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Mechanisms of Antifungal Resistance in Aspergillus

Líneas de investigación

Content with Investigacion Mecanismos de resistencia a antifúngicos en Aspergillus .

Resistance mechanisms of Aspergillus fumigatus to antifungals

Aspergillus fumigatus is a universally distributed opportunistic fungal pathogen with a significant global incidence and extremely high mortality. The widespread and extensive use of azole antifungals has led to the emergence of A. fumigatus azole resistant, resulting in serious consequences for patients infected with these isolates, who are left with limited therapeutic options.       
Initially, the emergence of resistant strains was very sporadic and showed point mutations in key areas of the Cyp51A enzyme (G54, G138, F219, M220, G448S) in strains isolated from patients undergoing long-term treatment with azoles. This clinical pathway is due to the selective pressure that azoles exert on A. fumigatus within the patient. However, since 2014, resistance has grown significantly, and almost all azole-resistant A. fumigatus strains have a combined mechanism of modifications in the promoter and the coding portion of cyp51A (TR34/L98H or TR46/Y121F/T289A). Both resistance mechanisms are frequently detected in strains from patients who have never been exposed to antifungal therapy. In these cases, the involvement of an environmental route is raised, in which the unintentional exposure of A. fumigatus to DMIs (imidazole and triazole) in the field would be favoring the resistance emergence.

Origin and Evolution of A. fumigatus Resistance to Antifungals

Nowadays, the isolation of A. fumigatus strains resistant to antifungals is an increasing global emergence. The continuous exposure of A. fumigatus to environmental fungicides, used for crop protection against other fungal species that cause agricultural damage, is believed to be selecting multi drug resistant strains. The main azole resistance mechanisms in A. fumigatus are strains with modifications of the azole target (cyp51A gene), mainly the TR34/L98H, followed by TR46/Y121F/A289T. Both types of mechanisms are responsible for panazole resistance and cross resistance to DMIs used for crop protection (imidazoles and triazoles). More recently, resistance to several fungicide classes such as, Bencimidazoles (MBC), Estrobilurinas (QoIs), sucinato deshidrogenase inhibitors (SDHIs) and  Dicarboximides, has also been acknowledged.

Genomic characterization (NGS) of strains from both clinical and environmental sources allows linking genomic differences with the acquisition of resistance to different fungicides. Adding data on susceptibility to non-azole antifungals provides a more precise picture of the phylogenetic relationships among strains, as distinct subclades are formed in which strains multi-resistant to non-azole antifungals grouped with azole-resistant strains with TRs resistance mechanisms. This formation of specific clades with strains that differ in geographic origin and year of isolation suggests the existence of a common link, an evolutionary origin according to which the strains have developed under similar circumstances that converge in a series of multi-resistance mechanisms to fungicides from different families. The resistance of A. fumigatus to non-azole fungicides, that are exclusively used in the environment, confirms that the strains with TRs resistance mechanisms are selected and developed in the environment where they are exposed to the selective pressure of multiple fungicides.

Tolerance and Persistence to Azole Antifungals in Aspergillus fumigatus

Tolerance and persistence are two phenomena by which pathogenic organisms can survive the microbicidal action of antimicrobials that should kill them over an extended period. In our laboratory, we investigate the ability of certain A. fumigatus isolates to exhibit tolerance and persistence to azoles, which are the first-line antifungal treatment for aspergillosis infections.

We are developing methodologies to detect and study tolerance and persistence, both in the laboratory and in clinical diagnosis. Using these methods, we are exploring the underlying molecular and genomic mechanisms that enable these phenomena. In addition, we are investigating the potential relevance of tolerance and persistence in the efficacy of antifungal treatment.

Differential Modulation of Persulfidation in the Fungus and Host as a Novel Antifungal Strategy

Persulfidation is a post-translational modification in which an activated sulfur group (S₂-), through the action of an enzyme, performs a specific nucleophilic attack on thiol (-SH) groups of cysteine residues in target proteins, forming a persulfide group (-SSH). This modification has been shown to modulate the intrinsic activity of proteins, playing a crucial role in various cellular mechanisms and physiological functions.

In our previous research, we demonstrated that correct levels of persulfidation are important both for A. fumigatus virulence and for orchestrating an adequate immune response in the host. Based on this, our research explores the hypothesis that differential modulation of persulfidation could constitute a novel antifungal treatment strategy.

We are investigating the ability of compounds to inhibit fungal enzymes responsible for persulfidation, aiming to reduce persulfidation levels and thereby decrease A. fumigatus virulence. Additionally, we are studying the use of sulfur donors as a potential means to enhance persulfidation in pulmonary host cells, with the goal of strengthening the immune response.

