Person: Mulero Méndez, Victoriano Francisco
Loading...
Name
Mulero Méndez, Victoriano Francisco
publication.page.department
Universidad de Murcia. Departamento de Biología Celular e Histología
- Publications
- item.page.relationships.isSecondaryAuthorOfPublication
- item.page.relationships.isDirectorOfPublication
Search Results
Now showing 1 - 9 of 9
- PublicationRestrictedThe colony-stimulating factor-1 receptor is a specific marker of macrophages from the bony fish gilthead seabream(Elsevier, 2005-08-30) Lopez-Castejón, Gloria; Meseguer Peñalver, J.; Mulero Méndez, Victoriano Francisco; Sepulcre Cortés, María Pilar; Roca Soler, Francisco José; Bioquímica y Biología Molecular B e InmunologíaWe report the molecular cloning of the colony-stimulating factor-1 receptor gene from the bony fish gilthead seabream (sbCSF-1R). The deduced sbCSF-1R shows a predicted signal sequence, a transmembrane domain and a tyrosine kinase domain, all in conserved positions. A transcript showing a premature stop codon that predicted the removal of 84 C-terminal amino acids was also found. RT-PCR expression studies demonstrate that, although the sbCSF-1R transcripts are found in different immune tissues, including gill, liver, spleen, blood, peritoneal exudate, thymus and head-kidney (HK), their expression is confined to the monocyte/macrophage lineage. Furthermore, the expression of sbCSF-1R might be modulated by the activation stage of the macrophages, since both the infection of fish and the in vitro activation of leukocytes resulted in the down-regulation of gene expression. These data indicate that the CSF-1R may be used as a specific probe for cells of the monocyte/macrophage lineage in the gilthead seabream, an immunological tractable fish model. In addition, the functional characterisation of the CSF-1R and its ligand may shed light into the mechanisms of proliferation and the pathways of differentiation of macrophages in bony fish.
- PublicationOpen AccessComunicaciones Póster.-Effects of 17α-ethinylestradiol in the immune system of the gilthead seabream (Sparus aurata L.) through mast cells(2020-05-29) Gómez González, Nuria E.; García-Alcázar, A.; García Ayala, Alfonsa; Mulero Méndez, Victoriano Francisco; Sepulcre Cortés, María Pilar; Facultades, Departamentos, Servicios y Escuelas::Departamentos de la UMU::Biología Celular e Histología
- PublicationRestrictedEvolution of Lipopolysaccharide (LPS) Recognition and Signaling: Fish TLR4 Does Not Recognize LPS and Negatively Regulates NF-κB Activation(American Association of Immunologists Oxford University Press, 2009-02-15) Alcaraz-Perez, Francisca; López-Muñoz, Azucena; Meseguer Peñalver, J.; Cayuela Fuentes, Maria Luisa; Mulero Méndez, Victoriano Francisco; Sepulcre Cortés, María Pilar; Roca Soler, Francisco José; Bioquímica y Biología Molecular B e InmunologíaIt has long been established that lower vertebrates, most notably fish and amphibians, are resistant to the toxic effect of LPS. Furthermore, the lack of a TLR4 ortholog in some fish species and the lack of the essential costimulatory molecules for LPS activation via TLR4 (i.e., myeloid differentiation protein 2 (MD-2) and CD14) in all the fish genomes and expressed sequence tag databases available led us to hypothesize that the mechanism of LPS recognition in fish may be different from that of mammals. To shed light on the role of fish TLRs in LPS recognition, a dual-luciferase reporter assay to study NF-κB activation in whole zebrafish embryos was developed and three different bony fish models were studied: 1) the gilthead seabream (Sparus aurata, Perciformes), an immunological-tractable teleost model in which the presence of a TLR4 ortholog is unknown; 2) the spotted green pufferfish (Tetraodon nigroviridis, Tetraodontiformes), which lacks a TLR4 ortholog; and 3) the zebrafish (Danio rerio, Cypriniformes), which possesses two TLR4 orthologs. Our results show that LPS signaled via a TLR4- and MyD88-independent manner in fish, and, surprisingly, that the zebrafish TLR4 orthologs negatively regulated the MyD88-dependent signaling pathway. We think that the identification of TLR4 as a negative regulator of TLR signaling in the zebrafish, together with the absence of this receptor in most fish species, explains the resistance of fish to endotoxic shock and supports the idea that the TLR4 receptor complex for LPS recognition arose after the divergence of fish and tetrapods.
