Antibiotic Resistance
Research Lines
Content with Investigacion .
Research Lines:
1. Molecular mechanisms associated to the protection of HIV-1 infection in limb-girdle muscular dystrophy dominant D2 (LGMDD2) patients.
2. Generation of neutralizing antibodies for therapeutic use based on the broad-spectrum neutralizing response against founder viruses.
3. Characterization of the immune memory against SARS-CoV-2 in a population over 65 years of age.
4. Screening and characterization of new anti-latency drugs against HIV-1.
5. Study of viral entry and HIV tropism in viruses of special epidemiological relevance in Spain.
6. Genetic mechanisms of protection and control of HIV-1 infection in populations with extreme phenotypes.
Clinical studies:
1. Phase 1 clinical trial to evaluate the safety and immunogenicity of HIV-1 envelope-based 763SIP8/MPLA-5 vaccine as a preventive vaccine in healthy uninfected adults.
2. ENE-COVID-Senior: Prospective observational study in a cohort of elderly nursing home residents to establish their immune status after receiving a complete vaccination regimen.
Implementation of new technologies:
1. Identification of HIV-1 integration sites by deep sequencing.
2. Single cell transcriptomics with simultaneous TCR/BCR sequencing.
3. Epidemiological intelligence for prediction of SARS-CoV-2 variants likely to emerge in different vaccination settings.
Research projects
Content with Investigacion .
1. Immune response to SARS-CoV-2 infection: effect in naïve vaccinees and seropositives against the most transmissible variants and relevance of host genetics.
Principal Investigator: Javier García Pérez.
Funding Agency: Acción Estratégica en Salud Intramural 2021(ISCIII)
Funding: 135.000 €
Duration: 2022-2025.
Project Reference: PI21CIII/00025.
2. Design and generation of viral stocks of new SARS-CoV-2 variants (omicron subvariants) and analysis of their susceptibility to antibodies neutralization.
Principal Investigator: Javier García Pérez.
Funding Agency: Hipra Scientific S.L.U.
Funding: 103.771 €
Duration: 2023-2025.
Project Reference: MVP 198/23.
3. Characterization of a mutation in transportin 3 that protects against HIV infection: molecular mechanisms and discovery of new drugs.
Principal Investigator: José Alcamí y Javier García Pérez.
Funding Agency: Proyectos de I+D+I, Generación de Conocimiento y Retos Investigación de la Agencia Estatal de Investigación.
Funding: 240.000 €
Duration: 2022-2026.
Project Reference: PID2021-125978OB-C21 funded by MICIU/AEI/10.13039/501100011033 and by FEDER, UE
4. Generation of immunogens based on HIV-1 envelopes from acutely infected individuals with a broad neutralizing response against founder viruses.
Principal investigator: Nuria González Fernández.
Funding Agency: Acción Estratégica en Salud Intramural 2023 (ISCIII)
Funding: 82.000 €
Duration: 2024-2026.
Project Reference: PI23CIII/00039.
5. Phase 1 clinical trial to evaluate the safety and immunogenicity of HIV-1 envelope-based 763SIP8/MPLA-5 vaccine.
Principal Investigator: Josep Mallolas Masferrer.
Funding Agency: Proyectos de Investigación Clínica Independiente, Acción Estratégica en Salud 2021-2023 (ISCIII).
Funding: 173.200 €
Duration: 2024-2026.
Project Reference: ICI23/00025.
6. Service of immunological determinations of the ENE-COVID SENIOR II protocol.
Principal Investigator: Mayte Pérez Olmeda y Javier García Pérez.
Funding Agency: Fundación para la investigación biomédica del Hospital Universitario La Paz
Funding: 185.037 €
Duration: 2024-2025.
Project Reference: MOTR 219/24.
7. Characterization of the immune memory against SARS-CoV-2 in a population over 65 years of age using single cell transcriptomics.
Principal Investigator: Javier García Pérez y Francisco Díez Fuertes.
Funding Agency: Acción Estratégica en Salud Intramural 2021(ISCIII)
Funding: 152.000 €
Duration: 2025-2027.
