[PDF][PDF] Phenotype of mice and macrophages deficient in both phagocyte oxidase and inducible nitric oxide synthase

MU Shiloh, JD MacMicking, S Nicholson, JE Brause… - Immunity, 1999 - cell.com
MU Shiloh, JD MacMicking, S Nicholson, JE Brause, S Potter, M Marino, F Fang, M Dinauer…
Immunity, 1999cell.com
The two genetically established antimicrobial mechanisms of macrophages are production
of reactive oxygen intermediates by phagocyte oxidase (phox) and reactive nitrogen
intermediates by inducible nitric oxide synthase (NOS2). Mice doubly deficient in both
enzymes (gp91 phox−/−/NOS2−/−) formed massive abscesses containing commensal
organisms, mostly enteric bacteria, even when reared under specific pathogen-free
conditions with antibiotics. Neither parental strain showed such infections. Thus, phox and …
Abstract
The two genetically established antimicrobial mechanisms of macrophages are production of reactive oxygen intermediates by phagocyte oxidase (phox) and reactive nitrogen intermediates by inducible nitric oxide synthase (NOS2). Mice doubly deficient in both enzymes (gp91 phox−/−/NOS2−/−) formed massive abscesses containing commensal organisms, mostly enteric bacteria, even when reared under specific pathogen-free conditions with antibiotics. Neither parental strain showed such infections. Thus, phox and NOS2 appear to compensate for each other's deficiency in providing resistance to indigenous bacteria, and no other pathway does so fully. Macrophages from gp91 phox−/−/NOS2 −/− mice could not kill virulent Listeria. Their killing of S. typhimurium, E. coli, and attenuated Listeria was markedly diminished but demonstrable, establishing the existence of a mechanism of macrophage antibacterial activity independent of phox and NOS2.
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