de Block, T.; Laumen, J.G.E.; Van Dijck, C.; Abdellati, S.; De Baetselier, I.; Manoharan-Basil, S.S.; Van den Bossche, D.; Kenyon, C.
WGS of Commensal Neisseria Reveals Acquisition of a New Ribosomal Protection Protein (MsrD) as a Possible Explanation for High Level Azithromycin Resistance in Belgium. Pathogens 2021, 10, 384.
https://doi.org/10.3390/pathogens10030384
AMA Style
de Block T, Laumen JGE, Van Dijck C, Abdellati S, De Baetselier I, Manoharan-Basil SS, Van den Bossche D, Kenyon C.
WGS of Commensal Neisseria Reveals Acquisition of a New Ribosomal Protection Protein (MsrD) as a Possible Explanation for High Level Azithromycin Resistance in Belgium. Pathogens. 2021; 10(3):384.
https://doi.org/10.3390/pathogens10030384
Chicago/Turabian Style
de Block, Tessa, Jolein Gyonne Elise Laumen, Christophe Van Dijck, Said Abdellati, Irith De Baetselier, Sheeba Santhini Manoharan-Basil, Dorien Van den Bossche, and Chris Kenyon.
2021. "WGS of Commensal Neisseria Reveals Acquisition of a New Ribosomal Protection Protein (MsrD) as a Possible Explanation for High Level Azithromycin Resistance in Belgium" Pathogens 10, no. 3: 384.
https://doi.org/10.3390/pathogens10030384
APA Style
de Block, T., Laumen, J. G. E., Van Dijck, C., Abdellati, S., De Baetselier, I., Manoharan-Basil, S. S., Van den Bossche, D., & Kenyon, C.
(2021). WGS of Commensal Neisseria Reveals Acquisition of a New Ribosomal Protection Protein (MsrD) as a Possible Explanation for High Level Azithromycin Resistance in Belgium. Pathogens, 10(3), 384.
https://doi.org/10.3390/pathogens10030384