Monoamine oxidase A and A/B knockout mice display autistic-like features

Author:

Bortolato Marco1,Godar Sean C.1,Alzghoul Loai2,Zhang Junlin3,Darling Ryan D.4,Simpson Kimberly L.45,Bini Valentina6,Chen Kevin1,Wellman Cara L.7,Lin Rick C. S.45,Shih Jean C.18

Affiliation:

1. Department of Pharmacology and Pharmaceutical Sciences, School of Pharmacy, University of Southern California, Los Angeles, CA, USA

2. Program in Neuroscience, University of Mississippi Medical Center, Jackson, MS, USA

3. Department of Surgery, University of Mississippi Medical Center, Jackson, MS, USA

4. Department of Neurobiology and Anatomical Sciences, University of Mississippi Medical Center, Jackson, MS, USA

5. Department of Psychiatry and Human Behavior, University of Mississippi Medical Center, Jackson, MS, USA

6. Guy Everett' Laboratory Department of Neuroscience ‘B. B. Brodie’, University of Cagliari, Monserrato, CA, Italy

7. Department of Psychological and Brain Sciences and Program in Neuroscience, Indiana University, Bloomington, IN, USA

8. Department of Cell and Neurobiology, Keck School of Medicine, University of Southern California, Los Angeles, CA, USA

Abstract

Abstract Converging lines of evidence show that a sizable subset of autism-spectrum disorders (ASDs) is characterized by increased blood levels of serotonin (5-hydroxytryptamine, 5-HT), yet the mechanistic link between these two phenomena remains unclear. The enzymatic degradation of brain 5-HT is mainly mediated by monoamine oxidase (MAO)A and, in the absence of this enzyme, by its cognate isoenzyme MAOB. MAOA and A/B knockout (KO) mice display high 5-HT levels, particularly during early developmental stages. Here we show that both mutant lines exhibit numerous behavioural hallmarks of ASDs, such as social and communication impairments, perseverative and stereotypical responses, behavioural inflexibility, as well as subtle tactile and motor deficits. Furthermore, both MAOA and A/B KO mice displayed neuropathological alterations reminiscent of typical ASD features, including reduced thickness of the corpus callosum, increased dendritic arborization of pyramidal neurons in the prefrontal cortex and disrupted microarchitecture of the cerebellum. The severity of repetitive responses and neuropathological aberrances was generally greater in MAOA/B KO animals. These findings suggest that the neurochemical imbalances induced by MAOA deficiency (either by itself or in conjunction with lack of MAOB) may result in an array of abnormalities similar to those observed in ASDs. Thus, MAOA and A/B KO mice may afford valuable models to help elucidate the neurobiological bases of these disorders and related neurodevelopmental problems.

Publisher

Oxford University Press (OUP)

Subject

Pharmacology (medical),Psychiatry and Mental health,Pharmacology

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