- PublicationOpen AccessNeutrophils mediate Salmonella Typhimurium clearance through the GBP4 inflammasome-dependent production of prostaglandins(Nature Research, 2016-07-01) Martín Sánchez, María Rosario Fátima; Tyrkalska, Sylwia D.; Candel Camacho, Sergio; Angosto, Diego; Gómez Abellán, Victoria; García Moreno, Diana; Zapata Pérez, Rubén; Sánchez Ferrer, Álvaro; Pelegrín Vivancos, Pablo; Mulero Méndez, Victoriano Francisco; Sepulcre Cortés, María Pilar; FarmacologíaInflammasomes are cytosolic molecular platforms that alert the immune system about thepresence of infection. Here we report that zebrafish guanylate-binding protein 4 (Gbp4),an IFNg-inducible GTPase protein harbouring a C-terminal CARD domain, is required for theinflammasome-dependent clearance of Salmonella Typhimurium (ST) by neutrophils in vivo.Despite the presence of the CARD domain, Gbp4 requires the universal inflammasomeadaptor Asc for mediating its antibacterial function. In addition, the GTPase activity of Gbp4is indispensable for inflammasome activation and ST clearance. Mechanistically, neutrophilsare recruited to the infection site through the inflammasome-independent production of thechemokine (CXC motif) ligand 8 and leukotriene B4, and then mediate bacterial clearancethrough the Gbp4 inflammasome-dependent biosynthesis of prostaglandin D2. Our resultspoint to GBPs as key inflammasome adaptors required for prostaglandin biosynthesis andbacterial clearance by neutrophils and suggest that transient activation of the inflammasomemay be used to treat bacterial infections.
- PublicationRestrictedCharacterization of macrophages from the bony fish gilthead seabream using an antibody against the macrophage colony-stimulating factor receptor(Elsevier, 2008-04-07) Mulero Méndez, Iván; Meseguer Peñalver, J.; García Ayala, Alfonsa; Mulero Méndez, Victoriano Francisco; Sepulcre Cortés, María Pilar; Roca Soler, Francisco José; Bioquímica y Biología Molecular B e InmunologíaTwo major professional phagocyte populations have been described in fish, namely granulocytes and monocytes/macrophages. Although the distribution and localization of macrophages have been documented in several teleost species using mainly light and/or electron microscopy, the lack of appropriate markers for these cells has hampered our in-depth knowledge of their biology. We report here the generation of a monospecific rabbit polyclonal antibody against the gilthead seabream macrophage colony-stimulating factor receptor (Mcsfr), which is an excellent marker of macrophages in mammals and the zebrafish. The anti-Mcsfr has been found to be very useful in immunohistochemistry (IHC) to specifically immunostain the purified macrophages (adherent cells) obtained from the head-kidney as well as different cell populations in paraffin-embedded organs, including the head-kidney, spleen, thymus, gills and liver. Unexpectedly, however, no Mcsfr immunoreactive (Mcsfr+) cells were observed in the brain and intestine of the gilthead seabream. We also show that the distribution of Mcsfr+ cells in the head-kidney and the spleen is unaltered following infection with the fish pathogenic bacterium Vibrio anguillarum and that the Il1b-producing cells in these two organs after infection are exclusively acidophilic granulocytes. Finally, as the epitope recognized by the anti-Mcsfr is well conserved, we illustrate the potential usefulness of this antibody in other teleost species, such as the European seabass.
- PublicationRestrictedEvolution of the inflammatory response in vertebrates: fish TNF-α is a powerful activator of endothelial cells but hardly activates phagocytes(2008-10-01) Mulero Méndez, Iván; López-Muñoz, Azucena; Renshaw, Stephen A.; Meseguer Peñalver, J.; Mulero Méndez, Victoriano Francisco; Sepulcre Cortés, María Pilar; Roca Soler, Francisco José; Bioquímica y Biología Molecular B e InmunologíaTNF-α is conserved in all vertebrate classes and has been identified in all taxonomic groups of teleost fish. However, its biological activities and its role in infection are largely unknown. Using two complementary fish models, gilthead seabream and zebrafish, we report here that the main proinflammatory effects of fish TNF-α are mediated through the activation of endothelial cells. Thus, TNF-α promotes the expression of E-selectin and different CC and CXC chemokines in endothelial cells, thus explaining the recruitment and activation of phagocytes observed in vivo in both species. We also found that TLR ligands, and to some extent TNF-α, were able to increase the expression of MHC class II and CD83 in endothelial cells, which might suggest a role for fish endothelial cells and TNF-α in Ag presentation. Lastly, we found that TNF-α increases the susceptibility of the zebrafish to viral (spring viremia of carp virus) and bacterial (Streptococcus iniae) infections. Although the powerful actions of fish TNF-α on endothelial cells suggest that it might facilitate pathogen dissemination, it was found that TNF-α increased antiviral genes and, more importantly, had little effect on the viral load in early infection. In addition, the stimulation of ZF4 cells with TNF-α resulted in increased viral replication. Together, these results indicate that fish TNF-α displays different sorts of bioactivity to their mammalian counterparts and point to the complexity of the evolution that has taken place in the regulation of innate immunity by cytokines.
