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Deficiency of Shank2 causes mania-like behavior that responds to mood stabilizers
Andrea L. Pappas, Alexandra L. Bey, Xiaoming Wang, Mark Rossi, Yong Ho Kim, Haidun Yan, Fiona Porkka, Lara J. Duffney, Samantha M. Phillips, Xinyu Cao, Jin-dong Ding, Ramona M. Rodriguiz, Henry H. Yin, Richard J. Weinberg, Ru-Rong Ji, William C. Wetsel, Yong-hui Jiang
Andrea L. Pappas, Alexandra L. Bey, Xiaoming Wang, Mark Rossi, Yong Ho Kim, Haidun Yan, Fiona Porkka, Lara J. Duffney, Samantha M. Phillips, Xinyu Cao, Jin-dong Ding, Ramona M. Rodriguiz, Henry H. Yin, Richard J. Weinberg, Ru-Rong Ji, William C. Wetsel, Yong-hui Jiang
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Research Article Genetics Neuroscience

Deficiency of Shank2 causes mania-like behavior that responds to mood stabilizers

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Abstract

Genetic defects in the synaptic scaffolding protein gene, SHANK2, are linked to a variety of neuropsychiatric disorders, including autism spectrum disorders, schizophrenia, intellectual disability, and bipolar disorder, but the molecular mechanisms underlying the pleotropic effects of SHANK2 mutations are poorly understood. We generated and characterized a line of Shank2 mutant mice by deleting exon 24 (Δe24). Shank2Δe24–/– mice engage in significantly increased locomotor activity, display abnormal reward-seeking behavior, are anhedonic, have perturbations in circadian rhythms, and show deficits in social and cognitive behaviors. While these phenotypes recapitulate the pleotropic behaviors associated with human SHANK2-related disorders, major behavioral features in these mice are reminiscent of bipolar disorder. For instance, their hyperactivity was augmented with amphetamine but was normalized with the mood stabilizers lithium and valproate. Shank2 deficiency limited to the forebrain recapitulated the bipolar mania phenotype. The composition and functions of NMDA and AMPA receptors were altered at Shank2-deficient synapses, hinting toward the mechanism underlying these behavioral abnormalities. Human genetic findings support construct validity, and the behavioral features in Shank2 Δe24 mice support face and predictive validities of this model for bipolar mania. Further genetic studies to understand the contribution of SHANK2 deficiencies in bipolar disorder are warranted.

Authors

Andrea L. Pappas, Alexandra L. Bey, Xiaoming Wang, Mark Rossi, Yong Ho Kim, Haidun Yan, Fiona Porkka, Lara J. Duffney, Samantha M. Phillips, Xinyu Cao, Jin-dong Ding, Ramona M. Rodriguiz, Henry H. Yin, Richard J. Weinberg, Ru-Rong Ji, William C. Wetsel, Yong-hui Jiang

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Figure 3

Social, repetitive, stereotyped, and cognitive behaviors in Shank2Δe24 mutant mice.

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Social, repetitive, stereotyped, and cognitive behaviors in Shank2Δe24 m...
(A) In the sociability test, no genotype or sex differences were observed for preference between two identical nonsocial (NS-NS) stimuli. In the NS-social 1 (NS-S1) pairing, there was a trend (RMANOVA: P = 0.08) for social affiliation to be reduced in male, but not in female, Δe24–/– mice compared with e24+/+ controls (n = 11–14 mice/genotype/sex). (B) In the social dyadic test, e24+/+ mice engaged in significantly more bidirectional than unidirectional interaction behaviors, while Δe24+/– and Δe24–/– mice showed no distinctions between bidirectional and unidirectional interactions (RMANOVA: *P < 0.05, bidirectional vs. unidirectional interaction; n = 8 for e24+/–, n = 10 for Δe24–/– and Δe24+/+ mice). (C) The duration of grooming and numbers of grooming bouts in Δe24–/– mice were decreased compared with those in e24+/+ mice before water spray and in both e24+/+ and e24+/– mice after water spray (RMANOVA: *P < 0.05, +/+ vs. –/–; #P < 0.05, +/– vs. –/–; n = 21 for +/+, n = 20 for –/–, and n = 8 for +/– mice). (D) In the hole board test, Δe24–/– mice had a significantly higher ratio of nose pokes to number of holes than e24+/+ controls. There were no genotype differences in the number of pokes (RMANOVA: *P < 0.05, +/+ vs. –/–; n = 28 for +/+, n = 30 for –/–; #P < 0.05 for +/– vs. –/–; n = 13 for +/– mice). (E and F) Acquisition and reversal performance in the Morris water maze (MWM). Acquisition swim times (E) were longer for the Δe24–/– mice to reach the hidden platform than for the e24+/+ animals. A similar finding was observed during reversal (F) (RMANOVA: *P < 0.05, +/+ vs. –/–; #P < 0.05, +/– vs. –/–; n = 8–9 mice/genotype).

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