Bacterial Genetics
Publications
Characterization In Vitro and In Vivo of a Pandemic H1N1 Influenza Virus from a Fatal Case.
Rodriguez A, Falcon A, Cuevas MT, Pozo F, Guerra S, García-Barreno B, Martinez-Orellana P, Pérez-Breña P, Montoya M, Melero JA, Pizarro M, Ortin J, Casas I, Nieto A. Characterization In Vitro and In Vivo of a Pandemic H1N1 Influenza Virus from a Fatal Case. PLoS One. 2013;8(1):e53515. doi: 10.1371/journal.pone.0053515. Epub 2013 Jan 10. Indice Impacto: 3,534. Revista en Q1
PUBMED DOIMycobacterium tuberculosis genotypes and predominant clones among the multidrug-resistant isolates in Spain 1998-2006
3. Samper S, Gavin P, Millan-Lou MI, Iglesias M.J. Jimenez MS. Spanish Working Group on MDR-TB, Covin D, Rastogi N. Mycobacterium tuberculosis genotypes and predominant clones among the multidrug-resistant isolates in Spain 1998-2006. Infec Genet Evol. 2017. Aug 5;55:117.
PUBMED DOIAntitubercular drugs for an old target: GSK693 as a promising inhA direct inhibitor.
5. Martinez-Hoyos M, Perez-Herran E, Gulten G, Encinas L, Alvarez-Gomez D, Alvarez E, Ferrer Bazaga S, Garcia-Perez A, Ortega F, Angulo-Bartures I, Rullas-Trincado J, Blanco Ruano D, Torres P, Castañeda P, Huss S, Fernandez R, Gonzalez del Valle S, Ballel L, Barros D, Modha S, Dhar N, Signorino-Gelo F, McKinney JD, Garcia-Bustos JF, Lavandera JL, Sacchettini JC, Jimenez MS, Martin-Casabona N, Castro-PIchel J, Mendoza-Losana A. Antitubercular drugs for an old target: GSK693 as a promising inhA direct inhibitor. EBioMedicine. 2016; 8:291-301
PUBMED DOIPediatric drug-resistant tuberculosis in Madrid family matters
7. Santiago B, Baquero-Artiago F, Mejias A, Blázquez D, Jimenez MS, Mellado-Peña MJ, EREMITA Study group. Pediatric drug-resistant tuberculosis in Madrid: family matters. The Pediatric Infectious Disease Journal. 2014; 33:345-350.
PUBMED DOIMycobacterium kumamotonense, another Member of the Mycobacterium terrae Complex Unusually Carrying Two Copies of the Ribosomal RNA Operon
8. Menéndez MC, Jiménez MS, Yubero J, García MJ. Mycobacterium kumamotonense, another Member of the Mycobacterium terrae Complex Unusually Carrying Two Copies of the Ribosomal RNA Operon. Mycobac Dis; 2014; 4:176.
DOIContent with Investigacion .
-
Isabel de Fuentes Corripio
Jefa de Unidad, Investigador Titular OPIS
-
David Carmena Jiménez
Investigador Doctor distinguido
-
Aly Salimo Omar Muadica
Becario pre-doctoral
-
Marta Hernández de Mingo
Colaborador I+D+I
-
Begoña Bailo Cardoso
Técnico de Laboratorio
-
María Aguilera
Técnico de laboratorio
-
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.