Quantification of the Expression of HIF-1alpha by Real-Time PCR in Rat Hepatocytes Cultures Invaded by <i>Shigella flexneri</i> under Normoxic and Hypoxic Conditions — Oak Academic Publishing
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Quantification of the Expression of HIF-1alpha by Real-Time PCR in Rat Hepatocytes Cultures Invaded by <i>Shigella flexneri</i> under Normoxic and Hypoxic Conditions
Laboratory of Bacteriology (LIM 54), Department of Infectious and Parasitic Diseases, Faculty of Medicine, University of Sao Paulo, Sao Paulo, Brazil
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Laboratory of Bacteriology (LIM 54), Department of Infectious and Parasitic Diseases, Faculty of Medicine, University of Sao Paulo, Sao Paulo, Brazil
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Laboratory of Bacteriology (LIM 54), Department of Infectious and Parasitic Diseases, Faculty of Medicine, University of Sao Paulo, Sao Paulo, Brazil
1 Laboratory of Bacteriology (LIM 54), Department of Infectious and Parasitic Diseases, Faculty of Medicine, University of Sao Paulo, Sao Paulo, Brazil
2 Laboratory of Bacteriology (LIM 54), Department of Infectious and Parasitic Diseases, Faculty of Medicine, University of Sao Paulo, Sao Paulo, Brazil
3 Laboratory of Bacteriology (LIM 54), Department of Infectious and Parasitic Diseases, Faculty of Medicine, University of Sao Paulo, Sao Paulo, Brazil
Aim: Shigella flexneri ( S. flexneri ) is a gram-negative enterobacterium responsible for severe intestinal end systemic infection in humans. The bacteria can reach the liver due to degeneration of the colonic epithelium. Hypoxia is present in many human diseases and can induce the expression of the transcription factor HIF-1alpha that may have a cell protective role. The influence of hypoxia and HIF-1alpha on bacterial infection, studied in this work, is unclear. Hypoxia inducible factor-1alpha (HIF-1alpha) is a transcription factor that acts as a master regulator of gene expression induced by hypoxia. Methods: We compared the ability of S. flexneri to invade rat hepatocytes in primary culture both in normoxic and hypoxic conditions. We evaluated TNF-alpha released by hepatocytes, apoptosis rate and HIF-1alpha expression by confocal microscopy as well as real time PCR technique. Results: We showed that S. flexneri invaded less hepatocytes previously submitted to 24 h hypoxia (6.5% O 2 ) than those cultivated in normoxia (21% O 2 ). S. flexneri also induced HIF-1 α expression in hepatocytes, TNF- α secretion and apoptosis. Conclusion: a) Hypoxia alone was not a stimulus to TNF- α secretion, but induced cell apoptosis and HIF-1 α expression; b) S. flexneri was able to invade rat hepatocytes and hypoxia apparently influenced significantly bacterial cell invasiveness; c) HIF-1 α was expressed in hypoxic conditions, and it was also stimulated by S. flexneri .
Sansonetti, P.J. (2001) Microbes and Microbial Toxins: Paradigms for Microbial-Mucosal Interactions. III. Shigellosis: from Symptoms to Molecular Pathogenesis. American Journal of Physiology-Gastrointestinal and Liver Physiology, 280, 319-323.
