4.3 Article

Knock-out of the critical nitric oxide synthase regulator DDAH1 in mice impacts amphetamine sensitivity and dopamine metabolism

Journal

JOURNAL OF NEURAL TRANSMISSION
Volume -, Issue -, Pages -

Publisher

SPRINGER WIEN
DOI: 10.1007/s00702-023-02597-7

Keywords

DDAH1; Knock-out mice; Behaviour; Nitric oxide; Dopamine; Amphetamine

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In this study, the role of DDAH1 in behavioral endophenotypes with neuropsychiatric relevance was investigated. The results showed that DDAH1-ko mice exhibited changes in exploratory behavior, amphetamine response, and dopamine metabolite levels. Female mice showed the most significant amphetamine response, supporting the potential implication of the DDAH/ADMA pathway in central nervous system processes.
The enzyme dimethylarginine dimethylaminohydrolase 1 (DDAH1) plays a pivotal role in the regulation of nitric oxide levels by degrading the main endogenous nitric oxide synthase inhibitor asymmetric dimethylarginine (ADMA). Growing evidence highlight the potential implication of DDAH/ADMA axis in the etiopathogenesis of several neuropsychiatric and neurological disorders, yet the underlying molecular mechanisms remain elusive. In this study, we sought to investigate the role of DDAH1 in behavioral endophenotypes with neuropsychiatric relevance. To achieve this, a global DDAH1 knock-out (DDAH1-ko) mouse strain was employed. Behavioral testing and brain region-specific neurotransmitter profiling have been conducted to assess the effect of both genotype and sex. DDAH1-ko mice exhibited increased exploratory behavior toward novel objects, altered amphetamine response kinetics and decreased dopamine metabolite 3,4-dihydroxyphenylacetic acid (DOPAC) level in the piriform cortex and striatum. Females of both genotypes showed the most robust amphetamine response. These results support the potential implication of the DDAH/ADMA pathway in central nervous system processes shaping the behavioral outcome. Yet, further experiments are required to complement the picture and define the specific brain-regions and mechanisms involved.

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