Evolution of Cross-Resistance to the New Antifungals Olorofim and Manogepix

Azole resistance is already present worldwide. Studies have shown that the most common resistance mechanisms—tandem repeats in the promoter of the gene encoding the azole target—have developed in agricultural settings due to the indiscriminate use of pesticides from the same family as clinical azoles.

Currently, two new clinical antifungals with novel molecular mechanisms of action have been introduced: olorofim and manogepix. However, analogous compounds with the same mechanism of action, ipflufenoquin and aminopyrifen, have also been developed for use as pesticides. This situation puts us at risk of repeating the same mistake made with azoles.

In this international collaborative project, we study the evolution of resistance and cross-resistance to these clinical and environmental antifungals. Our goal is to design strategies to minimize the emergence of resistance in the environment and develop early detection methods for antifungal resistance.

Proyectos de investigación

Content with Investigacion Mecanismos de resistencia a antifúngicos en Aspergillus .

PROJECT TITLE: Consorcio Centro de Investigacion Biomedica en Red (CIBER).  Infectious Diseases Area. 
Funding Agency: CIF: G85296226.  Reference: CB21/13/00105
Dates: 2022-2026            Funding: 85.000 € (first year)
Principal Investigator: Emilia Mellado Terrado 


 

PROJECT TITLE: Modulación diferencial de la persulfidación en el hongo y el hospedador como nueva estrategia antifúngica. 
Funding Agency: Agencia Estatal de Investigación (Convocatoria Proyectos de Generación de Conocimiento"
Reference: Project PID2022-136343OA-I00 funded by MICIU/AEI /10.13039/501100011033 and by FEDER, UE
Principal Investigator: Jorge Amich. 
Dates: 2024-2026. 
Funding: 118.750 €


 

PROJECT TITLE: : Bridging the gap between environment and patient JPIAMR (AC23CIII_2/00002 (JPIAMR2023-DISTOMOS-103). 
DATES: 2024-2026            Funding: 178.000 €
Principal Investigator: Jorge Amich. 

PROJECT TITLE: : Buscando los rasgos geneticos de la resistencia de Aspergillus fumigatus a los azoles para preservar la eficacia de los azoles:un enfoque de salud global.
FUNDING AGENCY: Fondo de Investigación Sanitaria. PI21CIII/00028_ MPY443/2021
DATES: 2022-2025            Funding: 47.000 €
Principal Investigator: Emilia Mellado Terrado 

PROJECT TITLE: : Persistencia a antifúngicos azólicos en Aspergillus fumigatus: mecanismos, relevancia y diagnóstico. 
FUNDING AGENCY: AESI 2022 (PI22CIII/00053). 
DATES: 2023-2025            Funding: 55.000 €
Principal Investigator: Jorge Amich. 

PROJECT TITLE: : La medicina de precisión contra la resistencia a antimicrobianos:
CONSORCIO CENTRO DE INVESTIGACION BIOMEDICA EN RED (CIBER) CENTRO NACIONAL DE MICROBIOLOGIA
G85296226 PMP22/00092. Project MePRAM 28.107.46QF.749   Funding: 4.339.500,00€
Principal Investigator: Jesus Oteo 

Publicaciones destacadas

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Suppression of CD4+ T lymphocyte activation in vitro and experimental encephalomyelitis in vivo by the phosphatidyl inositol 3-kinase inhibitor PIK-75.

3. Acosta YY, Montes-Casado M, Aragoneses-Fenoll L, Dianzani U, Portoles P, Rojo JM. Suppression of CD4+ T lymphocyte activation in vitro and experimental encephalomyelitis in vivo by the phosphatidyl inositol 3-kinase inhibitor PIK-75. Int. J. Immunopathol. Pharmacol. 2014 Jan-Mar;27(1):53-67.

PUBMED DOI

ETP-46321, a dual p110α/δ class IA phosphoinositide 3-kinase inhibitor modulates T lymphocyte activation and collagen-induced arthritis.

2. Aragoneses-Fenoll L, Montes-CasadoM, Ojeda G, Acosta YY, Herranz J, Martínez S, Blanco-Aparicio C, Criado G, Pastor J, Dianzani U, Portolés P, Rojo JM. ETP-46321, a dual p110α/δ class IA phosphoinositide 3-kinase inhibitor modulates T lymphocyte activation and collagen-induced arthritis. Biochem. Pharmacol. 2016 Apr 15;106:56-69. Epub 2016 Feb 13.

