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Martin-Mur, B.

Publications and source records attributed to Martin-Mur, B..

2 recordsLinked to original sources

Early downregulation of HC-specific genes in the vestibular sensory epithelium during chronic ototoxicity

Exposure of mammals to ototoxic compounds causes hair cell (HC) loss in the vestibular sensory epithelia of the inner ear. In chronic exposure models, this loss often occurs by extrusion of the HC from the sensory epithelium towards the luminal cavity. HC extrusion is preceded by several steps that begin with detachment and synaptic uncoupling of the cells from the afferent terminals of their postsynaptic vestibular ganglion neurons. The purpose of this study was to identify gene expression mechanisms that drive these responses to chronic ototoxic stress. We conducted four RNA-seq experiments that generated five comparisons of control versus treated animals. These involved two species (rat and mouse), two compounds (streptomycin and 3,3-iminodipropionitrile, IDPN), and three time points in our rat/IDPN model. We compared differentially expressed genes and their associated Gene Ontology terms, and several genes of interest were validated by in-situ hybridisation and immunofluorescence analyses. Common and model-unique expression responses were identified. The earliest and most robust common response was downregulation of HC-specific genes, including stereocilium (Atp2b2, Xirp2), synaptic (Nsg2), and ion channel genes (Kcnab1, Kcna10), together with new potential biomarkers of HC stress (Vsig10l2). A second common response across species and compounds was the upregulation of the stress mediator Atf3. Model- or time-restricted responses included downregulation of cell-cell adhesion and mitochondrial ATP synthesis genes, and upregulation of the interferon response, unfolded protein response, and tRNA aminoacylation genes. The present results provide key information on the responses of the vestibular sensory epithelium to chronic ototoxic stress, potentially relevant to other types of chronic stress.

neuroscience↗

The hepatocyte Epidermal Growth Factor Receptor (EGFR) pathway regulates the cellular interactome within the liver fibrotic niche

Background & AimsLiver fibrosis is the consequence of chronic liver injury in the presence of an inflammatory component. Although the main executors of this activation are known, the mechanisms that lead to the inflammatory process that mediates the production of profibrotic factors are not well characterized. The Epidermal Growth Factor Receptor (EGFR) signaling in hepatocytes is essential for the regenerative process of the liver; however, its potential role in regulating the fibrotic niche is not yet clear. Approach & ResultsOur group generated a mouse model that expresses an inactive truncated form of the EGFR specifically in hepatocytes ({Delta}EGFR mice). Here, we have analyzed the response of WT and {Delta}EGFR mice to chronic treatment with CCl4. Resultsindicated that the hallmarks of liver fibrosis were attenuated in CCl4-treated {Delta}EGFR mice when compared to WT mice, coinciding with a faster resolution of the fibrotic process and an ameliorated damage. The absence of EGFR activity in hepatocytes induced changes in the pattern of immune cells in the liver, with a notable change in the population of M2 macrophages, more related to fibrosis resolution, as well as an increase in the population of lymphocytes related to eradication of the damage. Transcriptomic analysis of hepatocytes and secretome studies from extracellular media in in vitro studies allowed to elucidate the specific molecular mechanisms regulated by EGFR that mediate hepatocyte production of both pro-inflammatory and pro-fibrotic mediators. ConclusionsOur results support a pro-inflammatory and pro-fibrogenic role for the hepatocyte EGFR pathway during chronic liver damage.

pathology↗