4.8 Article

Striatopallidal dysfunction underlies repetitive behavior in Shank3-deficient model of autism

Journal

JOURNAL OF CLINICAL INVESTIGATION
Volume 127, Issue 5, Pages 1978-1990

Publisher

AMER SOC CLINICAL INVESTIGATION INC
DOI: 10.1172/JCI87997

Keywords

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Funding

  1. Simons Center for the Social Brain at MIT
  2. Natural Science Foundation of China [81371498]
  3. International Science and Technology Cooperation Program of China [2011DFA32560]
  4. NIMH [5R01MH097104]
  5. Poitras Center for Affective Disorders Research at MIT
  6. Stanley Center for Psychiatric Research at the Broad Institute of MIT and Harvard
  7. Nancy Lurie Marks Family Foundation
  8. Simons Foundation Autism Research Initiative (SFARI)
  9. National Alliance for Research on Schizophrenia and Depression (NARSAD) Young Investigator Grant from the Brain and Behavior Research Foundation

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The postsynaptic scaffolding protein SH3 and multiple ankyrin repeat domains 3 (SHANK3) is critical for the development and function of glutamatergic synapses. Disruption of the SHANK3-encoding gene has been strongly implicated as a monogenic cause of autism, and Shank3 mutant mice show repetitive grooming and social interaction deficits. Although basal ganglia dysfunction has been proposed to underlie repetitive behaviors, few studies have provided direct evidence to support this notion and the exact cellular mechanisms remain largely unknown. Here, we utilized the Shank3B mutant mouse model of autism to investigate how Shank3 mutation may differentially affect striatonigral (direct pathway) and striatopallidal (indirect pathway) medium spiny neurons (MSNs) and its relevance to repetitive grooming behavior in Shank3B mutant mice. We found that Shank3 deletion preferentially affects synapses onto striatopallidal MSNs. Striatopallidal MSNs showed profound defects, including alterations in synaptic transmission, synaptic plasticity, and spine density. Importantly, the repetitive grooming behavior was rescued by selectively enhancing the striatopallidal MSN activity via a Gq-coupled human M3 muscarinic receptor (hM3Dq), a type of designer receptors exclusively activated by designer drugs (DREADD). Our findings directly demonstrate the existence of distinct changes between 2 striatal pathways in a mouse model of autism and indicate that the indirect striatal pathway disruption might play a causative role in repetitive behavior of Shank3B mutant mice.

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