Crosstalk of cardiomyocytes and fibroblasts in co-cultures

Electromechanical function of cardiac muscle depends critically on the crosstalk of myocytes with non-myocytes. Upon cardiac fibrosis, fibroblasts translocate into infarcted necrotic tissue and alter their communication capabilities. In the present in vitro study, we determined a multiple parameter...

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Main Authors: J. Rother, C. Richter, L. Turco, F. Knoch, I. Mey, S. Luther, A. Janshoff, E. Bodenschatz, M. Tarantola
Format: Article
Language:English
Published: The Royal Society 2015-01-01
Series:Open Biology
Subjects:
Online Access:https://royalsocietypublishing.org/doi/pdf/10.1098/rsob.150038
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spelling doaj-9eee831148f547cbb8e4fdc7e27227f82020-11-25T03:23:26ZengThe Royal SocietyOpen Biology2046-24412015-01-015610.1098/rsob.150038150038Crosstalk of cardiomyocytes and fibroblasts in co-culturesJ. RotherC. RichterL. TurcoF. KnochI. MeyS. LutherA. JanshoffE. BodenschatzM. TarantolaElectromechanical function of cardiac muscle depends critically on the crosstalk of myocytes with non-myocytes. Upon cardiac fibrosis, fibroblasts translocate into infarcted necrotic tissue and alter their communication capabilities. In the present in vitro study, we determined a multiple parameter space relevant for fibrotic cardiac tissue development comprising the following essential processes: (i) adhesion to substrates with varying elasticity, (ii) dynamics of contractile function, and (iii) electromechanical connectivity. By combining electric cell-substrate impedance sensing (ECIS) with conventional optical microscopy, we could measure the impact of fibroblast–cardiomyocyte ratio on the aforementioned parameters in a non-invasive fashion. Adhesion to electrodes was quantified via spreading rates derived from impedance changes, period analysis allowed us to measure contraction dynamics and modulations of the barrier resistance served as a measure of connectivity. In summary, we claim that: (i) a preferred window for substrate elasticity around 7 kPa for low fibroblast content exists, which is shifted to stiffer substrates with increasing fibroblast fractions. (ii) Beat frequency decreases nonlinearly with increasing fraction of fibroblasts, while (iii) the intercellular resistance increases with a maximal functional connectivity at 75% fibroblasts. For the first time, cardiac cell–cell junction density-dependent connectivity in co-cultures of cardiomyocytes and fibroblasts was quantified using ECIS.https://royalsocietypublishing.org/doi/pdf/10.1098/rsob.150038fibrosiscontractile functionfibroblastsimpedance spectroscopyelectric cell-substrate impedance sensingcardiomyocytes
collection DOAJ
language English
format Article
sources DOAJ
author J. Rother
C. Richter
L. Turco
F. Knoch
I. Mey
S. Luther
A. Janshoff
E. Bodenschatz
M. Tarantola
spellingShingle J. Rother
C. Richter
L. Turco
F. Knoch
I. Mey
S. Luther
A. Janshoff
E. Bodenschatz
M. Tarantola
Crosstalk of cardiomyocytes and fibroblasts in co-cultures
Open Biology
fibrosis
contractile function
fibroblasts
impedance spectroscopy
electric cell-substrate impedance sensing
cardiomyocytes
author_facet J. Rother
C. Richter
L. Turco
F. Knoch
I. Mey
S. Luther
A. Janshoff
E. Bodenschatz
M. Tarantola
author_sort J. Rother
title Crosstalk of cardiomyocytes and fibroblasts in co-cultures
title_short Crosstalk of cardiomyocytes and fibroblasts in co-cultures
title_full Crosstalk of cardiomyocytes and fibroblasts in co-cultures
title_fullStr Crosstalk of cardiomyocytes and fibroblasts in co-cultures
title_full_unstemmed Crosstalk of cardiomyocytes and fibroblasts in co-cultures
title_sort crosstalk of cardiomyocytes and fibroblasts in co-cultures
publisher The Royal Society
series Open Biology
issn 2046-2441
publishDate 2015-01-01
description Electromechanical function of cardiac muscle depends critically on the crosstalk of myocytes with non-myocytes. Upon cardiac fibrosis, fibroblasts translocate into infarcted necrotic tissue and alter their communication capabilities. In the present in vitro study, we determined a multiple parameter space relevant for fibrotic cardiac tissue development comprising the following essential processes: (i) adhesion to substrates with varying elasticity, (ii) dynamics of contractile function, and (iii) electromechanical connectivity. By combining electric cell-substrate impedance sensing (ECIS) with conventional optical microscopy, we could measure the impact of fibroblast–cardiomyocyte ratio on the aforementioned parameters in a non-invasive fashion. Adhesion to electrodes was quantified via spreading rates derived from impedance changes, period analysis allowed us to measure contraction dynamics and modulations of the barrier resistance served as a measure of connectivity. In summary, we claim that: (i) a preferred window for substrate elasticity around 7 kPa for low fibroblast content exists, which is shifted to stiffer substrates with increasing fibroblast fractions. (ii) Beat frequency decreases nonlinearly with increasing fraction of fibroblasts, while (iii) the intercellular resistance increases with a maximal functional connectivity at 75% fibroblasts. For the first time, cardiac cell–cell junction density-dependent connectivity in co-cultures of cardiomyocytes and fibroblasts was quantified using ECIS.
topic fibrosis
contractile function
fibroblasts
impedance spectroscopy
electric cell-substrate impedance sensing
cardiomyocytes
url https://royalsocietypublishing.org/doi/pdf/10.1098/rsob.150038
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