- PublicationOpen AccessEsferoides y esferas líquidas. Cultivos celulares en 3D para mimetizar el ambiente de las células en el organismo(Universidad de Murcia, 2015) Meseguer, José; Cuesta Peñafiel, Alberto; Esteban Abad, María de los Ángeles; Mulero Méndez, Victoriano Francisco; Sepulcre Cortés, María Pilar
- PublicationOpen AccessTNF receptors regulate vascular homeostasis in zebrafish through a caspase-8, caspase-2 and P53 apoptotic program that bypasses caspase-3(The Company of Biologists, 2013-03-01) Espín, Raquel; Roca Soler, Francisco José; Candel Camacho, Sergio; Sepulcre Cortés, María Pilar; González Rosa, Juan M.; Alcaraz Pérez, Francisca; Meseguer, José; Cayuela, María L.; Mercader, Nadia; Mulero Méndez, Victoriano Francisco; Biología Celular e HistologíaAlthough it is known that tumor necrosis factor receptor (TNFR) signaling plays a crucial role in vascular integrity and homeostasis, the contribution of each receptor to these processes and the signaling pathway involved are still largely unknown. Here, we show that targeted gene knockdown of TNFRSF1B in zebrafish embryos results in the induction of a caspase-8, caspase-2 and P53-dependent apoptotic program in endothelial cells that bypasses caspase-3. Furthermore, the simultaneous depletion of TNFRSF1A or the activation of NF-κB rescue endothelial cell apoptosis, indicating that a signaling balance between both TNFRs is required for endothelial cell integrity. In endothelial cells, TNFRSF1A signals apoptosis through caspase-8, whereas TNFRSF1B signals survival via NF-κB. Similarly, TNFα promotes the apoptosis of human endothelial cells through TNFRSF1A and triggers caspase-2 and P53 activation. We have identified an evolutionarily conserved apoptotic pathway involved in vascular homeostasis that provides new therapeutic targets for the control of inflammation- and tumor-driven angiogenesis.
- PublicationRestrictedEvolutionary conserved pro-inflammatory and antigen presentation functions of zebrafish IFN revealed by transcriptomic and functional analysis(Elsevier, 2011-02-26) Azucena López-Munoz; López Muñoz, Azucena; Sepulcre Cortés, María Pilar; Roca Soler, Francisco José; Figueras, Antonio; Meseguer, José; Mulero Méndez, Victoriano Francisco; Biología Celular e HistologíaIn mammals, IFNγ is the only type II IFN member, whereas most bony fish species have two IFNγ genes, namely IFNγ1 and IFNγ2. We report that both zebrafish IFNγ genes were unable to protect zebrafish larvae against viral infection, despite the fact that they moderately induced the expression of antiviral genes, strongly induced pro-inflammatory and antigen processing and presentation genes, and increased neutrophil numbers. Although both zebrafish IFNγs induced a similar set of immune genes, IFNγ1 was more powerful at inducing pro-inflammatory genes than IFNγ2, which correlated with its ability to promote larval death. Strikingly, IFNγ1-induced larval death was prevented by genetic ablation of the myeloid transcription factor SPI1 but not IL-1β or TNFα, suggesting that professional phagocytes are also one of the main targets of IFNγ in fish. In addition, the usefulness of the zebrafish for the identification of IFNγ-target genes is illustrated by the identification of several genes whose expression is also regulated in murine macrophages by IFNγ, namely two membrane-spanning 4-domain family members and the opioid growth factor receptor. Finally, we found for the first time that the thymic specific proteasome subunit PSMB11/β5t is regulated by IFNγ. Collectively, our data throw light on partially redundant functions of fish IFNγ genes, demonstrate that the pro-inflammatory and antigen presentation functions of IFNγ have been conserved during vertebrate evolution, and highlight the fact that zebrafish is an excellent model for studying IFNγ biology.
Ir a Estadísticas
Sin licencia Creative Commons.