Zurawski, D.V., Mumy, K.L., Faherty, C.S., McCormick, B.A. and Maurelli, A.T. (2009) Shigella flexneri Type III Secretion System Effectors OspB and OspF Target the Nucleus to Downregulate the Host Inflammatory Response via Interactions with Retinoblastoma Protein. Molecular Microbiology, 71, 350-368. http://dx.doi.org/10.1111/j.1365-2958.2008.06524.x
Flamant, M., Aubert, P., Rolli-Derkinderen, M., Bourreille, A., Neunlist, M.R., Mahé, M.M., Meurette, G., Marteyn, B., Savidge, T., Galmiche, J.P., Sansonetti, P.J. and Neunlist, M. (2011) Enteric Glia Protect against Shigella flexneri Invasion in Intestinal Epithelial Cells: A Role for S-Nitrosoglutathione. Gut, 60, 473-484. http://dx.doi.org/10.1136/gut.2010.229237
Macutkiewicz, C., Carlson, G., Clark, E., Dobrindt, U., Roberts, I. and Warhurst, G. (2008) Characterisation of Escherichia coli Strains Involved in Transcytosis across Gut Epithelial Cells Exposed to Metabolic and Inflammatory Stress. Microbes and Infection, 10, 424-431. http://dx.doi.org/10.1016/j.micinf.2008.01.001
Sandler, N.G., Koh, C., Roque, A., Eccleston, J.L., Siegel, R.B., Demino, M., Kleiner, D.E., Deeks, S.G., Liang, T.J., Heller, T. and Douek, D.C. (2011) Host Response to Translocated Microbial Products Predicts Outcomes of Patients with HBV or HCV Infection. Gastroenterology, 141, 1220-1230. http://dx.doi.org/10.1053/j.gastro.2011.06.063
Bernardini, M.L., Arondel, J., Martini, I., Aidara, A. and Sansonetti, P.J. (2001) Parameters Underlying Successful Protection with Live Attenuated Mutants in Experimental Shigellosis. Infection and Immunity, 69, 1072-1083. http://dx.doi.org/10.1128/IAI.69.2.1072-1083.2001
Etheridge, M.E., Hoque, A.T. and Sack, D.A. (1996) Pathologic Study of a Rabbit Model for Shigellosis. Laboratory Animal Science, 46, 61-66.
Abdala, E., Baía, C.E., Mies, S., Massarollo, P.C., de Paula Cavalheiro, N., Baía, V.R., Inácio, C.A., Sef, H.C. and Barone, A.A. (2007) Bacterial Translocation during Liver Transplantation: A Randomized Trial Comparing Conventional with Venovenous Bypass vs. Piggyback Methods. Liver Transplantation, 13, 488-496. http://dx.doi.org/10.1002/lt.21085
Stern, M.S. and Gitnick, G.L. (1976) Shigella Hepatitis. JAMA, 235, 2628. http://dx.doi.org/10.1001/jama.1976.03260500044030
Bosseto, M.C., Palma, P.V., Covas, D.T. and Giorgio, S. (2010) Hypoxia Modulates Phenotype, Inflammatory Response, and Leishmanial Infection of Human Dendritic Cells. APMIS, 118, 108-114. http://dx.doi.org/10.1111/j.1600-0463.2009.02568.x
Lewis, J.S., Lee, J.A., Underwood, J.C., Harris, A.L. and Lewis, C.E. (1999) Macrophage Responses to Hypoxia: Relevance to Disease Mechanisms. Journal of Leukocyte Biology, 66, 889-900.