Project Reference: PI24CIII/00058
8. Evaluation of rimonabant and cannbinooid analogues in HIV infection and viral latency.
Principal Investigator: Luis Miguel Bedoya del Olmo.
Funding Agency: Universidad Complutense de Madrid
Funding: 12.000 €
Duration: 2024-2025.
Project Reference: PR12/24-31553.
9. Discovery of new inhibitors of HIV-1 RNA biogenesis based on blocking the ribonucleoprotein RRE-Rev.
Principal Investigator: José Gallego Sala. Associate Researcher: Luis Miguel Bedoya del Olmo
Funding Agency: Department of Innovation, Universities, Science and Digital Society. Generalitat Valenciana.
Funding: 543,683.84 €
Duration: 2025-2027.
Project Reference: PROMETEO/2021/036.
Publications
Cryo-EM near-atomic structure of a dsRNA fungal virus shows ancient structural motifs preserved in the dsRNA viral lineage.
Luque D., Gómez-Blanco J., Garriga D., Brilot A.F., González J.M., Havens W.M., Carrascosa J.L., Trus B.L., Verdaguer N., Ghabrial S.A., Castón J.R. 2014. Cryo-EM near-atomic structure of a dsRNA fungal virus shows ancient structural motifs preserved in the dsRNA viral lineage. Proc Natl Acad Sci U S A 111(21):7641-7646. IF: 9.674, D1
PUBMED DOINew insights into rotavirus entry machinery: stabilization of rotavirus spike conformation is independent of trypsin cleavage
Rodríguez J.M., Chichón F.J., Martín-Forero E., González-Camacho F., Carrascosa J.L., Castón J.R., Luque D*. 2014. New insights into rotavirus entry machinery: stabilization of rotavirus spike conformation is independent of trypsin cleavage. PLoS Pathog. 10(5):e1004157. IF: 7.562, D1. * Corresponding autor.
PUBMED DOIEfficacy and safety assessment of a TRAF6-targeted nanoimmunotherapy in atherosclerotic mice and non-human primates.
3. Lameijer M, Binderup T, van Leent M, Senders M, Fay F. Seijkens T, Kroon J, Stroes E, Kjaer A, Ochando J, Reiner T, Pérez-Medina C, Calcagno C, Fischer E, Zhang B, Temel R, Swirski F, Nahrendorf M, Fayad Z, Lutgens E, Mulder W and Duivenvoorden R. Efficacy and safety assessment of a TRAF6-targeted nanoimmunotherapy in atherosclerotic mice and non-human primates. Nature Biomedical Engineering. 2018. 2: 279–292.
PUBMED DOINeutrophil derived CSF1 induces macrophage polarization and promotes transplantation tolerance.
4. Braza MS, Conde P, Garcia MR, Cortegano I, Brahmachary M, Pothula V, Fay F, Boros P, Werner SW, Ginhoux F, Mulder WJ, and Ochando J. Neutrophil derived CSF1 induces macrophage polarization and promotes transplantation tolerance. Am J Transplant. 2018.
PUBMED DOIDC-SIGN(+) Macrophages Control the Induction of Transplantation Tolerance
9. Conde P, Rodriguez M, van der Touw W, Jimenez A, Burns M, Miller J, Brahmachary M, Chen HM, Boros P, Rausell-Palamos F, Yun TJ, Riquelme P, Rastrojo A, Aguado B, Stein-Streilein J, Tanaka M, Zhou L, Zhang J, Lowary TL, Ginhoux F, Park CG, Cheong C, Brody J, Turley SJ, Lira SA, Bronte V, Gordon S, Heeger PS, Merad M, Hutchinson J, Chen SH, Ochando J. 2015. DC-SIGN(+) Macrophages Control the Induction of Transplantation Tolerance. Immunity. 16;42(6):1143-58.
PUBMED DOIProteomic characterisation of bovine and avian purified protein derivatives and identification of specific antigens for serodiagnosis of bovine tuberculosis
2.- Proteomic characterisation of bovine and avian purified protein derivatives and identification of specific antigens for serodiagnosis of bovine tuberculosis. Antonio Infantes-Lorenzo, Jose; Moreno, Inmaculada; Angeles Risalde, Maria; et ál. CLINICAL PROTEOMICS Volumen: 14 Número de artículo: 36 Fecha de publicación: NOV 2 2017
PUBMED DOIFunctional and structural characterization of four mouse monoclonal antibodies to complement C3 with potential therapeutic and diagnostic applications.
