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Fernandez-Lajarin, M.

Publications and source records attributed to Fernandez-Lajarin, M..

2 recordsLinked to original sources

High levels of the cardiomyocyte-specific kinase Tnni3k impair zebrafish heart regeneration by driving chronic myocardial inflammation

Background: Zebrafish regenerate their hearts after injury, and defining the barriers that block this capacity in mammals may reveal targets for heart failure treatment. Elevated levels of the cardiomyocyte-specific kinase TNNI3K are associated with human cardiomyopathy, and its overexpression drives adverse remodeling in mice. Recent work has linked elevated TNNI3K to cardiomyocyte polyploidization and loss of regenerative competence, but whether this cell-cycle effect accounts for the pathology seen in patients has not been established. Because TNNI3K is restricted to cardiomyocytes, whether it also acts non-cell-autonomously is unknown. Methods: We generated an allelic series of zebrafish lines comprising cardiomyocyte-specific Tnni3k overexpression, an expression-matched kinase-dead variant, a full-locus deletion, and a line overexpressing mouse Tnni3k. Regeneration, cardiomyocyte proliferation, and ploidy were assessed in uninjured hearts and after cryoinjury. We combined ventricular RNA-sequencing, macrophage depletion before or after injury, tamoxifen-inducible Cre-lox switches, and cardiomyocyte-restricted CRISPR mutagenesis. Hearts from mice overexpressing human TNNI3K were analyzed in parallel. Results: Elevated Tnni3k impaired heart regeneration in a kinase-dependent manner. Cardiomyocyte proliferation, redifferentiation, and productive cell division were preserved, and polyploidization remained well below the threshold compatible with robust regeneration, arguing against a cell-cycle defect. Instead, Tnni3k overexpression established an inflammatory and fibrotic state in the uninjured myocardium, marked by interferon, NF-{kappa}B, and antigen-presentation programs and by leukocyte and macrophage accumulation. This state amplified after injury, and these animals retained substantially more scar at 60 days post-injury. Depleting macrophages before injury, but not after, prevented the excess fibrosis. Switching Tnni3k off after injury attenuated both inflammation and fibrosis. Cardiomyocyte-specific deletion of pkmb, a glycolytic gene strongly repressed in Tnni3k-overexpressing animals and previously associated with inflammation, reproduced both phenotypes. Mice overexpressing TNNI3K showed comparable fibrosis and macrophage accumulation. Conclusions: Elevated Tnni3k impairs cardiac regeneration by sustaining a chronic inflammatory and fibrotic state rather than by driving polyploidization. Because this state requires continued kinase activity and remains reversible after injury, TNNI3K inhibition may warrant exploration as a strategy to interrupt the inflammation-fibrosis loop in inflammation-driven cardiac disease.

developmental biology↗

Optimization of methods for rapid and robust generation of cardiomyocyte-specific crispants in zebrafish using the cardiodeleter system

CRISPR/Cas9 has massively accelerated the generation of gene loss-of-function models in zebrafish. However, establishing tissue-specific mutant lines remains a laborious and time-consuming process. Although a few dozen tissue-specific Cas9 zebrafish lines have been developed, the lack of standardization of some key methods, including gRNA delivery, has limited the implementation of these approaches in the zebrafish community. To tackle these limitations, we have established a cardiomyocyte-specific Cas9 line, the cardiodeleter, which efficiently generates biallelic mutations in combination with gene-specific gRNAs. We have also optimized the development of transposon-based guide shuttles that carry gRNAs targeting a gene of interest and permanently label the cells susceptible to becoming mutant. We validated this modular approach by deleting five genes (ect2, tnnt2a, cmlc2, amhc, and erbb2), all resulting in the loss of the corresponding protein or phenocopying established mutants. Additionally, we provide detailed protocols describing how to generate guide shuttles, which will facilitate the dissemination of these techniques in the zebrafish community. Our approach enables the rapid generation of tissue-specific crispants and analysis of mosaic phenotypes, bypassing limitations such as embryonic lethality, making it a valuable tool for cell-autonomous studies and genetic screenings.

developmental biology↗