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Published on: June 14, 2016
Cell-Based Mechanosensation, Epigenetics, and Non-Coding RNAs in Progression of Cardiac Fibrosis
Silvia Ferrari1,2, Maurizio Pesce1
1Unità di Ingegneria Tissutale Cardiovascolare, Centro Cardiologico Monzino, IRCCS, 20138 Milan, Italy.
Insights
Cardiac fibroblasts interpret mechanical signals, influencing heart health. Misinterpreted signals can lead to cardiac fibrosis, a process involving epigenetic changes and non-coding RNAs.
Area of Science:
- Cardiovascular Biology
- Cellular Mechanics
- Epigenetics
Background:
- The heart is a dynamic organ responding to mechanical forces.
- Cardiac fibroblasts are key players in cardiovascular pathology, translating mechanical cues.
- Mechanical signals can be misinterpreted by fibroblasts, leading to disease programming.
Purpose of the Study:
- To explore the role of mechanical cues in cardiac fibrotic progression.
- To investigate the link between cell mechanics, epigenetic landscape, and stromal cell phenotype.
- To highlight the involvement of non-coding RNAs in mechanotransduction.
Main Methods:
- Review of existing evidence on cardiac fibroblast mechanobiology.
- Analysis of molecular pathways activated by mechanical stress.
- Exploration of epigenetic modifications and non-coding RNA functions.
Main Results:
- Cardiac fibroblasts alter phenotype from matrix renewal to scarring (myofibroblasts) under stress.
- Altered mechanical sensing in fibroblasts contributes to molecular pathology.
- Cell mechanics influence stromal cell phenotype via epigenetic modifications and non-coding RNAs.
Conclusions:
- Cardiac fibrosis progression is linked to the interpretation of mechanical cues within an epigenetic and non-coding RNA context.
- Understanding these integrated mechanisms is crucial for novel therapeutic strategies.
- Further research is needed to fully elucidate these complex interactions.
Abstract:
The heart is par excellence the 'in-motion' organ in the human body. Compelling evidence shows that, besides generating forces to ensure continuous blood supply (e.g., myocardial contractility) or withstanding passive forces generated by flow (e.g., shear stress on endocardium, myocardial wall strain, and compression strain at the level of cardiac valves), cells resident in the heart respond to mechanical cues with the activation of mechanically dependent molecular pathways. Cardiac stromal cells, most commonly named cardiac fibroblasts, are central in the pathologic evolution of the cardiovascular system. In their normal function, these cells translate mechanical cues into signals that are necessary to renew the tissues, e.g., by continuously rebuilding the extracellular matrix being subjected to mechanical stress. In the presence of tissue insults (e.g., ischemia), inflammatory cues, or modifiable/unmodifiable risk conditions, these mechanical signals may be 'misinterpreted' by cardiac fibroblasts, giving rise to pathology programming. In fact, these cells are subject to changing their phenotype from that of matrix renewing to that of matrix scarring cells-the so-called myo-fibroblasts-involved in cardiac fibrosis. The links between alterations in the abilities of cardiac fibroblasts to 'sense' mechanical cues and molecular pathology programming are still under investigation. On the other hand, various evidence suggests that cell mechanics may control stromal cells phenotype by modifying the epigenetic landscape, and this involves specific non-coding RNAs. In the present contribution, we will provide examples in support of this more integrated vision of cardiac fibrotic progression based on the decryption of mechanical cues in the context of epigenetic and non-coding RNA biology.

