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Science 18 March 1994:
Vol. 263. no. 5153, pp. 1612 - 1615
DOI: 10.1126/science.7510419

Articles

Science, Vol 263, Issue 5153, 1612-1615
Copyright © 1994 by American Association for the Advancement of Science


articles

Requirement for transcription factor IRF-1 in NO synthase induction in macrophages

R Kamijo, H Harada, T Matsuyama, M Bosland, J Gerecitano, D Shapiro, J Le, SI Koh, T Kimura, SJ Green, and al. et

Department of Microbiology, New York University Medical Center, NY 10016.

Production of nitric oxide (NO) by macrophages is important for the killing of intracellular infectious agents. Interferon (IFN)-gamma and lipopolysaccharide stimulate NO production by transcriptionally up-regulating the inducible NO synthase (iNOS). Macrophages from mice with a targeted disruption of the IFN regulatory factor-1 (IRF-1) gene (IRF-1-/- mice) produced little or no NO and synthesized barely detectable iNOS messenger RNA in response to stimulation. Two adjacent IRF-1 response elements were identified in the iNOS promoter. Infection with Mycobacterium bovis (BCG) was more severe in IRF-1-/- mice than in wild-type mice. Thus, IRF-1 is essential for iNOS activation in murine macrophages.


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Engineering of Macrophages to Produce IFN-{{gamma}} in Response to Hypoxia.
L. Carta, S. Pastorino, G. Melillo, M. C. Bosco, S. Massazza, and L. Varesio (2001)
J. Immunol. 166, 5374-5380
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Induction of Inducible Nitric Oxide Synthase-NO{middle dot} by Lipoarabinomannan of Mycobacterium tuberculosis Is Mediated by MEK1-ERK, MKK7-JNK, and NF-{kappa}B Signaling Pathways.
E. D. Chan, K. R. Morris, J. T. Belisle, P. Hill, L. K. Remigio, P. J. Brennan, and D. W. H. Riches (2001)
Infect. Immun. 69, 2001-2010
   Abstract »    Full Text »    PDF »
Requirement for STAT1 in LPS-induced gene expression in macrophages.
Y. Ohmori and T. A. Hamilton (2001)
J. Leukoc. Biol. 69, 598-604
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IFN-{{gamma}}/TNF-{{alpha}} Synergism as the Final Effector in Autoimmune Diabetes: A Key Role for STAT1/IFN Regulatory Factor-1 Pathway in Pancreatic {{beta}} Cell Death.
K. Suk, S. Kim, Y.-H. Kim, K.-A. Kim, I. Chang, H. Yagita, M. Shong, and M.-S. Lee (2001)
J. Immunol. 166, 4481-4489
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Growth Suppression of the Hepatocellular Carcinoma Cell Line Hepa1-6 by an Activatable Interferon Regulatory Factor-1 in Mice.
A. Kröger, D. Ortmann, T. U. Krohne, L. Mohr, H. E. Blum, H. Hauser, and M. Geissler (2001)
Cancer Res. 61, 2609-2617
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IFN-{gamma} + LPS induction of iNOS is modulated by ERK, JNK/SAPK, and p38mapk in a mouse macrophage cell line.
E. D. Chan and D. W. H. Riches (2001)
Am J Physiol Cell Physiol 280, C441-C450
   Abstract »    Full Text »    PDF »
Role of Nitric Oxide Synthase Type 2 in Acute Infection with Murine Cytomegalovirus.
S. Noda, K. Tanaka, S.-a. Sawamura, M. Sasaki, T. Matsumoto, K. Mikami, Y. Aiba, H. Hasegawa, N. Kawabe, and Y. Koga (2001)
J. Immunol. 166, 3533-3541
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Cutting Edge: Stat6-Dependent Substrate Depletion Regulates Nitric Oxide Production.
R. Rutschman, R. Lang, M. Hesse, J. N. Ihle, T. A. Wynn, and P. J. Murray (2001)
J. Immunol. 166, 2173-2177
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Expression of the Nitric Oxide Synthase 2 Gene Is Not Essential for Early Control of Mycobacterium tuberculosis in the Murine Lung.
A. M. Cooper, J. E. Pearl, J. V. Brooks, S. Ehlers, and I. M. Orme (2000)
Infect. Immun. 68, 6879-6882
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Retinoic acid and host-pathogen interactions: effects on inducible nitric oxide synthase in vivo.
