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Biology subjects

Clemente-Manteca, A.

Publications and source records attributed to Clemente-Manteca, A..

2 recordsLinked to original sources

Titin cleavage is a driver of cardiomyocyte disengagement and reactive myocardial fibrosis

Myocardial remodeling including cardiomyocyte-death-independent, reactive fibrosis and disconnection of cardiomyocytes is at the basis of prevalent cardiac conditions converging into arrhythmias and heart failure. However, the molecular mechanisms behind these pathogenic responses remain incompletely understood limiting therapeutic opportunities. Here, we find that a molecular event common to unrelated heart diseases, namely the cleavage of the sarcomeric protein titin, is enough to trigger fast myocardial remodeling. Using an engineered system based on the expression of tobacco etch virus protease (TEVp) in mice, we show that 30% mosaic cardiac titin cleavage leads to global cardiomyocyte disengagement, activation of cardiac fibroblasts and interstitial collagen deposition. These effects are concurrent, involve ERK1/2 signaling, and are expected to contribute, at least, to myocardial remodeling in chemotherapy-induced cardiotoxicity and ischemia damage.

physiology↗

Cell response to extracellular matrix energy dissipation outweighs rigidity sensing

The mechanical properties of the extracellular matrix (ECM) determine cell differentiation, proliferation and migration through mechanoresponsive proteins including YAP. However, how different mechanical signals cooperate, synergize or compete to steer cell behavior remains poorly understood. Here, we have examined competition between the two major ECM mechanical cues, i.e. rigidity, which activates cell mechanosensing, and viscous energy dissipation, which reduces stiffness blunting cell mechanotransduction. To trigger competition, we have engineered protein hydrogels allowing concomitant modulation of stiffness and viscosity by mechanisms characteristic of native ECM. Culturing cells on these hydrogels, we have found that substrate energy dissipation attenuates YAP mechanosensing prevailing over stiffness cues. Hampered YAP activation on more dissipative substrates correlates with faster actin flow and smaller focal adhesions. Mechanistically, inhibition of actomyosin contractility reverses the outcome of the competition between rigidity and energy dissipation. Our results highlight the dominating contribution of substrate viscosity to the biology of the cell.

bioengineering↗