3.- Functional and structural characterization of four mouse monoclonal antibodies to complement C3 with potential therapeutic and diagnostic applications. Subias Hidalgo, Marta; Yebenes, Hugo; Rodriguez-Gallego, Cesar; et ál..EUROPEAN JOURNAL OF IMMUNOLOGY Volumen: 47 Número: 3 Páginas: 504-515 Fecha de publicación: MAR 2017
PUBMED DOIImmunoproteomic characterisation of Mycoplasma mycoides subspecies capri by mass spectrometry analysis of two- dimensional electrophoresis spots and western blot
5.- Immunoproteomic characterisation of Mycoplasma mycoides subspecies capri by mass spectrometry analysis of two- dimensional electrophoresis spots and western blot. Churchward, Colin P.; Rosales, Ruben S.; Gielbert, Adriana; et ál..JOURNAL OF PHARMACY AND PHARMACOLOGY Volumen: 67 Número: 3 Número especial: SI Páginas: 364-371 Fecha de publicación: MAR 2015
PUBMED DOIEfficacy of low doses of amphotericin B plus allicin against experimental visceral leishmaniasis.
6.- Efficacy of low doses of amphotericin B plus allicin against experimental visceral leishmaniasis. Corral, M. Jesus; Serrano, Dolores R.; Moreno, Inmaculada; et ál..JOURNAL OF ANTIMICROBIAL CHEMOTHERAPY Volumen: 69 Número: 12 Páginas: 3268-3274 Fecha de publicación: DEC 2014
PUBMED DOIA Novel Antibody against Human Factor B that Blocks Formation of the C3bB Proconvertase and Inhibits Complement Activation in Disease Models
7.- A Novel Antibody against Human Factor B that Blocks Formation of the C3bB Proconvertase and Inhibits Complement Activation in Disease Models. Subias, Marta; Tortajada, Agustin; Gastoldi, Sara; et ál..JOURNAL OF IMMUNOLOGY Volumen: 193 Número: 11 Páginas: 5567-5575 Fecha de publicación: DEC 2014
PUBMED DOIDetection of anti-Leishmania infantum antibodies in sylvatic lagomorphs from an epidemic area of Madrid using the indirect immunofluorescence antibody test
8.- Detection of anti-Leishmania infantum antibodies in sylvatic lagomorphs from an epidemic area of Madrid using the indirect immunofluorescence antibody test. Moreno, Inmaculada; Alvarez, Julio; Garcia, Nerea; et ál..VETERINARY PARASITOLOGY Volumen: 199 Número: 3-4 Páginas: 264-267 Fecha de publicación: 2014
PUBMED DOIEvidence of Leishmania infantum Infection in Rabbits (Oryctolagus cuniculus) in a Natural Area in Madrid, Spain.
9.- Evidence of Leishmania infantum Infection in Rabbits (Oryctolagus cuniculus) in a Natural Area in Madrid, Spain. Garcia, Nerea; Moreno, Inmaculada; Alvarez, Julio; et ál..BIOMED RESEARCH INTERNATIONAL Número de artículo: 318254 Fecha de publicación: 2014
PUBMED DOIMucus-Activatable Shiga Toxin Genotype stx2d in Escherichia coli O157:H7
2. Sánchez, S., Llorente, M.T., Herrera-León, L., Ramiro, R., Nebreda, S., Remacha, M.A., Herrera-León, S. Mucus-activatable shiga toxin genotype stx2d in Escherichia coli O157:H7. (2017) Emerging Infectious Diseases, 23 (8), pp. 1431-1433.
PUBMED DOIMultinational outbreak of travel-related Salmonella Chester infections in europe, summers 2014 and 2015
3. Fonteneau, L., Da Silva, N.J., Fabre, L., Ashton, P., Torpdahl, M., Müller, L., Bouchrif, B., El Boulani, A., Valkanou, E., Mattheus, W., Friesema, I., Herrera Leon, S., Varela Martínez, C., Mossong, J., Severi, E., Grant, K., Weill, F., Gossner, C.M., Bertrand, S., Dallman, T., Le Hello, S. Multinational outbreak of travel-related Salmonella Chester infections in europe, summers 2014 and 2015. (2017) Eurosurveillance, 22 (7).