Y. Devaux, S. Grosjean, C. Seguin, C. David, B. Dousset, F. Zannad, C. Meistelman, N. De Talance, P.-M. Mertes, and D. Ungureanu-Longrois (2000)
Am J Physiol Endocrinol Metab 279, E1045-E1053
   Abstract »    Full Text »    PDF »
Characterization of a Novel Human Herpesvirus 8-Encoded Protein, vIRF-3, That Shows Homology to Viral and Cellular Interferon Regulatory Factors.
B. Lubyova and P. M. Pitha (2000)
J. Virol. 74, 8194-8201
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Deficiency in the Transcription Factor Interferon Regulatory Factor (Irf)-2 Leads to Severely Compromised Development of Natural Killer and T Helper Type 1 Cells.
M. Lohoff, G. S. Duncan, D. Ferrick, H.-W. Mittrucker, S. Bischof, S. Prechtl, M. Rollinghoff, E. Schmitt, A. Pahl, and T. W. Mak (2000)
J. Exp. Med. 192, 325-336
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Central Role of Double-Stranded RNA-Activated Protein Kinase in Microbial Induction of Nitric Oxide Synthase.
K. Uetani, S. D. Der, M. Zamanian-Daryoush, C. de la Motte, B. Y. Lieberman, B. R. G. Williams, and S. C. Erzurum (2000)
J. Immunol. 165, 988-996
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IFN-{gamma} and IL-4 differently regulate inducible NO synthase gene expression through IRF-1 modulation.
E. M. Coccia, E. Stellacci, G. Marziali, G. Weiss, and A. Battistini (2000)
Int. Immunol. 12, 977-985
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Interferon Regulatory Factor (Irf)-1 and Irf-2 Regulate Interferon {gamma}-Dependent Cyclooxygenase 2 Expression.
J. C. G. Blanco, C. Contursi, C. A. Salkowski, D. L. DeWitt, K. Ozato, and S. N. Vogel (2000)
J. Exp. Med. 191, 2131-2144
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Molecular Mechanisms of Increased Nitric Oxide (NO) in Asthma: Evidence for Transcriptional and Post-Translational Regulation of NO Synthesis.
F. H. Guo, S. A. A. Comhair, S. Zheng, R. A. Dweik, N. T. Eissa, M. J. Thomassen, W. Calhoun, and S. C. Erzurum (2000)
J. Immunol. 164, 5970-5980
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The Cytotoxic Enterotoxin of Aeromonas hydrophila Induces Proinflammatory Cytokine Production and Activates Arachidonic Acid Metabolism in Macrophages.
A. K. Chopra, X.-J. Xu, D. Ribardo, M. Gonzalez, K. Kuhl, J. W. Peterson, and C. W. Houston (2000)
Infect. Immun. 68, 2808-2818
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CCAAT/Enhancer-binding Protein-beta Regulates Interferon-induced Transcription through a Novel Element.
S. K. Roy, S. J. Wachira, X. Weihua, J. Hu, and D. V. Kalvakolanu (2000)
J. Biol. Chem. 275, 12626-12632
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Interferon-{gamma} Induces AT2 Receptor Expression in Fibroblasts by Jak/STAT Pathway and Interferon Regulatory Factor-1.
M. Horiuchi, W. Hayashida, M. Akishita, S. Yamada, J. Y. A. Lehtonen, K. Tamura, L. Daviet, Y. E. Chen, M. Hamai, T.-X. Cui, et al. (2000)
Circ. Res. 86, 233-240
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Inflammation influences vascular remodeling through AT2 receptor expression and signaling.
M. AKISHITA, M. HORIUCHI, H. YAMADA, L. ZHANG, G. SHIRAKAMI, K. TAMURA, Y. OUCHI, and V. J. DZAU (2000)
Physiol Genomics 2, 13-20
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Cutting Edge: Heat Shock Protein 60 Is a Putative Endogenous Ligand of the Toll-Like Receptor-4 Complex.
K. Ohashi, V. Burkart, S. Flohe, and H. Kolb (2000)
J. Immunol. 164, 558-561
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Can Murine Uterine Natural Killer Cells Give Insights Into the Pathogenesis of Preeclampsia?.
B. A. Croy, A. A. Ashkar, K. Minhas, and J. D. Greenwood (2000)
Reproductive Sciences 7, 12-20
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