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Published on: June 14, 2016
Myofibroblasts impair myocardial impulse propagation by heterocellular connexin43 gap-junctional coupling through
Yumika Tsuji1,2, Takehiro Ogata1, Kentaro Mochizuki1
1Department of Pathology and Cell Regulation and, Graduate School of Medical Science, Kyoto Prefectural University of Medicine, Kyoto, Japan.
Abstract:
Aim: Composite population of myofibroblasts (MFs) within myocardial tissue is known to alter impulse propagation, leading to arrhythmias. However, it remains unclear whether and how MFs alter their propagation patterns when contacting cardiomyocytes (CMs) without complex structural insertions in the myocardium. We attempted to unveil the effects of the one-sided, heterocellular CM-MF connection on the impulse propagation of CM monolayers without the spatial insertion of MFs as an electrical or mechanical obstacle. Methods and results: We evaluated fluo8-based spatiotemporal patterns in impulse propagation of neonatal rat CM monolayers cultured on the microporous membrane having 8-μm diameter pores with co-culture of MFs or CMs on the reverse membrane side (CM-MF model or CM-CM model, respectively). During consecutive pacing at 1 or 2 Hz, the CM monolayers exhibited forward impulse propagation from the pacing site with a slower conduction velocity (θ) and a larger coefficient of directional θ variation in the CM-MF model than that in the CM-CM model in a frequency-dependent manner (2 Hz >1 Hz). The localized placement of an MF cluster on the reverse side resulted in an abrupt segmental depression of the impulse propagation of the upper CM layer, causing a spatiotemporally non-uniform pattern. Dye transfer of the calcein loaded in the upper CM layer to the lower MF layer was attenuated by the gap-junction inhibitor heptanol. Immunocytochemistry identified definitive connexin 43 (Cx43) between the CMs and MFs in the membrane pores. MF-selective Cx43 knockdown in the MF layer improved both the velocity and uniformity of propagation in the CM monolayer. Conclusion: Heterocellular Cx43 gap junction coupling of CMs with MFs alters the spatiotemporal patterns of myocardial impulse propagation, even in the absence of spatially interjacent and mechanosensitive modulations by MFs. Moreover, MFs can promote pro-arrhythmogenic impulse propagation when in face-to-face contact with the myocardium that arises in the healing infarct border zone.
Insights
Myofibroblasts (MFs) alter cardiac impulse propagation through connexin 43 (Cx43) gap junctions with cardiomyocytes (CMs). This heterocellular coupling, even without direct structural interference, can promote pro-arrhythmogenic electrical activity in the heart.
Area of Science:
- Cardiovascular Physiology
- Cardiac Electrophysiology
- Cellular Biology
Background:
- Myofibroblasts (MFs) in myocardial tissue are known to affect impulse propagation and contribute to arrhythmias.
- The specific impact of direct myofibroblast-cardiomyocyte (CM) contact on impulse propagation, without complex structural integration, remains poorly understood.
Purpose of the Study:
- To investigate how one-sided, heterocellular connections between MFs and CMs influence impulse propagation in CM monolayers.
- To determine the role of gap junction coupling in mediating these effects, independent of spatial or mechanical interference.
Main Methods:
- Neonatal rat CM monolayers were cultured on microporous membranes with MFs or CMs on the reverse side (CM-MF and CM-CM models).
- Fluo8-based imaging assessed spatiotemporal impulse propagation patterns during 1 Hz and 2 Hz pacing.
- Connexin 43 (Cx43) involvement was examined using gap-junction inhibitors (heptanol) and selective Cx43 knockdown in MFs.
Main Results:
- The CM-MF model showed significantly slower conduction velocity and greater directional variation in impulse propagation compared to the CM-CM model, particularly at 2 Hz.
- Localized MF clusters induced segmental depression of impulse propagation, leading to non-uniform patterns.
- Dye transfer and Cx43 immunocytochemistry confirmed heterocellular gap junction coupling between CMs and MFs, which was inhibited by heptanol and improved by Cx43 knockdown.
Conclusions:
- Heterocellular Cx43 gap junction coupling between CMs and MFs alters myocardial impulse propagation patterns, even without direct spatial or mechanical interaction.
- MFs can promote pro-arrhythmogenic impulse propagation when in close contact with the myocardium, relevant to conditions like healing infarct border zones.
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