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Dissociation of actin polymerization and lipid raft accumulation by ligation of the Inducible Costimulator (ICOS, CD278)

6. Y. Acosta, G. Ojeda, M. P. Zafra, I. Seren-Bernardone, A. Sánchez, U. Dianzani, P. Portolés y J. M. Rojo. Dissociation of actin polymerization and lipid raft accumulation by ligation of the Inducible Costimulator (ICOS, CD278). Inmunología, 2012, 31 (1): 4-12.

DOI

Complement regulatory protein Crry/p65 costimulation expands natural Treg cells with enhanced suppressive properties in proteoglycan-induced arthritis.

7. Ojeda G., Pini E., Eguiluz C., Montes-Casado M., Broere F., van Eden W., Rojo J.M., and Portolés P. Complement regulatory protein Crry/p65 costimulation expands natural Treg cells with enhanced suppressive properties in proteoglycan-induced arthritis. Arthritis Rheum. 2011 Jun;63(6):1562-72.

PUBMED DOI

Biased binding of class IA phosphatidyl inositol 3-kinase subunits to inducible costimulator (CD278)

8. Acosta Y.Y., Zafra M.P., Ojeda G., Bernardone I.S., Dianzani U., Portolés P., Rojo J.M. Biased binding of class IA phosphatidyl inositol 3-kinase subunits to inducible costimulator (CD278). Cell. Mol. Life Sci. 2011 Sep;68(18):3065-79.

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Pneumoviridae fusion proteins as immunogens to induce cross-neutralizing antibody responses

Olmedillas E, Cano O, Martinez I, Luque D, Terron MC, McLellan JS, et al. Chimeric Pneumoviridae fusion proteins as immunogens to induce cross-neutralizing antibody responses. EMBO Mol Med. 2018;10(2):175-87.

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Spatially-restricted JAG1-Notch signaling in the human thymus provides permissive microenvironments for dendritic cell development.

Martín Gayo, E., González-García, S., García-León, M., Murcia-Ceballos, A., Alcain, J., García-Peydró, M., Allende, L., de Andrés, B., Gaspar, ML. and Toribio, ML. J.Exp.Med. (2017) 214:3361-3379

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Altered Marginal Zone and innate-like B cells in aged SAMP8 mice with defective IgG1 responses

Cortegano, I., Rodriguez, M., Martin, I., Prado, C., Ruiz, C., Hortigüela, R., Alia, M., Vilar, M., Mira, H., Cano, E., de Andrés, B., and Gaspar, ML. Cell death & disease (2017) 8, e3000

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Role of Toll-like receptor 4 in intravascular hemolisis-mediated injury

Vázquez-Carballo C, Herencia C, Guerrero-Hue M, García-Caballero C, Rayego-Mateos S, Morgado-Pascual JL, Opazo-Rios L, González-Guerrero C, Vallejo-Mudarra M, Cortegano I, Gaspar ML, de Andrés B, Egido J, Moreno JA. J Pathol. 2022 Nov; 258(3): 236–249.

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TREM1 regulates antifungal immune responses in invasive pulmonary aspergillosis

Bernal-Martinez L, Gonçalves S, de Andres B, Cunha C, Gonzalez Jimenez I, Lagrou K, Mellado E, Gaspar ML, Maertens J, Carvalho A, and Alcazar-Fuoli L. Virulence 2021 Dec;12(1):570-583.

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Nrf2 plays a protective role against intravascular hemolysis-mediated acute kidney injury.

Rubio-Navarro A, Vázquez-Carballo C, Guerrero-Hue M, García-Caballero C, Herencia C, Gutierrez E, Yuste C, Sevillano A, Praga M, Egea J, Cannata P, Cortegano I, de Andrés B, Gaspar ML, Cadenas S, Michalska P, León R, Ortiz, A, Egido J, Moreno JA. Front Pharmacol. 2019; 10: 740.

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Tyrosine kinase 2 modulates splenic B cells through type I IFN and TLR7 signaling.

Bodega-Mayor I, Delgado-Wicke P, Arrabal A, Alegría-Carrasco E, Nicolao-Gómez A, Jaén-Castaño M, Espadas C, Dopazo A, Martín-Gayo E, Gaspar ML, de Andrés B, Fernández-Ruiz E. Cell Mol Life Sci. 2024 Apr 29;81(1):199.

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Immune stress suppresses innate immune signaling in preleukemic precursor B-cells to provoke leukemia in predisposed mice

Isidro-Hernández M, Casado-García A, Oak N, Alemán-Arteaga S, Ruiz-Corzo B, Martínez-Cano J, Mayado A, G. Sánchez E, Blanco O, Gaspar ML, Orfao A, Alonso-López D, De las Rivas J, Riesco S, Prieto-Matos P, González-Murilo A, García Criado FJ, García Cenador MB, Ramírez-Orellana M, De Andrés B, Vicente-Dueñas C, Cobaleda C, Nichols KE, Sánchez-García I. Nat Commun 2023 Aug 24;14(1):5159.

