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Critical window in autism : a study on Shank3

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dc.contributor Guoping Feng.
dc.contributor Massachusetts Institute of Technology. Department of Brain and Cognitive Sciences.
dc.contributor Massachusetts Institute of Technology. Department of Brain and Cognitive Sciences.
dc.creator Mei, Yuan (Yuan Karen)
dc.date 2017-01-12T18:33:30Z
dc.date 2017-01-12T18:33:30Z
dc.date 2015
dc.date 2016
dc.identifier http://hdl.handle.net/1721.1/106438
dc.identifier 967342804
dc.description Thesis: Ph. D., Massachusetts Institute of Technology, Department of Brain and Cognitive Sciences, February 2016.
dc.description Cataloged from PDF version of thesis.
dc.description Includes bibliographical references (pages 134-157).
dc.description Autism and autism spectrum disorders (ASDs) are clinically defined by the symptoms of social impairment and repetitive behavior, affecting 1 in 68 children in the United States. Because patients with ASDs typically display symptoms before the age of three, the ASDs are classically categorized as developmental disorders. One of the key questions in autism research is whether the pathology is reversible in adults. Many studies of simple sensory systems have reported that there is a distinct critical period for synaptic plasticity. This is most famously supported by the monocular deprivation studies in young kittens, which resulted in irreversible visual impairment in adulthood (Hubel and Wiesel, 1970). However, it is not clear whether this principle extends to more complicated multi-modal behavioral systems. Here we demonstrate that adult rescue can lead to improvements in selective phenotypes of ASD by generating and using a novel Shank3 conditional knock-in mouse model. Estimated to contribute to about 1% of all ASD cases, Shank3 is one of the most prominent genes associated with autism. It is a master postsynaptic scaffolding protein that mediates synaptic plasticity and remodeling by regulating many neurotransmitter receptors including NMDAR, AMPAR, and numerous actin-binding regulators. Disruptions of Shank3 in mouse models have robustly recapitulated the cardinal phenotypes of autism including anxiety, social interaction deficits, and compulsive/stereotyped behavior. By specifically expressing Shank3 in adult mice that were initially born as Shank3 knockouts, we show that deficits in the synaptic protein composition and striatal neurotransmission can be fully recovered. We developed a novel neuronal tracing technique to study the dendritic spine density, and found that the dendritic spine number is also significantly increased in the rescue condition after development. In addition, we show that while anxiety and motor coordination are not improved, social interaction and repetitive behavior can be significantly rescued. This suggests that plasticity for certain neural circuits persist into adulthood in the diseased brain, and that the underlying mechanisms for different autistic-like phenotypes have distinct properties.
dc.description by Yuan (Karen) Mei.
dc.description Ph. D.
dc.format 157 pages
dc.format application/pdf
dc.language eng
dc.publisher Massachusetts Institute of Technology
dc.rights M.I.T. theses are protected by copyright. They may be viewed from this source for any purpose, but reproduction or distribution in any format is prohibited without written permission. See provided URL for inquiries about permission.
dc.rights http://dspace.mit.edu/handle/1721.1/7582
dc.subject Brain and Cognitive Sciences.
dc.title Critical window in autism : a study on Shank3
dc.type Thesis


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