Murdoch, C., Muthana, M. and Lewis, C.E. (2005) Hypoxia Regulates Macrophage Functions in Inflammation. The Journal of Immunology, 175, 6257-6263. http://dx.doi.org/10.4049/jimmunol.175.10.6257
Bottaro, D.P. and Liotta, L.A. (2003) Cancer: Out of Air Is Not Out of Action. Nature, 423, 593-595. http://dx.doi.org/10.1038/423593a
Raurich, J.M., Llompart-Pou, J.A., Ferreruela, M., Colomar, A., Molina, M., Royo, C., Ayestarán, I. and Ibánez, J. (2011) Hypoxic Hepatitis in Critically Ill Patients: Incidence, Etiology and Risk Factors for Mortality. Journal of Anesthesia, 25, 50-56. http://dx.doi.org/10.1007/s00540-010-1058-3
Rosmorduc, O., Wendum, D., Corpechot, C., Galy, B., Sebbagh, N., Raleigh, J., Housset, C. and Poupon, R. (1999) Hepatocellular Hypoxia-Induced Vascular Endothelial Growth Factor Expression and Angiogenesis in Experimental Biliary Cirrhosis. The American Journal of Pathology, 155, 1065-1073. http://dx.doi.org/10.1016/S0002-9440(10)65209-1
Wang, G.L. and Semenza, G.L. (1995) Purification and Characterization of Hypoxia-Inducible Factor 1. The Journal of Biological Chemistry, 270, 1230-1237. http://dx.doi.org/10.1074/jbc.270.3.1230
Kempf, V.A.J., Lebiedziejewski, M., Alitalo, K., Walzlein, J.H., Ehehalt, U., Fiebig, J., Huber, S., Schutt, B., Sander, C.A., Muller, S., Grassl, G., Yazdi, A.S., Brehm, B. and Autenrieth, I.B. (2005) Activation of Hypoxia-Inducible Factor-1 in Bacillary Angiomatosis: Evidence for a Role of Hypoxia-Inducible Factor-1 in Bacterial Infections. Circulation, 111, 1054-1062. http://dx.doi.org/10.1161/01.CIR.0000155608.07691.B7
Degrossoli, A., Bosetto, M.C., Lima, C.B. and Giorgio, S. (2007) Expression of Hypoxia-Inducible Factor 1alpha in Mononuclear Phagocytes Infected with Leishmania amazonensis. Immunology Letters, 114, 119-125. http://dx.doi.org/10.1016/j.imlet.2007.09.009
Kietzmann, T., Cornesse, Y., Brechtel, K., Modaressi, S. and Jungermann, K. (2001) Perivenous Expression of the mRNA of the Three Hypoxia-Inducible Factor α-Subunits, HIF1α, HIF2α and HIF3α, in Rat Liver. Biochemical Journal, 354, 531-537. http://dx.doi.org/10.1042/0264-6021:3540531
Kim, H.Y., Kim, Y.H., Nam, B.H., Kong, H.J., Kim, H.H., Kim, Y.J., An, W.G. and Cheong, J. (2007) HIF-1α Expression in Response to Lipopolysaccaride Mediates Induction of Hepatic Inflammatory Cytokine TNFα. Experimental Cell Research, 313, 1866-1876. http://dx.doi.org/10.1016/j.yexcr.2007.03.009
Gao, L.Y. and Kwaik, A. (2000) The Modulation of Host Cell Apoptosis by Intracellular Bacterial Pathogens. Trends in Microbiology, 8, 306-313. http://dx.doi.org/10.1016/S0966-842X(00)01784-4
Renna, M.S., Correa, S.G., Porporatto, C., Figueredo, C.M., Aoki, M.P., Paraje, M.G. and Sotomayor, C.E. (2006) Hepatocellular Apoptosis during Candida albicans Colonization: Involvement of TNF-α and Infiltrating Fas-L Positive Lymphocytes. International Immunology, 18, 1719-1728. http://dx.doi.org/10.1093/intimm/dxl106
dos Santos, S.A., de Andrade Jr., D.R. and de Andrade, D.R. (2011) TNF-α Production and Apoptosis in Hepatocytes after Listeria monocytogenes and Salmonella Typhimurium Invasion. Revista do Instituto de Medicina Tropical de Sao Paulo, 53, 107-112.
