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Tartiere, A. G.

Publications and source records attributed to Tartiere, A. G..

2 recordsLinked to original sources

The aging modulator miR-29 is essential for adult cardiomyocyte function

Aging is the main risk factor for cardiovascular diseases, underscoring the need to identify the molecular regulators that sustain cardiac function during aging. The microRNA miR-29 is a well-established aging-associated regulator as its expression increases with age, and its overexpression promotes premature aging. Here, we define the cardiomyocyte-autonomous role of miR-29 in the adult heart by generating an inducible, cardiomyocyte-specific miR-29-deficient mouse model (Heart-iKO). We show that Heart-iKO mice develop dilated cardiomyopathy (DCM) with reduced ejection fraction that ultimately leads to premature death. Mechanistically, Heart-iKO cardiomyocytes exhibit alterations in mitochondrial structure and function. Transcriptomic profiling of bulk heart tissue and isolated cardiomyocytes revealed a consistent downregulation of genes involved in oxidative phosphorylation and the electron transport chain. We further observed a similar pattern of mitochondrial impairment in miR-29-deficient human cardiomyocytes derived from induced pluripotent stem cells (CM-iPSCs). Together, these findings highlight the context-dependent role of miR-29 in cardiac physiology and aging: although its upregulation promotes premature aging, its basal expression is required to maintain mitochondrial homeostasis and prevent heart failure in the adult myocardium.

physiology↗

FAβ-gal: an automated fluorescence-based quantification of the senescence-associated beta-galactosidase X-gal assay

Cellular senescence plays a pivotal role in aging and cancer, two major biomedical and socioeconomic challenges of our time. Therefore, its study has become crucial for the design of interventions based on its manipulation. In this sense, researchers have developed a wide variety of techniques to detect and quantify cellular senescence. Among them, the most popular is the original Senescence-Associated {beta}-galactosidase (SA-{beta}-gal) colorimetric assay, based on the use of the chromogenic substrate X-gal. This compound is cleaved by {beta}-galactosidase, producing an insoluble, blue precipitate of 5,5-dibromo-4,4-dichloro-indigo (commonly referred to as indigo). While this method remains the gold standard senescence assay, its quantification remains challenging due to the color-based readout. In this work, we describe a method, which we have named FA{beta}-gal (Fluorescence Analysis of {beta}-galactosidase), that exploits the far-red fluorescence of the {beta}-gal product indigo and allows the quantification of SA-{beta}-gal activity under any conventional wide-field fluorescence microscopy using the original X-gal assay. In addition, we developed workflows and software applications that standardize SA-{beta}-gal quantification in a semiautomatic and unbiased manner. We demonstrate that FA{beta}-gal measurements present a strong linear correlation with the percentage of senescent cells and show high sensitivity. Moreover, we show that this method is also applicable to tissue sections, underscoring the versatility of our approach. Therefore, FA{beta}-gal could be easily introduced into the routine of laboratories already using the original colorimetric assay, enhancing the accuracy, sensitivity and reproducibility of senescence detection.

cell biology↗