Ibrahim, N.; Lin, J.T.; Nesbitt, D.; Tang, J.; Singh, D.; Goodridge, L.D.; Lepp, D.; Svircev, A.M.; Weadge, J.T.; Anany, H.
Multi-Omic Analysis of Bacteriophage-Insensitive Mutants Reveals a Putative Role for the Rcs Two-Component Phosphorelay System in Phage Resistance Development in Erwinia amylovora. Viruses 2025, 17, 1487.
https://doi.org/10.3390/v17111487
AMA Style
Ibrahim N, Lin JT, Nesbitt D, Tang J, Singh D, Goodridge LD, Lepp D, Svircev AM, Weadge JT, Anany H.
Multi-Omic Analysis of Bacteriophage-Insensitive Mutants Reveals a Putative Role for the Rcs Two-Component Phosphorelay System in Phage Resistance Development in Erwinia amylovora. Viruses. 2025; 17(11):1487.
https://doi.org/10.3390/v17111487
Chicago/Turabian Style
Ibrahim, Nassereldin, Janet T. Lin, Darlene Nesbitt, Joshua Tang, Dharamdeo Singh, Lawrence D. Goodridge, Dion Lepp, Antonet M. Svircev, Joel T. Weadge, and Hany Anany.
2025. "Multi-Omic Analysis of Bacteriophage-Insensitive Mutants Reveals a Putative Role for the Rcs Two-Component Phosphorelay System in Phage Resistance Development in Erwinia amylovora" Viruses 17, no. 11: 1487.
https://doi.org/10.3390/v17111487
APA Style
Ibrahim, N., Lin, J. T., Nesbitt, D., Tang, J., Singh, D., Goodridge, L. D., Lepp, D., Svircev, A. M., Weadge, J. T., & Anany, H.
(2025). Multi-Omic Analysis of Bacteriophage-Insensitive Mutants Reveals a Putative Role for the Rcs Two-Component Phosphorelay System in Phage Resistance Development in Erwinia amylovora. Viruses, 17(11), 1487.
https://doi.org/10.3390/v17111487