EZQUER, EDUARDO MARCELO
Preferred name
EZQUER, EDUARDO MARCELO
Main Affiliation
Email
mezquer@udd.cl
ORCID
0000-0002-2064-3041
Scopus Author ID
6508169657
82 results
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Item type:Publication, Gut Microbiota‐Derived Extracellular Vesicles Influence Alcohol Intake Preferences in Rats(Wiley, 2025-03) ;Macarena Díaz‐Ubilla ;Aliosha I. Figueroa‐Valdés ;Hugo E. Tobar ;María Elena QuintanillaEugenio Díaz<jats:title>ABSTRACT</jats:title><jats:p>Growing preclinical and clinical evidence suggests a link between gut microbiota dysbiosis and problematic alcohol consumption. Extracellular vesicles (EVs) are key mediators involved in bacteria‐to‐host communication. However, their potential role in mediating addictive behaviour remains unexplored. This study investigates the role of gut microbiota‐derived bacterial extracellular vesicles (bEVs) in driving high alcohol consumption. bEVs were isolated from the gut microbiota of a high alcohol‐drinking rat strain (UChB rats), either ethanol‐naïve or following chronic alcohol consumption and administered intraperitoneally or orally to alcohol‐rejecting male and female Wistar rats. Both types of UChB‐derived bEVs increased Wistar's voluntary alcohol consumption (three bottle choice test) up to 10‐fold (<jats:italic>p</jats:italic> < 0.0001), indicating that bEVs are able and sufficient to transmit drinking behaviour across different rat strains. Molecular analysis revealed that bEVs administration did not induce systemic or brain inflammation in the recipient animals, suggesting that the increased alcohol intake triggered by UChB‐derived bEVs operates through an inflammation‐independent mechanism. Furthermore, we demonstrate that the vagus nerve mediates the bEV‐induced increase in alcohol consumption, as bilateral vagotomy completely abolished the high drinking behaviour induced by both intraperitoneally injected and orally administered bEVs. Thus, this study identifies bEVs as a novel mechanism underlying gut microbiota‐induced high alcohol intake in a vagus nerve‐dependent manner.</jats:p>7 - Some of the metrics are blocked by yourconsent settings
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Item type:Publication, Intravitreal administration of multipotent mesenchymal stromal cells triggers a cytoprotective microenvironment in the retina of diabetic mice(2016); ;Cristhian A. Urzua ;Scarleth Montecino ;Karla Leal<jats:title>Abstract</jats:title><jats:sec> <jats:title>Background</jats:title> <jats:p>Diabetic retinopathy is a common complication of diabetes and the leading cause of irreversible vision loss in the Western world. The reduction in color/contrast sensitivity due to the loss of neural cells in the ganglion cell layer of the retina is an early event in the onset of diabetic retinopathy. Multipotent mesenchymal stromal cells (MSCs) are an attractive tool for the treatment of neurodegenerative diseases, since they could differentiate into neuronal cells, produce high levels of neurotrophic factors and reduce oxidative stress. Our aim was to determine whether the intravitreal administration of adipose-derived MSCs was able to prevent the loss of retinal ganglion cells in diabetic mice.</jats:p> </jats:sec><jats:sec> <jats:title>Methods</jats:title> <jats:p>Diabetes was induced in C57BL6 mice by the administration of streptozotocin. When retinal pro-damage mechanisms were present, animals received a single intravitreal dose of 2 × 10<jats:sup>5</jats:sup> adipose-derived MSCs or the vehicle. Four and 12 weeks later we evaluated: (a) retinal ganglion cell number (immunofluorescence); (b) neurotrophic factor levels (real-time quantitative polymerase chain reaction (RT-qPCR) and enzyme-linked immunosorbent assay (ELISA)); (c) retinal apoptotic rate (TUNEL); (d) retinal levels of reactive oxygen species and oxidative damage (ELISA); (e) electrical response of the retina (electroretinography); (f) pro-angiogenic and anti-angiogenic factor levels (RT-qPCR and ELISA); and (g) retinal blood vessels (angiography). Furthermore, 1, 4, 8 and 12 weeks post-MSC administration, the presence of donor cells in the retina and their differentiation into neural and perivascular-like cells were assessed (immunofluorescence and flow cytometry).</jats:p> </jats:sec><jats:sec> <jats:title>Results</jats:title> <jats:p>MSC administration completely prevented retinal ganglion cell loss. Donor cells remained in the vitreous cavity and did not differentiate into neural or perivascular-like cells. Nevertheless, they increased the intraocular levels of several potent neurotrophic factors (nerve growth factor, basic fibroblast growth factor and glial cell line-derived neurotrophic factor) and reduced the oxidative damage in the retina. Additionally, MSC administration has a neutral effect on the electrical response of the retina and did not result in a pathological neovascularization.</jats:p> </jats:sec><jats:sec> <jats:title>Conclusions</jats:title> <jats:p>Intravitreal administration of adipose-derived MSCs triggers an effective cytoprotective microenvironment in the retina of diabetic mice. Thus, MSCs represent an interesting tool in order to prevent diabetic retinopathy.</jats:p> </jats:sec>1Scopus© Citations 109 1 - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Improving Cell Recovery: Freezing and Thawing Optimization of Induced Pluripotent Stem Cells(2022) ;Markus Uhrig; <jats:p>Achieving good cell recovery after cryopreservation is an essential process when working with induced pluripotent stem cells (iPSC). Optimized freezing and thawing methods are required for good cell attachment and survival. In this review, we concentrate on these two aspects, freezing and thawing, but also discuss further factors influencing cell recovery such as cell storage and transport. Whenever a problem occurs during the thawing process of iPSC, it is initially not clear what it is caused by, because there are many factors involved that can contribute to insufficient cell recovery. Thawing problems can usually be solved more quickly when a certain order of steps to be taken is followed. Under optimized conditions, iPSC should be ready for further experiments approximately 4–7 days after thawing and seeding. However, if the freezing and thawing protocols are not optimized, this time can increase up to 2–3 weeks, complicating any further experiments. Here, we suggest optimization steps and troubleshooting options for the freezing, thawing, and seeding of iPSC on feeder-free, Matrigel™-coated, cell culture plates whenever iPSC cannot be recovered in sufficient quality. This review applies to two-dimensional (2D) monolayer cell culture and to iPSC, passaged, frozen, and thawed as cell aggregates (clumps). Furthermore, we discuss usually less well-described factors such as the cell growth phase before freezing and the prevention of osmotic shock during thawing.</jats:p>6Scopus© Citations 34 - Some of the metrics are blocked by yourconsent settings
Item type:Publication, N-Acetylcysteine and Acetylsalicylic Acid Inhibit Alcohol Consumption by Different Mechanisms: Combined Protection(2020) ;María Elena Quintanilla; ;Paola Morales; Scopus© Citations 21 1 - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Editorial: Neuroinflammation: mechanisms and therapeutic interventions(Frontiers Media SA, 2026-03-24) ;Ma. Cecilia Opazo; ;Mayra A. Machuca1 - Some of the metrics are blocked by yourconsent settings
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Item type:Publication, Diabetic nephropathy, autophagy and proximal tubule protein endocytic transport: A potentially harmful relationship(2018) ;Maximiliano GIRAUD-BILLOUD ;Claudio M. FADER ;Roc韔 AG蹺RO; 14Scopus© Citations 10