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Post published on Twitter/X on 1 Sep 2011 17:53

Twitter/X DOI work crossref External link integrated into the post Autism terms

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Patrick L. Bader, Mehrdad Faizi, Leo H. Kim, Scott F. Owen, Michael R. Tadross, Ronald W. Alfa, Glenna C. L. Bett, Richard W. Tsien, et al. (2011). Mouse model of Timothy syndrome recapitulates triad of autistic traits. Proceedings of the National Academy of Sciences, 108(37), 15432-15437. National Academy of Sciences.

Publication date
30 Aug 2011
Identifier
10.1073/pnas.1112667108
Authors
Patrick L. Bader, Mehrdad Faizi, Leo H. Kim, Scott F. Owen, Michael R. Tadross, Ronald W. Alfa, Glenna C. L. Bett, Richard W. Tsien, Randall L. Rasmusson, Mehrdad Shamloo
Source
Proceedings of the National Academy of Sciences
Details
108(37), 15432-15437
Reference type
article
Publisher
National Academy of Sciences
Metadata source
crossref

Abstract

Autism and autism spectrum disorder (ASD) typically arise from a mixture of environmental influences and multiple genetic alterations. In some rare cases, such as Timothy syndrome (TS), a specific mutation in a single gene can be sufficient to generate autism or ASD in most patients, potentially offering insights into the etiology of autism in general. Both variants of TS (the milder TS1 and the more severe TS2) arise from missense mutations in alternatively spliced exons that cause the same G406R replacement in the Ca V 1.2 L-type calcium channel. We generated a TS2-like mouse but found that heterozygous (and homozygous) animals were not viable. However, heterozygous TS2 mice that were allowed to keep an inverted neomycin cassette (TS2-neo) survived through adulthood. We attribute the survival to lowering of expression of the G406R L-type channel via transcriptional interference, blunting deleterious effects of mutant L-type channel overactivity, and addressed potential effects of altered gene dosage by studying Ca V 1.2 knockout heterozygotes. Here we present a thorough behavioral phenotyping of the TS2-neo mouse, capitalizing on this unique opportunity to use the TS mutation to model ASD in mice. Along with normal general health, activity, and anxiety level, TS2-neo mice showed markedly restricted, repetitive, and perseverative behavior, altered social behavior, altered ultrasonic vocalization, and enhanced tone-cued and contextual memory following fear conditioning. Our results suggest that when TS mutant channels are expressed at levels low enough to avoid fatality, they are sufficient to cause multiple, distinct behavioral abnormalities, in line with the core aspects of ASD.

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