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Lopez-Unzu, M. A.

Publications and source records attributed to Lopez-Unzu, M. A..

3 recordsLinked to original sources

Titin cleavage in living cardiomyocytes induces sarcomere disassembly but does not trigger cell proliferation

AimsAdult mammalian hearts have limited regenerative capacity due to the inability of cardiomyocytes to proliferate, a major clinical hurdle in contemporary cardiology. The presence of highly organized, contractile sarcomeres has long been considered an impediment for cardiomyocyte division. Indeed, sarcomere disassembly is a crucial step to complete the cell cycle in the few situations where cardiomyocytes have been observed to proliferate. However, whether sarcomere disassembly can per se trigger cell cycle re-entry remains unknown, a possibility that we have tested here. Methods and resultsWe have engineered a system to induce sarcomere disassembly in living murine cardiomyocytes based on the specific cleavage of the structural protein titin by tobacco etch virus protease (TEVp). Although isolated neonatal cardiomyocytes with disassembled sarcomeres remain viable and retain low-amplitude contractile activity, our results show no evidence of increased cardiomyocyte proliferation in targeted cells, as indicated by analyses of markers of DNA synthesis and cytokinesis. We obtain equivalent results when titin is cleaved in the adult myocardium in vivo. ConclusionThe removal of sarcomere structural barriers is necessary, but not sufficient, for cardiomyocyte proliferation, which implies that additional factors are required for cardiomyocytes to undergo cell division. Translational perspectiveThere is a clinical need to identify therapeutic strategies that promote cardiac regeneration through the proliferation of cardiomyocytes that survive an injury to the heart, for instance after myocardial infarction. Based on the observation that cardiomyocytes require sarcomere disassembly for proliferation, we have examined if the sole disassembly of sarcomeres is enough to promote cell division in cardiomyocytes. Our work demonstrates a strategy to induce specific sarcomere disassembly, which, however does not result in increased proliferative capacity of cardiomyocytes. These results imply that additional factors need to be considered to promote cardiomyocyte proliferation by facilitating sarcomere disassembly.

cell biology↗

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↗

Unraveling the Molecular Complexity of Bicuspid Aortopathy: Lessons from Comparative Proteomics

BackgroundMolecular markers and pathways involved in the etiology and pathophysiology of bicuspid aortopathy are poorly understood. The aim here is to delve into the molecular and cellular mechanisms of the disease and identify potential predictive molecular markers using a well-established isogenic hamster model (T-strain) of bicuspid aortic valve (BAV) and thoracic aortic dilatation (TAD). MethodsComparative quantitative proteomics combined with western blot and morpho-molecular analyses in the ascending aorta of tricuspid aortic valve (TAV) and BAV animals from the T-strain, and TAV animals from a control strain. This strategy allows discriminating between genetic and hemodynamic factors in genetically homogeneous populations. ResultsThe major molecular alteration in the aorta of genetically homogeneous BAV individuals is PI3K/AKT overactivation caused by changes in the EGF, ANGII and TGF-{beta} pathways. PI3K/AKT affects downstream eNOS, MAP2K1/2, NF-{kappa}B, mTOR and WNT pathways. Most of these alterations are seen in independent patient studies with different clinical presentations, but not in TAV hamsters from T-strain that mainly exhibit WNT pathway downregulation. ConclusionsWe identify a combination of defective interconnected molecular pathways, directly linked to the central PI3K/AKT pathway, common to both BAV-associated TAD patients and hamsters. The defects indicate smooth muscle cell shift towards the synthetic phenotype induced by endothelial-to-mesenchymal transition, oxidative stress and inflammation. WNT signaling represent one genetic factor that may cause structural aortic abnormalities and aneurysm predisposition, whereas hemodynamics is the main trigger of molecular alterations, probably determining aortopathy progression. We identify twenty-seven novel potential biomarkers with a high predictive value.

molecular biology↗