Diarmaid Hughes

Affiliations: 
Department of Cell and Molecular Biology Uppsala University, Uppsala, Uppsala län, Sweden 
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"Diarmaid Hughes"
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Huseby DL, Cao S, Zamaratski E, et al. (2024) Antibiotic class with potent in vivo activity targeting lipopolysaccharide synthesis in Gram-negative bacteria. Proceedings of the National Academy of Sciences of the United States of America. 121: e2317274121
Brandis G, Granström S, Leber AT, et al. (2020) Mutant RNA polymerase can reduce susceptibility to antibiotics via ppGpp-independent induction of a stringent-like response. The Journal of Antimicrobial Chemotherapy
Praski Alzrigat L, Huseby DL, Brandis G, et al. (2020) Resistance/fitness trade-off is a barrier to the evolution of MarR inactivation mutants in Escherichia coli. The Journal of Antimicrobial Chemotherapy
Nord C, Bjerketorp J, Levenfors JJ, et al. (2020) Isopedopeptins A-H: Cationic Cyclic Lipodepsipeptides from UP508 Targeting WHO Top-Priority Carbapenem-Resistant Bacteria. Acs Chemical Biology
Garoff L, Pietsch F, Huseby DL, et al. (2020) Population bottlenecks strongly influence the evolutionary trajectory to fluoroquinolone resistance in Escherichia coli. Molecular Biology and Evolution
Huseby DL, Brandis G, Praski Alzrigat L, et al. (2020) Antibiotic resistance by high-level intrinsic suppression of a frameshift mutation in an essential gene. Proceedings of the National Academy of Sciences of the United States of America
Juhas M, Widlake E, Teo J, et al. (2019) In vitro activity of apramycin against multidrug-, carbapenem- and aminoglycoside-resistant Enterobacteriaceae and Acinetobacter baumannii. The Journal of Antimicrobial Chemotherapy
Vestö K, Huseby DL, Snygg I, et al. (2018) Muramyl Endopeptidase Spr Contributes to Intrinsic Vancomycin Resistance in Serovar Typhimurium. Frontiers in Microbiology. 9: 2941
Brandis G, Hughes D. (2018) Mechanisms of fitness cost reduction for rifampicin-resistant strains with deletion or duplication mutations in rpoB. Scientific Reports. 8: 17488
Pantel L, Florin T, Dobosz-Bartoszek M, et al. (2018) Odilorhabdins, Antibacterial Agents that Cause Miscoding by Binding at a New Ribosomal Site. Molecular Cell. 70: 83-94.e7
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