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Age-dependent nasal immune responses in non-hospitalized bronchiolitis children

Cortegano I, Rodríguez M, Hernángómez S, Arrabal A, Garcia-Vao C, Rodríguez J, Sandra Fernández S, Díaz J, de la Rosa B, Solís B, Arribas C, Garrido F, Zaballos A, Roa S, López V, Gaspar ML, de Andrés B. Front Immunol 2022 Dec 6:13:1011607.

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Toll-like receptors in acute kidney injury

Vázquez-Carballo C, Guerrero-Hue M, García Caballero C, Rayego-Mateos S, Opazo-Rios L, Morgado-Pascual JL, Herencia-Bellido C, Vallejo-Mudarra M, Cortegano I, Gaspar ML, de Andrés B, Egido J, Moreno-Gutiérrez JA. Int J Mol Sci. 2021 Jan; 22(2): 816.

PUBMED DOI

ICOS deficiency hampers the homeostasis, development and activity of NK cell

Montes-Casado M, Ojeda G, Aragoneses-Fenoll L, López D, de Andrés B, Gaspar ML, Dianzani U, Rojo JM, Portolés P. PLoS One 2019 Jul 8;14(7):e0219449.

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The TLR4-MyD88 Signaling Regulates Lung Monocyte Differentiation Pathways in Response to Streptococcus pneumoniae

Sánchez-Tarjuelo R, Cortegano I, Manosalva J, Rodríguez M, Ruiz C, Alía M, Prado MC, Cano EM, Ferrándiz MJ, de la Campa A, Gaspar ML, de Andrés B. Front Immunol 2020 Sep 16:11:2120.

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Toll-like receptor signaling-deficient cells enhance antitumor activity of cell-based immunotherapy by increasing tumor homing

A. Morales-Molina, M.A. Rodríguez-Milla, S,. Gambera, T. Cejalvo, B. de Andrés M.L. Gaspar, J. Garcia-Castro. Cancer Res Commun 2023 Mar 1;3(3):347-360. eCollection 2023 Mar

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Senescent accelerated prone 8 (SAMP8) mice as a model of age dependent neuroinflammation

Fernández A, Quintana E, Velasco P, Moreno-Jimenez B, de Andrés B, Gaspar ML, Liste I, Vilar M, Mira E, Cano E. J Neuroinflammation 2021 Mar 18;18(1):75.

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Neutrophil derived CSF1 induces macrophage polarization and promotes transplantation tolerance

Braza MS, Conde P, García M, Cortegano I, Brahmachary M, Pothula V, Fay F, Boros P, Werner SA, Ginhoux F, Mulder WJM, Ochando J. Am J Transplant 2018 May;18(5):1247-1255.

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CD45 expression discriminates waves of embryonic megakaryocytes in the mouse.

Cortegano, I., Serrano, N., Ruiz, C., Rodríguez, M., Prado, C., Alía, M., Hidalgo, A., Cano, E., de Andrés B. and Gaspar, ML. 2018. Haematologica, 104(9):1853-1865

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Podocytes as new cellular targets of hemoglobin toxicity in massive intravascular hemolysis.

Rubio-Navarro A, Sanchez-Niño MD, Guerrero-Hue M, García-Caballero C, Gutiérrez E, Yuste C, Sevillano A, Praga M, Egea J, Román E, Cannata P, Ortega R, Cortegano I, de Andrés B, Gaspar ML, Cadenas S, Ortiz A, Egido J, Moreno JA. Podocytes as new cellular targets of hemoglobin toxicity in massive intravascular hemolysis. 2018. J.Pathol. 244(3):296-310.

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DNGR-1+ dendritic cells are located in meningeal and choroid plexus membranes of the non-injured brain.

Quintana, E., Fernández. A, de Andrés, B., Liste, I., Sancho, D., Gaspar, ML. and Cano, E. Glia (2015) 62 (12):2231-2248

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Role of PatAB transporter in efflux of levofloxacin in Streptococcus pneumoniae

Amblar M, Zaballos A, de la Campa AG. Antibiotics. 2022; 17:1837.

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HU of Streptococcus pneumoniae is essential for the preservation of DNA supercoiling

Ferrándiz MJ, Carreño D, Ayora S, de la Campa AG. Front Microbiol. 9:493 (2018).