Lara-Pezzi, E., Majano, P.L., Gómez-Gonzalo, M., García-Monzón, C., Moreno-Otero, R., Levrero, M. and López-Cabrera, M. (1998) The Hepatitis B Virus X Protein Up-Regulates Tumor Necrosis Factor α Gene Expression in Hepatocytes. Hepatology, 28, 1013-1021. http://dx.doi.org/10.1002/hep.510280416
Beyaert, R. and Fiers, W. (1994) Molecular Mechanisms of Tumor Necrosis Factor-Induced Cytotoxicity. What We Do Understand and What We Do Not. FEBS Letters, 340, 9-16. http://dx.doi.org/10.1016/0014-5793(94)80163-0
Fiers, W. (1991) Tumor Necrosis Factor. Characterization at the Molecular, Cellular and in Vivo Level. FEBS Letters, 285, 199-212. http://dx.doi.org/10.1016/0014-5793(91)80803-B
dos Santos, S.A., de Andrade, D.R. and de Andrade Jr., D.R. (2005) Rat Hepatocyte Invasion by Listeria monocytogenes and Analysis of TNF-α Role in Apoptosis. Revista do Instituto de Medicina Tropical de Sao Paulo, 47, 73-80. http://dx.doi.org/10.1590/S0036-46652005000200003
Mounier, J., Vasselon, T., Hellio, R., Lesourd, M. and Sanonetti, P.J. (1992) Shigella flexneri Enters Human Colonic Caco-2 Epithelial Cells through the Basolateral Pole. Infection and Immunity, 60, 237-248.
Roth, A., Konigb, P., van Zandbergenc, G., Klingerb, M., Hellwig-Burgeld, T., Daubenere, W., Bohlmannf, M.K. and Ruppa, J. (2010) Hypoxia Abrogates Antichlamydial Properties of IFN-γ in Human Fallopian Tube Cells in Vitro and ex Vivo. PNAS, 107, 19502-19507. http://dx.doi.org/10.1073/pnas.1008178107
Spear, W., Chan, D., Coppens, I., Johnson, R.S., Giaccia, A. and Blader, I.J. (2006) The Host Cell Transcription Factor Hypoxia-Inducible Factor 1 is Required for Toxoplasma gondii Growth and Survival at Physiological Oxygen Levels. Cellular Microbiology, 8, 339-352.
Colhone, M.C., Arrais-Silva, W.W., Picoli, C. and Giorgio, S. (2004) Effect of Hypoxia on Macrophage Infection by Leishmania amazonensis. Journal of Parasitology, 90, 510-515. http://dx.doi.org/10.1645/GE-3286
Wenger, R.H. (2002) Cellular Adaptation to Hypoxia: O2-Sensing Protein Hydroxylases, Hypoxia-Inducible Transcription Factors, and O2-Regulated Gene Expression. The FASEB Journal, 16, 1151-1162. http://dx.doi.org/10.1096/fj.01-0944rev
Herman, B., Gores, G.J., Nieminen, A.L., Kawanishi, T., Harman, A. and Lemasters, J.J. (1990) Calcium and pH in Anoxic and Toxic Injury. Critical Reviews in Toxicology, 21, 127-148. http://dx.doi.org/10.3109/10408449009089876
Berger, M.L., Reynolds, R.C., Hagler, H.K., Bellotto, D., Parsons, D., Mulligan, K.J. and Buja, L.M. (1989) Anoxic Hepatocyte Injury: Role of Reversible Changes in Elemental Content and Distribution. Hepatology, 9, 219-228. http://dx.doi.org/10.1002/hep.1840090210
Marteyn, B., West, N.P., Browning, D.F., Cole, J.A., Shaw, J.G., Palm, F., Mounier, J., Prévost, M.C., Sansonetti, P. and Tang, C.M. (2010) Modulation of Shigella Virulence in Response to Available Oxygen in Vivo. Nature, 465, 355-358. http://dx.doi.org/10.1038/nature08970
Lahat, N., Rahat, M.A., Kinarty, A., Weiss-Cerem, L., Pinchevski, S. and Bitterman, H. (2008) Hypoxia Enhances Lysosomal TNF-α Degradation in Mouse Peritoneal Macrophages. American Journal of Physiology—Cell Physiology, 295, C2-C12. http://dx.doi.org/10.1152/ajpcell.00572.2007
Chandel, N.S., Trzyna, W.C., McClintock, D.S. and Schumacker, P.T. (2000) Role of Oxidants in NF-Kappa B Activation and TNF-α Gene Transcription Induced by Hypoxia and Endotoxin. The Journal of Immunology, 165, 1013-1021. http://dx.doi.org/10.4049/jimmunol.165.2.1013
Ndengele, M.M., Bellone, C.J., Lechner, A.J. and Matuschak, G.M. (2000) Brief Hypoxia Differentially Regulates LPS-Induced IL-1 and TNF-alpha Gene Transcription in RAW 264.7 Cells. American Journal of Physiology. Lung Cellular and Molecular Physiology, 278, L1289-L1296.