PUBMED DOIProspective use of whole genome sequencing (WGS) detected a multi-country outbreak of Salmonella Enteritidis
4. Inns, T., Ashton, P.M., Herrera-Leon, S., Lighthill, J., Foulkes, S., Jombart, T., Rehman, Y., Fox, A., Dallman, T., De Pinna, E., Browning, L., Coia, J.E., Edeghere, O., Vivancos, R. Prospective use of whole genome sequencing (WGS) detected a multi-country outbreak of Salmonella Enteritidis (2017) Epidemiology and Infection, 145 (2), pp. 289-298.
PUBMED DOIPlasmid-mediated quinolone resistance in different diarrheagenic Escherichia coli pathotypes responsible for complicated, noncomplicated, and traveler's diarrhea cases.
5. Herrera-Leon, S., Llorente, M.T., Sanchez, S. Plasmid-mediated quinolone resistance in different diarrheagenic Escherichia coli pathotypes responsible for complicated, noncomplicated, and traveler's diarrhea cases. (2016) Antimicrobial Agents and Chemotherapy, 60 (3), pp. 1950-1951.
PUBMED DOIMolecular Epidemiology and Antibiotic Susceptibility of Vibrio cholerae Associated with a Large Cholera Outbreak in Ghana in 2014.
6. Eibach, D., Herrera-León, S., Gil, H., Hogan, B., Ehlkes, L., Adjabeng, M., Kreuels, B., Nagel, M., Opare, D., Fobil, J.N., May, J. Molecular Epidemiology and Antibiotic Susceptibility of Vibrio cholerae Associated with a Large Cholera Outbreak in Ghana in 2014. (2016) PLoS Neglected Tropical Diseases, 10 (5).
PUBMED DOIAdditional Information
Our general objective is to provide early knowledge about any emerging antibiotic resistance mechanism in our country. This contribution of knowledge is based on transversal objectives that we consider key, such as 1) the ability to adapt research to emerging resistance problems, 2) the promotion of cooperative and multidisciplinary research studies working in networks with different Spanish and foreign centers, 3) the transfer of research results in an agile way to the clinical practice of the national health system, and 4) the promotion of the interrelation of research with reference, advice, training and dissemination seeking the empowerment of all.
More specifically, our main scientific objectives are the characterization of the molecular bases of antibiotic resistance in pathogenic bacteria, the study of the molecular epidemiology and population structure of resistant bacteria, the characterization of the mobile genetic elements that carry resistance genes, and the development of diagnostic techniques and therapeutic alternatives against bacteria with extensive resistance to antibiotics. In this sense, research into the dissemination pathways of Enterobacteriaceae, Acinetobacter baumannii and carbapenemase-producing Pseudomonas aeruginosa (as a paradigm of extensive resistance and pan-resistance) is one of our current priority objectives.
Our general objective is to provide early knowledge about any emerging antibiotic resistance mechanism in our country. This contribution of knowledge is based on transversal objectives that we consider key, such as 1) the ability to adapt research to emerging resistance problems, 2) the promotion of cooperative and multidisciplinary research studies working in networks with different Spanish and foreign centers, 3) the transfer of research results in an agile way to the clinical practice of the national health system, and 4) the promotion of the interrelation of research with reference, advice, training and dissemination seeking the empowerment of all.
More specifically, our main scientific objectives are the characterization of the molecular bases of antibiotic resistance in pathogenic bacteria, the study of the molecular epidemiology and population structure of resistant bacteria, the characterization of the mobile genetic elements that carry resistance genes, and the development of diagnostic techniques and therapeutic alternatives against bacteria with extensive resistance to antibiotics. In this sense, research into the dissemination pathways of Enterobacteriaceae, Acinetobacter baumannii and carbapenemase-producing Pseudomonas aeruginosa (as a paradigm of extensive resistance and pan-resistance) is one of our current priority objectives.