Bacterial Genetics
Publications
Chemotherapy with Phage Lysins Reduces Pneumococcal Colonization of the Respiratory Tract
Corsini B, Díez-Martínez R, Aguinagalde L, González-Camacho F, García-Fernández E, Letrado P, García P, Yuste J. Chemotherapy with Phage Lysins Reduces Pneumococcal Colonization of the Respiratory Tract. Antimicrob Agents Chemother. 2018 May 25;62(6):e02212-17. doi: 10.1128/AAC.02212-17. PMID: 29581113; PMCID: PMC5971604.
DOIImpact of Biological Therapies on the Immune Response after Pneumococcal Vaccination in Patients with Autoimmune Inflammatory Diseases
Richi P, Yuste J, Navío T, González-Hombrado L, Salido M, Thuissard-Vasallo I, Jiménez-Díaz A, Llorente J, Cebrián L, Lojo L, Steiner M, Cobo T, Martín MD, García-Castro M, Castro P, Muñoz-Fernández S. Impact of Biological Therapies on the Immune Response after Pneumococcal Vaccination in Patients with Autoimmune Inflammatory Diseases. Vaccines. 2021 Feb 28;9(3):203. doi: 10.3390/vaccines9030203. PMID: 33671007; PMCID: PMC7997274.
DOIPleiotropic Effects of Cell Wall Amidase LytA on Streptococcus pneumoniae Sensitivity to the Host Immune Response
Ramos-Sevillano E, Urzainqui A, Campuzano S, Moscoso M, González-Camacho F, Domenech M, Rodríguez de Córdoba S, Sánchez-Madrid F, Brown JS, García E, Yuste J. Pleiotropic effects of cell wall amidase LytA on Streptococcus pneumoniae sensitivity to the host immune response. Infect Immun. 2015 Feb;83(2):591-603. doi: 10.1128/IAI.02811-14. PMID: 25404032; PMCID: PMC4294232.
DOIPSGL-1 on Leukocytes is a Critical Component of the Host Immune Response against Invasive Pneumococcal Disease
Ramos-Sevillano E, Urzainqui A, de Andrés B, González-Tajuelo R, Domenech M, González-Camacho F, Sánchez-Madrid F, Brown JS, García E, Yuste J. PSGL-1 on Leukocytes is a Critical Component of the Host Immune Response against Invasive Pneumococcal Disease. PLoS Pathog. 2016 Mar 14;12(3):e1005500. doi: 10.1371/journal.ppat.1005500. PMID: 26975045; PMCID: PMC4790886.
DOIComparison of methods and characterization of small RNAs from plasma extracellular vesicles of HIV/HCV coinfected patients
Martínez-González E; Brochado-Kith O; Gómez-Sanz A; et al; Fernández-Rodríguez A (AC). (9/9). 2020. Small RNA sequencing from plasma extracellular vesicles of HIV/HCV coinfected patients: a protocol comparison SCIENTIFIC REPORTS. 9. ISSN 2045-2322.
DOIRelative telomere length impact on mortality of COVID-19: Sex differences
Virseda-Berdices A; Concostrina-Martinez L; Martínez-González O;et al; Fernández-Rodríguez A (AC). (14/14). 2022. Relative telomere length impact on mortality of COVID-19: Sex differences.Journal of medical virology. 95, pp.e28368. ISSN 0146-6615.
DOIHepatitis C Virus Influences HIV-1 Viral Splicing in Coinfected Patients
Martínez-Román P; López-Huertas MR; Crespo-Bermejo C; et al; Briz V (AC). (16/15). 2020. Hepatitis C virus influences HIV-1 viral splicing in coinfected patients JOURNAL OF CLINICAL MEDICINE. MDPI. ISSN 2077-0383.
DOIHCV eradication with IFN-based therapy does not completely restore gene expression in PBMCs from HIV/HCV-coinfected patients
Brochado-Kith; Martínez I; Berenguer J; et al; Fernández-Rodríguez A (AC); Resino S. (11/12). 2021. HCV eradication with IFN-based therapy does not completely restore gene expression in PBMCs from HIV/HCV-coinfected patients. Journal of Biomedical Sciences. Springer Nature. 28-1.
DOIContent with Investigacion .
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Isabel de Fuentes Corripio
Jefa de Unidad, Investigador Titular OPIS
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David Carmena Jiménez
Investigador Doctor distinguido
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Aly Salimo Omar Muadica
Becario pre-doctoral
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Marta Hernández de Mingo
Colaborador I+D+I
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Begoña Bailo Cardoso
Técnico de Laboratorio
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María Aguilera
Técnico de laboratorio
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David González Barrio
Investigador contratado
List of staff
Additional Information
Streptococcus pneumoniae is a human pathogen that, despite the development of vaccines, continues to be an important cause of mortality and morbidity. We investigate the mechanisms of antibiotic resistance in this bacterium. On the one hand by identifying new therapeutic targets and on the other hand by investigating the molecular basis of the action of antibiotics already used in clinical practice (the fluoroquinolones levofloxacin and moxifloxacin) or not yet used (seconeolitsine). For this purpose, we used a multidisciplinary analysis involving genomics, transcriptomics and proteomics to understand the organization of the S. pneumoniae chromosome and the identification of the factors that stabilize this organization, including ncRNAs. Changes in the level of global supercoiling, either by inhibition of gyrase (decrease) or by inhibition of topoisomerase I (increase) alter the transcriptome. The modulated genes are located in domains, whose genes show specific functional characteristics. The aim is to identify new factors essential for S. pneumoniae physiology and to characterize transcriptional regulation in response to topological stress. In addition, RNA interference technology and CRISPR systems will be used as novel antibacterials. These studies will establish the bases for translational research aimed at the development of new therapeutic targets for the treatment of pneumococcal diseases.
Streptococcus pneumoniae is a human pathogen that, despite the development of vaccines, continues to be an important cause of mortality and morbidity. We investigate the mechanisms of antibiotic resistance in this bacterium. On the one hand by identifying new therapeutic targets and on the other hand by investigating the molecular basis of the action of antibiotics already used in clinical practice (the fluoroquinolones levofloxacin and moxifloxacin) or not yet used (seconeolitsine). For this purpose, we used a multidisciplinary analysis involving genomics, transcriptomics and proteomics to understand the organization of the S. pneumoniae chromosome and the identification of the factors that stabilize this organization, including ncRNAs. Changes in the level of global supercoiling, either by inhibition of gyrase (decrease) or by inhibition of topoisomerase I (increase) alter the transcriptome. The modulated genes are located in domains, whose genes show specific functional characteristics. The aim is to identify new factors essential for S. pneumoniae physiology and to characterize transcriptional regulation in response to topological stress. In addition, RNA interference technology and CRISPR systems will be used as novel antibacterials. These studies will establish the bases for translational research aimed at the development of new therapeutic targets for the treatment of pneumococcal diseases.