was measured as oscillating differential pressure change between chamber and environment. A 0.5-mm thick collagen-cardiac myocyte tissue construct induced after 2 days of culturing (initial cell density 2 x 10(4) cells/ml), a mechanical tension of 1.62 +/- 0.17 microN/mm(2). Mechanical load is an important growth regulator in the developing heart, and the orientation and alignment of cardiomyocytes is stress sensitive. Therefore, it was necessary to develop the CellDrum technology with its biaxial stress-strain distribution and defined mechanical boundary conditions. Cells were exposed to strain in two directions, radially and circumferentially, which is similar to biaxial loading in real heart tissues. Thus, from a biomechanical point of view, the system is preferable to previous setups based on uniaxial stretching.

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Metadaten
Author:R. Kurz, Peter LinderORCiD, Jürgen TrzewikORCiD, M. Rüffer, Gerhard ArtmannORCiD, Ilya DigelORCiD, A. Rothermel, A. Robitzki, Aysegül Temiz ArtmannORCiD
DOI:https://doi.org/10.1007/s11517-009-0552-y
ISSN:1741-0444
Parent Title (English):Medical and Biological Engineering and Computing
Publisher:Springer Nature
Place of publication:Cham
Document Type:Article
Language:English
Year of Completion:2010
Date of the Publication (Server):2012/12/18
Volume:48
Issue:1
First Page:59
Last Page:65
Link:https://doi.org/10.1007/s11517-009-0552-y
Zugriffsart:campus
Institutes:FH Aachen / Fachbereich Medizintechnik und Technomathematik
FH Aachen / IfB - Institut für Bioengineering
collections:Verlag / Springer Nature