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Differential behavioral and glial responses induced by dopaminergic mechanisms in the iNOS knockout mice
Ana Carolina Issy1, Glauce Crivelaro Nascimento2, Gabriel Henrique Dias de Abreu2
1University of São Paulo (USP), Dental School of Ribeirão Preto, Department of Morphology, Physiology and Basic Pathology, Ribeirão Preto, SP, Brazil; USP, Center for Interdisciplinary Research on Applied Neurosciences (NAPNA), Brazil; USP, Medical School of Ribeirão Preto, Department of Neuroscience and Behavior Sciences, Ribeirão Preto, SP, Brazil.
Abstract:
The interaction between distinctive nitric oxide synthase (NOS) isoforms and the dopamine system provides new avenues to the development of pharmacological tools for the pathophysiological conditions of the dopaminergic system. Our aim was to investigate the influences of dopamine-induced effects in inducible NOS knockout (iNOS KO) mice. In order to characterize iNOS KO mice phenotype, the animals were submitted to the basal analyses of motor, sensorimotor and sensorial abilities. Pharmacological challenging of the dopaminergic system included the investigation of amphetamine-induced prepulse inhibition (PPI) disruption, haloperidol-induced catalepsy, reserpine-induced oral involuntary movements and hyperlocomotion induced by amphetamine in reserpine treated mice. The iNOS KO mice showed significant reduction of spontaneous motor activity, but there was no significant difference in sensorimotor or sensorial responses of iNOS KO mice compared to wild type (WT). Regarding the dopaminergic system, iNOS KO mice showed a significant increase of haloperidol-induced catalepsy. This effect was confirmed through an iNOS pharmacological inhibitor (1400 W) in WT mice. In addition, iNOS KO reserpine treated mice showed reduced oral involuntary movements and amphetamine-induced hyperlocomotion. Knowing that iNOS is mainly expressed in glial cells we analyzed the immunoreactivity (ir) for GFAP (astrocyte marker) and IBA-1 (microglial marker) in the striatum, an area enrolled in motor planning among other functions. iNOS KO presented reduced GFAP-ir and IBA-1-ir compared with WT. Reserpine treatment increased GFAP-ir in both WT and iNOS KO. However, these effects were slighter in iNOS KO. Activated state of microglia was increased by reserpine only in WT mice. Our results further demonstrated that the absence of iNOS interfered with dopamine-mediated behavioral and molecular responses. These results increase the understanding of the dopamine and NO system interaction, which is useful for the management of the dopamine-related pathologies.
Insights
Mice lacking inducible nitric oxide synthase (iNOS) exhibit altered dopamine responses, including increased catalepsy and reduced involuntary movements. This suggests iNOS plays a key role in regulating dopaminergic functions and associated behaviors.
Area of Science:
- Neuroscience
- Pharmacology
Background:
- Nitric oxide synthase (NOS) isoforms interact with the dopamine system, offering potential therapeutic targets for dopaminergic disorders.
- Inducible NOS (iNOS) is primarily expressed in glial cells and its role in dopaminergic function requires further elucidation.
Purpose of the Study:
- To investigate the influence of dopamine-induced effects in inducible nitric oxide synthase knockout (iNOS KO) mice.
- To characterize the behavioral and molecular responses related to the dopaminergic system in the absence of iNOS.
Main Methods:
- Phenotypic characterization of iNOS KO mice including motor, sensorimotor, and sensorial abilities.
- Pharmacological challenges: amphetamine-induced prepulse inhibition disruption, haloperidol-induced catalepsy, reserpine-induced oral movements, and amphetamine-induced hyperlocomotion.
- Analysis of glial markers (GFAP, IBA-1) in the striatum via immunoreactivity.
Main Results:
- iNOS KO mice displayed reduced spontaneous motor activity but normal sensorimotor/sensorial responses.
- Absence of iNOS significantly increased haloperidol-induced catalepsy, an effect replicated by an iNOS inhibitor in wild-type mice.
- iNOS KO mice showed decreased reserpine-induced oral movements and amphetamine-induced hyperlocomotion.
- Reduced glial fibrillary acidic protein (GFAP) and IBA-1 immunoreactivity were observed in iNOS KO mice striatum, with blunted responses to reserpine.
Conclusions:
- The absence of iNOS significantly alters dopamine-mediated behavioral and molecular responses.
- iNOS plays a crucial role in modulating dopaminergic system functions, particularly in glial cell responses.
- Understanding the dopamine-NO system interaction, specifically iNOS involvement, is vital for managing dopamine-related pathologies.
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