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October 26, 2020PLoS ONE28 citationsOpen Access

Maintaining resting cardiac fibroblasts in vitro by disrupting mechanotransduction

GGGeorge GillesAMAndrew D. McCullochCBCord Brakebusch

Key Result

Combined treatment with TGFβRI and ROCK inhibitors effectively prevented and reversed myofibroblast differentiation in primary cardiac fibroblasts, whereas soft hydrogels only delayed it.

Structured PICO

P
Population
In vitro study using primary cardiac fibroblasts isolated from adult mice to investigate methods for maintaining a resting phenotype.
I
Intervention
Culturing on soft (4.5 kPa) polyacrylamide hydrogels or treatment with inhibitors of transforming growth factor β receptor I (TGFβRI) and Rho-associated protein kinase (ROCK)
C
Comparator
Culturing on plastic (high stiffness)
O
Outcome
Myofibroblast marker gene expression (quantified by real-time PCR) and smooth muscle α-actin (SMA) fibers (quantified by immunostaining)surrogate

Disrupting mechanotransduction via soft hydrogels or biochemical inhibitors can maintain or revert primary cardiac fibroblasts to a resting phenotype in vitro, but alters the mechanosensitivity of specific fibrosis-related genes.

Limitations

  • Despite soft substrate culture conditions, SMA fibers re-appeared and Lox and Postn mRNA were increased suggesting partial myofibroblast differentiation after removing blockers.
  • High cell density on hydrogels may diminish the effect of hydrogel stiffness on cell phenotype.
  • In vitro environment variations such as serum composition, substrate protein coating, and cell passage might affect cell phenotype.

Abstract

Mechanical cues activate cardiac fibroblasts and induce differentiation into myofibroblasts, which are key steps for development of cardiac fibrosis. In vitro, the high stiffness of plastic culturing conditions will also induce these changes. It is therefore challenging to study resting cardiac fibroblasts and their activation in vitro. Here we investigate the extent to which disrupting mechanotransduction by culturing cardiac fibroblasts on soft hydrogels or in the presence of biochemical inhibitors can be used to maintain resting cardiac fibroblasts in vitro. Primary cardiac fibroblasts were isolated from adult mice and cultured on plastic or soft (4.5 kPa) polyacrylamide hydrogels. Myofibroblast marker gene expression and smooth muscle α-actin (SMA) fibers were quantified by real-time PCR and immunostaining, respectively. Myofibroblast differentiation was prevented on soft hydrogels for 9 days, but had occurred after 15 days on hydrogels. Transferring myofibroblasts to soft hydrogels reduced expression of myofibroblast-associated genes, albeit SMA fibers remained present. Inhibitors of transforming growth factor β receptor I (TGFβRI) and Rho-associated protein kinase (ROCK) were effective in preventing and reversing myofibroblast gene expression. SMA fibers were also reduced by blocker treatment although cell morphology did not change. Reversed cardiac fibroblasts maintained the ability to re-differentiate after the removal of blockers, suggesting that these are functionally similar to resting cardiac fibroblasts. However, actin alpha 2 smooth muscle (Acta2), lysyl oxidase (Lox) and periostin (Postn) were no longer sensitive to substrate stiffness, suggesting that transient treatment with mechanotransduction inhibitors changes the mechanosensitivity of some fibrosis-related genes. In summary, our results bring novel insight regarding the relative importance of specific mechanical signaling pathways in regulating different myofibroblast-associated genes. Furthermore, combining blocker treatment with the use of soft hydrogels has not been tested previously and revealed that only some genes remain mechano-sensitive after phenotypic reversion. This is important information for researchers using inhibitors to maintain a “resting” cardiac fibroblast phenotype in vitro as well as for our current understanding of mechanosensitive gene regulation.

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Cite This Study

Gilles et al. (2020) studied Cardiac fibrosis (in vitro model). Soft hydrogels and mechanotransduction inhibitors (Y27632, SB431542) vs. Plastic culturing conditions / no inhibitors was evaluated on Myofibroblast marker gene expression and smooth muscle α-actin (SMA) fibers. Combined treatment with TGFβRI and ROCK inhibitors effectively prevented and reversed myofibroblast differentiation in primary cardiac fibroblasts, whereas soft hydrogels only delayed it.

synapsesocial.com/papers/6a22d59f37c1aa9e73b6ecfahttps://doi.org/10.1371/journal.pone.0241390
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