Ammirati, M., Rao, S. and Granger, G. (2001) Detection of TNF Inhibitors (Soluble Receptors) in the Sera and Tumor Cyst Fluid of Patients with Malignant Astrocytomas of the Brain. Frontiers in Bioscience, 6, B17-B24. http://dx.doi.org/10.2741/Ammirat
Cinat, M.E., Waxman, K., Granger, G.A., Pearce, W., Annas, C. and Daughters, K. (1994) Trauma Causes Sustained Elevation of Soluble Tumor Necrosis Factor Receptors. Journal of the American College of Surgeons, 179, 529-537.
Riva, C., Chauvin, C., Pison, C. and Leverve, X. (1998) Cellular Physiology and Molecular Events in Hypoxia-Induced Apoptosis. Anticancer Research, 18, 4729-4736.
Crenesse, D., Gugenheim, J., Hornoy, J., Tornieri, K., Laurens, M., Cambien, B., Lenegrate, G., Cursio, R., De Souza, G., Auberger, P., Heurteaux, C., Rossi, B. and Schmid-Alliana, A. (2000) Protein Kinase Activation by Warm and Cold Hypoxia-Reoxygenation in Primary-Cultured Rat Hepatocytes-JNK1/SAPK1 Involvement in Apoptosis. Hepatology, 32, 1029-1036. http://dx.doi.org/10.1053/jhep.2000.19065
Delpino, M.V., Barrionuevo, P., Scian, R., Fossati, C.A. and Baldi, P.C. (2010) Brucella-Infected Hepatocytes Mediate Potentially Tissue-Damaging Immune Responses. Journal of Hepatology, 53, 145-154. http://dx.doi.org/10.1016/j.jhep.2010.02.028
Navarre, W.W. and Zychlinsky, A. (2000) Pathogen-Induced Apoptosis of Macrophages: A Common End for Different Pathogenic Strategies. Cellular Microbiology, 2, 265-273. http://dx.doi.org/10.1046/j.1462-5822.2000.00056.x
Bhattacharyya, A., Chattopadhyay, R., Hall, E.H., Mebrahtu, S.T., Ernst, P.B. and Crowe, S.E. (2010) Mechanism of Hypoxia-Inducible Factor 1α-Mediated Mcl1 Regulation in Helicobacter pylori-Infected Human Gastric Epithelium. American Journal of Physiology—Gastrointestinal and Liver Physiology, 299, G1177-G1186. http://dx.doi.org/10.1152/ajpgi.00372.2010
Nakamura, M., Bodily, J.M., Beglin, M., Kyo, S., Inoue, M. and Laimins, L.A. (2009) Hypoxia-Specific Stabilization of HIF-1alpha by Human Papillomaviruses. Virology, 387, 442-448. http://dx.doi.org/10.1016/j.virol.2009.02.036
Regueira, T., Lepper, P.M., Brandt, S., Ochs, M., Vuda, M., Takala, J., Jakob, S.M. and Djafarzadeh, S. (2009) Hypoxia Inducible Factor-1α Induction by Tumor Necrosis Factor-α, but Not by Toll-Like Receptor Agonists, Modulates Cellular Respiration in Cultured Human Hepatocytes. Liver International, 29, 1582-1592. http://dx.doi.org/10.1111/j.1478-3231.2009.02109.x