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Nitric oxide contributes to host resistance against experimental Taenia crassiceps cysticercosis
Javier Alonso-Trujillo1, Irma Rivera-Montoya, Miriam Rodríguez-Sosa
1Laboratory of Immunoparasitology, Unidad de Biomedicina, Facultad de Estudios Superiores-Iztacala, Universidad Nacional Autónoma de México, Av. De los Barrios # 1, Los Reyes Iztacala, 54090 Tlalnepantla, Edo. de México, Mexico.
Abstract:
The immune mechanisms that underlie resistance and susceptibility to cysticercosis are not completely understood. In this paper, using susceptible BALB/c mice and resistant STAT6-/-BALB/c mice, we have analyzed the role of nitric oxide (NO) in determining the outcome of murine cysticercosis caused by the cestode Taenia crassiceps. After T. crassiceps infection, wild-type BALB/c mice developed a strong Th2-like response, produced high levels of IgG1, IgE, IL-5, IL-4, and discrete levels of NO, and remained susceptible to T. crassiceps infection. In contrast, similarly infected BALB/c mice treated with N(omega)-nitro-L-arginine methyl ester (L-NAME, an inhibitor of NO synthase) mounted a similar immune response but with lower levels of NO and harbored nearly 100% more parasites than N(omega)-nitro-D-arginine methyl ester (D-NAME, inactive enantiomer)-treated mice. To further analyze the role of NO in murine cysticercosis, we treated STAT6-/-male mice (known to be highly resistant to T. crassiceps) with L-NAME during 8 weeks of infection. As expected, STAT6-/-mice mounted a strong Th1-like response, produced high levels of IgG2a, IFN-gamma, and IL-17, whereas their macrophages displayed increased transcripts of tumor necrosis factor (TNF)-alpha as well as inducible nitric oxide synthase (iNOS) and efficiently controlled T. crassiceps infection. However, STAT6-/-male mice receiving L-NAME mounted a similar immune response but with lower iNOS transcripts concomitantly with decreased levels of NO in sera and displayed significantly higher parasite burdens. These findings suggest that macrophage activation and NO production are effector mechanisms that importantly contribute in host resistance to T. crassiceps infection. The immune mechanisms that underlie resistance and susceptibility to cysticercosis are not completely understood. In this paper, using susceptible BALB/c mice and resistant STAT6-/-BALB/c mice, we have analyzed the role of nitric oxide (NO) in determining the outcome of murine cysticercosis caused by the cestode Taenia crassiceps. After T. crassiceps infection, wild-type BALB/c mice developed a strong Th2-like response, produced high levels of IgG1, IgE, IL-5, IL-4, and discrete levels of NO, and remained susceptible to T. crassiceps infection. In contrast, similarly infected BALB/c mice treated with N(omega)-nitro-L-arginine methyl ester (L-NAME, an inhibitor of NO synthase) mounted a similar immune response but with lower levels of NO and harbored nearly 100% more parasites than N(omega)-nitro-d-arginine methyl ester (D-NAME, inactive enantiomer)-treated mice. To further analyze the role of NO in murine cysticercosis, we treated STAT6-/-male mice (known to be highly resistant to T. crassiceps) with L-NAME during 8 weeks of infection. As expected, STAT6-/-mice mounted a strong Th1-like response, produced high levels of IgG2a, IFN-gamma, and IL-17, whereas their macrophages displayed increased transcripts of tumor necrosis factor (TNF)-alpha as well as inducible nitric oxide synthase (iNOS) and efficiently controlled T. crassiceps infection. However, STAT6-/-male mice receiving L-NAME mounted a similar immune response but with lower iNOS transcripts concomitantly with decreased levels of NO in sera and displayed significantly higher parasite burdens. These findings suggest that macrophage activation and NO production are effector mechanisms that importantly contribute in host resistance to T. crassiceps infection.
Insights
Nitric oxide (NO) plays a crucial role in controlling cysticercosis. Inhibiting NO synthase in mice increased parasite burden, suggesting NO production by macrophages is vital for host resistance against Taenia crassiceps infection.
Area of Science:
- Immunology
- Parasitology
- Molecular Biology
Background:
- Cysticercosis pathogenesis involves complex immune responses.
- The precise immune mechanisms conferring resistance or susceptibility remain unclear.
- Nitric oxide (NO) is implicated in host-parasite interactions.
Purpose of the Study:
- To elucidate the role of nitric oxide (NO) in murine cysticercosis.
- To analyze NO's contribution to resistance and susceptibility in Taenia crassiceps infection.
- To investigate NO's function in macrophage-mediated immunity.
Main Methods:
- Utilized susceptible BALB/c and resistant STAT6-/- mice models.
- Administered N(omega)-nitro-L-arginine methyl ester (L-NAME), an NO synthase inhibitor.
- Assessed parasite burden, immune responses (Th1/Th2 cytokines, antibodies), and macrophage activation markers.
Main Results:
- Susceptible BALB/c mice exhibited a Th2 response with low NO levels.
- L-NAME treatment in BALB/c mice increased parasite load.
- Resistant STAT6-/- mice showed a Th1 response and controlled infection, but L-NAME treatment led to higher parasite burdens.
- NO production and macrophage activation correlated with resistance.
Conclusions:
- Macrophage activation and nitric oxide (NO) production are critical effector mechanisms in host resistance to cysticercosis.
- NO significantly contributes to controlling Taenia crassiceps infection.
- Understanding these mechanisms could inform therapeutic strategies for cysticercosis.
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