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A. E. Parker and Bermudez, L. E., Expression of the green fluorescent protein (GFP) in mycobacterium avium as a tool to study the interaction between Mycobacteria and host cells., Microbial pathogenesis, vol. 22, no. 4, pp. 193-8, 1997.
L. E. Bermudez, Petrofsky, M., and Goodman, J., Exposure to low oxygen tension and increased osmolarity enhance the ability of Mycobacterium avium to enter intestinal epithelial (HT-29) cells., Infection and immunity, vol. 65, no. 9, pp. 3768-73, 1997.
L. E. Bermudez, Young, L. S., Martinelli, J., and Petrofsky, M., Exposure to ethanol up-regulates the expression of Mycobacterium avium complex proteins associated with bacterial virulence., The Journal of infectious diseases, vol. 168, no. 4, pp. 961-8, 1993.
M. J. Harriff, Bermudez, L. E., and Kent, M. L., Experimental exposure of zebrafish, Danio rerio (Hamilton), to Mycobacterium marinum and Mycobacterium peregrinum reveals the gastrointestinal tract as the primary route of infection: a potential model for environmental mycobacterial infection., Journal of fish diseases, vol. 30, no. 10, pp. 587-600, 2007.
L. E. Bermudez and Young, L. S., Ethanol augments intracellular survival of Mycobacterium avium complex and impairs macrophage responses to cytokines., The Journal of infectious diseases, vol. 163, no. 6, pp. 1286-92, 1991.
L. E. Bermudez and Young, L. S., Ethanol and survival of Mycobacterium avium complex within macrophages., Progress in clinical and biological research, vol. 325, pp. 383-91, 1990.
L. E. Bermudez, Wu, M., Martinelli, J., and Young, L. S., Ethanol affects release of TNF and GM-CSF and membrane expression of TNF receptors by human macrophages., Lymphokine and cytokine research, vol. 10, no. 5, pp. 413-9, 1991.
L. E. Bermudez, Petrofsky, M., and Shelton, K., Epidermal growth factor-binding protein in Mycobacterium avium and Mycobacterium tuberculosis: a possible role in the mechanism of infection., Infection and immunity, vol. 64, no. 8, pp. 2917-22, 1996.
M. Harriff and Bermudez, L. E., Environmental amoebae and mycobacterial pathogenesis., Methods in molecular biology (Clifton, N.J.), vol. 465, pp. 433-42, 2009.
L. Babrak, Danelishvili, L., Rose, S. J., Kornberg, T., and Bermudez, L. E., The environment of "Mycobacterium avium subsp. hominissuis" microaggregates induces synthesis of small proteins associated with efficient infection of respiratory epithelial cells., Infection and immunity, vol. 83, no. 2, pp. 625-36, 2015.
L. E. Bermudez, Petrofsky, M., Kolonoski, P., and Young, L. S., Emergence of Mycobacterium avium populations resistant to macrolides during experimental chemotherapy., Antimicrobial agents and chemotherapy, vol. 42, no. 1, pp. 180-3, 1998.
D. Wagner, Maser, J., Moric, I., Vogt, S., Kern, W. V., and Bermudez, L. E., Elemental analysis of the Mycobacterium avium phagosome in Balb/c mouse macrophages., Biochemical and biophysical research communications, vol. 344, no. 4, pp. 1346-51, 2006.
D. Wagner, Maser, J., Lai, B., Cai, Z., Barry, C. E., Bentrup, K. Höner Zu, Russell, D. G., and Bermudez, L. E., Elemental analysis of Mycobacterium avium-, Mycobacterium tuberculosis-, and Mycobacterium smegmatis-containing phagosomes indicates pathogen-induced microenvironments within the host cell's endosomal system., Journal of immunology (Baltimore, Md. : 1950), vol. 174, no. 3, pp. 1491-500, 2005.
L. E. Bermudez, Sangari, F. J., Kolonoski, P., Petrofsky, M., and Goodman, J., The efficiency of the translocation of Mycobacterium tuberculosis across a bilayer of epithelial and endothelial cells as a model of the alveolar wall is a consequence of transport within mononuclear phagocytes and invasion of alveolar epithelial cells., Infection and immunity, vol. 70, no. 1, pp. 140-6, 2002.
L. E. Bermudez, Motamedi, N., Kolonoski, P., Chee, C., Baimukanova, G., Bildfell, R. J., Wang, G., Phan, L. Tam, and S Lowell, Y., The efficacy of clarithromycin and the bicyclolide EDP-420 against Mycobacterium avium in a mouse model of pulmonary infection., The Journal of infectious diseases, vol. 197, no. 11, pp. 1506-10, 2008.

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