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Martin-Garrido, A.

Publications and source records attributed to Martin-Garrido, A..

2 recordsLinked to original sources

FYCO1 improves postischemic cardiac remodeling via enhanced autophagic flux and attenuation of proinflammatory signaling

Acute myocardial infarction (MI) is associated with severe metabolic and oxidative stress that triggers cardiomyocyte death, pro-inflammatory signaling and progressive structural remodeling frequently culminating in heart failure. Although significant advances in reperfusion therapy improved acute survival in patients, therapeutic strategies that directly target intracellular processes in response to injury remain limited. One key response mechanism, autophagy, is rapidly activated to ameliorate ischemic stress. Yet, defective autophagic flux may exacerbate cardiomyocyte injury and maladaptive tissue remodeling. Here we identify FYCO1 as a cardiomyocyte-enriched key regulator of autophagy that enhances autophagic flux and promotes myocardial resilience following ischemic injury. Using cardiomyocyte-specific FYCO1 transgenic mice subjected to permanent coronary ligation, we demonstrate that FYCO1 overexpression limits infarct expansion, reduces cardiomyocyte injury, and preserves cardiac function during remodeling. In vivo RFP-EGFP-LC3 autophagy reporter analyses reveal that FYCO1 promotes a sustained increase of autophagic flux by coordinating autophagosome formation and efficient autolysosomal clearance. Transcriptomic profiling identifies a cardioprotective gene program in FYCO1-Tg animals subjected to MI, with suppression of proinflammatory, proapoptotic and stress-response pathways. Systemic serum cytokine and chemokine profiling as well as transcriptomic analyses of myocardium confirm reduced inflammatory signaling and subsequent reduction in macrophage recruitment into the infarct border zone. Together these findings position FYCO1 as a key regulator of cardiomyocyte autophagy and reveal a previously unrecognized link between autophagy and inflammation in shaping cardiac remodeling following myocardial infarction. FYCO1-mediated autophagy promotes myocardial preservation and functional recovery, highlighting autophagic flux as a promising target for cardioprotective interventions.

molecular biology↗

Loss of cardiomyocyte eukaryotic elongation factor 1 A2 in adult mice triggers cardiomyopathy due to defective proteostasis

Eukaryotic elongation factor 1A (eEF1A) delivers aminoacyl-tRNAs to ribosomes but also has additional, non-canonical functions. Mammals express two paralogs: eEF1A1 is ubiquitous, whereas eEF1A2 is confined to adult cardiomyocytes, skeletal myocytes, and neurons. Mutations in EEF1A2 cause cardiomyopathy, but underlying mechanisms remain unclear. Using adult, cardiomyocyte-specific Eef1a2 knock-out (Eef1a2-cKO) and Eef1a1/Eef1a2 double knock-out mice, we show that Eef1a2-cKO animals develop cardiomyopathy with increased mortality, systolic dysfunction, and fibrosis, despite unchanged global protein synthesis, while double knock-out mice die early in a sudden manner. Multi-omics analyses reveal post-transcriptional upregulation of ribosomal proteins and translational regulators in both models. Eef1a2-cKO hearts accumulate autophagosomes and protein aggregates, indicating defective autophagy. Mechanistically, we found that eEF1A2 functions as a chaperone supporting protein folding and proteostasis in cardiomyocytes. Early Rapamycin treatment (mTORC1 inhibition) normalizes systolic heart function and survival in Eef1a2-cKO mice and clears autophagosomes and protein aggregates. Thus, eEF1A2 maintains cardiac proteostasis, and mTORC1 inhibition may represent a therapeutic strategy for patients with EEF1A2 mutations.

physiology↗