PUBMED DOI

StaR Is a positive regulator of topoisomerase I activity involved in supercoiling maintenance in Streptococcus pneumoniae

de Vasconcelos Junior AA, Tirado-Vélez JM, Martín-Galiano AJ, Megias D, Ferrándiz MJ, Hernández P, Amblar M, de la Campa AG. Int J Mol Sci. 2023; 24:5973.

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Genome-wide proximity between RNA polymerase and DNA topoisomerase I supports transcription in Streptococcus pneumoniae

Ferrándiz M-J, Hernández P, de la Campa AG. PLoS Genet. 2021; 17:e1009542.

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Reactive oxygen species production is a major factor directing the post-antibiotic effect of fluoroquinolones in Streptococcus pneumoniae

García MT, Valenzuela MV, Ferrándiz MJ, de la Campa AG. Antimicrob Agents Chemother. 2019; 63:e00737-19.

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The balance between gyrase and topoisomerase I activities determines levels of supercoiling, nucleoid compaction, and viability in bacteria

García-López M, Megias D, Ferrándiz MJ, de la Campa AG. Front Microbiol. 2023; 11;1094692.

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Physiologic and transcriptomic effects triggered by overexpression of wild type and mutant DNA topoisomerase I in Streptococcus pneumoniae

García-López M, Hernández P, Megias D, Ferrándiz MJ, de la Campa AG. Int J Mol Sci. 2023; 24:15800.

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Seconeolitsine, the novel inhibitor of DNA topoisomerase I, protects against invasive pneumococcal disease caused by fluoroquinolone-resistant strains.

Tirado-Vélez JM, Carreño D, Sevillano D, Alou L, Yuste J, de la Campa AG. Antibiotics 2021; 10:573.

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A Small Non-Coding RNA Modulates Expression of Pilus-1 Type in Streptococcus pneumoniae

Acebo P, Herranz C, Bernal-Espenberger L, Gómez-Sanz A, Terron MC, Luque D and Amblar M. Microorganisms. 2021; 9:1883.

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Boldine-derived alkaloids inhibit the activity of DNA topoisomerase I and growth of Mycobacterium tuberculosis.

García MT, Carreño D, Tirado-Vélez JM, Ferrándiz MJ, Rodrigues L, Gracia B, Amblar M, Ainsa JA*, de la Campa AG. Front Microbiol. 9:493 (2018).

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Bridging chromosomal architecture and pathophysiology of Streptococcus pneumoniae

Martín-Galiano AJ, Ferrándiz MJ, de la Campa AG. Genome Biol Evol. 2017; 9:350-361.

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An increase in negative supercoiling in bacteria reveals topology-reacting gene clusters and a homeostatic response mediated by the DNA topoisomerase I gene

Ferrándiz MJ, Martín-Galiano AJ, Arnanz C, Camacho-Soguero I, Tirado-Vélez JM, de la Campa AG. 2016. Nucl Acids Res. 44:7292-7303 (2016).

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Reactive oxygen species contribute to the bactericidal effects of the fluoroquinolone moxifloxacin in Streptococcus pneumoniae

Ferrándiz MJ, Martín-Galiano AJ, Arnanz C, Zimmerman T, de la Campa AG. Antimicrob Agents Chemother. 60:409-417 (2016).

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The fluoroquinolone levofloxacin triggers the transcriptional activation of iron transport genes that contribute to cell death in Streptococcus pneumoniae.

Ferrándiz MJ, de la Campa AG. Antimicrob Agents Chemother. 58:247-257 (2014)

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Fluoroquinolone-resistant pneumococci: dynamics of serotypes and clones in Spain in 2012 compared with those from 2002 and 2006

Domenech A, Tirado-Vélez JM, Fenoll A, Ardanuy C, Yuste J, Liñares J, de la Campa AG. Antimicrob Agents Chemother. 58:2393-2399 (2014).

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Absence of tmRNA has a protective effect against fluoroquinolones in Streptococcus pneumoniae

Brito L, Wilton J, Ferrándiz MJ, Gómez-Sanz A, de la Campa AG, Amblar M. Front. Microbiol. 7:2164 (2017).

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Upregulation of the PatAB transporter confers fluoroquinolone resistance to Streptococcus pseudopneumoniae

Alvarado M, Martín-Galiano AJ, Ferrándiz MJ, Zaballos A, de la Campa AG. Front Microbiol. 8:2074 (2017).

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Content with Investigacion Mecanismos de resistencia a antifúngicos en Aspergillus .

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Content with Investigacion Mecanismos de resistencia a antifúngicos en Aspergillus .