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Social deficits and perseverative behaviors, but not overt aggression, in MAO-A hypomorphic mice
Marco Bortolato1, Kevin Chen, Sean C Godar
1Department of Pharmacology and Pharmaceutical Sciences, School of Pharmacy, University of Southern California, Los Angeles, CA 90089, USA.
Abstract:
Monoamine oxidase (MAO)-A is a key enzyme for the degradation of brain serotonin (5-hydroxytryptamine, 5-HT) and norepinephrine (NE). In humans and mice, total MAO-A deficiency results in high 5-HT and NE levels, as well as elevated reactive aggression. Here we report the generation of MAO-A(Neo) mice, a novel line of hypomorphic MAO-A mutants featuring the insertion of a floxed neomycin-resistance cassette in intron-12 of the Maoa gene. This construct resulted in a chimeric, non-functional variant of the Maoa-Neo transcript, with a truncated C-terminus, likely due to aberrant splicing; these deficits notwithstanding, small amounts of functional Maoa transcript were found in the brain of MAO-A(Neo) mice. In the prefrontal cortex and amygdala, MAO-A(Neo) mice showed low, yet detectable, MAO-A catalytic activity, as well as 5-HT levels equivalent to WT littermates; conversely, the hippocampus and midbrain of MAO-A(Neo) mice featured a neurochemical profile akin to MAO-A-knockout (KO) mice, with undetectable MAO-A activity and high 5-HT concentrations. MAO-A(Neo) mice showed significant increases in dendritic length in the pyramidal neurons of orbitofrontal cortex, but not basolateral amygdala, in comparison with WT littermates; by contrast, the orbitofrontal cortex of MAO-A KO mice showed significant reductions in basilar dendritic length, as well as a profound increase in apical dendritic length. MAO-A(Neo) mice showed a unique set of behavioral abnormalities, encompassing reduced open-field locomotion, perseverative responses, such as marble burying and water mist-induced grooming, and a lack of anxiety-like behaviors in the elevated plus-maze and light-dark box paradigms. Notably, whereas MAO-A(Neo) and KO mice showed significant reductions in social interaction, only the latter genotype showed increases in resident-intruder aggression. Taken together, our findings indicate that MAO A hypomorphism results in behavioral and morphological alterations distinct from those featured by MAO-A KO mice.
Insights
Monoamine oxidase A (MAO-A) hypomorphic mice exhibit distinct neurochemical and behavioral changes compared to knockout models. These MAO-A(Neo) mice display unique alterations in brain serotonin levels and neuronal morphology, impacting behavior differently than complete MAO-A deficiency.
Area of Science:
- Neuroscience
- Genetics
- Pharmacology
Background:
- Monoamine oxidase A (MAO-A) is crucial for degrading serotonin (5-HT) and norepinephrine (NE) in the brain.
- Complete MAO-A deficiency in mice leads to elevated neurotransmitter levels and increased aggression.
- Understanding MAO-A's role requires studying models with partial enzyme function.
Purpose of the Study:
- To characterize MAO-A(Neo) mice, a novel hypomorphic MAO-A mutant model.
- To investigate the neurochemical, morphological, and behavioral consequences of partial MAO-A deficiency.
- To compare the effects of MAO-A hypomorphism with complete MAO-A knockout (KO).
Main Methods:
- Generation of MAO-A(Neo) mice via insertion of a floxed neomycin-resistance cassette in the Maoa gene.
- Analysis of MAO-A transcript and catalytic activity in different brain regions.
- Assessment of 5-HT levels, dendritic morphology (orbitofrontal cortex, amygdala), and behavioral phenotypes (locomotion, perseveration, anxiety, social interaction, aggression).
Main Results:
- MAO-A(Neo) mice exhibited regional differences in MAO-A activity and 5-HT levels, with some brain areas resembling WT and others KO.
- Increased dendritic length in orbitofrontal cortex pyramidal neurons was observed in MAO-A(Neo) mice, contrasting with MAO-A KO mice.
- MAO-A(Neo) mice displayed reduced locomotion, perseverative behaviors, lack of anxiety, and reduced social interaction, but not increased aggression seen in KO mice.
Conclusions:
- MAO-A hypomorphism in MAO-A(Neo) mice results in a unique neurochemical and neuroanatomical profile distinct from MAO-A KO.
- These findings highlight that the degree of MAO-A functional deficiency significantly influences brain function and behavior.
- MAO-A(Neo) mice provide a valuable model for studying the nuanced roles of MAO-A in brain function and behavior.

