Atypical behaviour and connectivity in SHANK3-mutant macaques
NATURE
Authors: Zhou, Yang; Sharma, Jitendra; Ke, Qiong; Landman, Rogier; Yuan, Jingli; Chen, Hong; Hayden, David S.; Fisher, John W., III; Jiang, Minqing; Menegas, William; Aida, Tomomi; Yan, Ting; Zou, Ying; Xu, Dongdong; Parmar, Shivangi; Hyman, Julia B.; Fanucci-Kiss, Adrian; Meisner, Olivia; Wang, Dongqing; Huang, Yan; Li, Yaqing; Bai, Yanyang; Ji, Wenjing; Lai, Xinqiang; Li, Weiqiang; Huang, Lihua; Lu, Zhonghua; Wang, Liping; Anteraper, Sheeba A.; Sur, Mriganka; Zhou, Huihui; Xiang, Andy Peng; Desimone, Robert; Feng, Guoping; Yang, Shihua
Abstract
Mutation or disruption of the SH3 and ankyrin repeat domains 3 (SHANK3) gene represents a highly penetrant, monogenic risk factor for autism spectrum disorder, and is a cause of Phelan-McDermid syndrome. Recent advances in gene editing have enabled the creation of genetically engineered non-human-primate models, which might better approximate the behavioural and neural phenotypes of autism spectrum disorder than do rodent models, and may lead to more effective treatments. Here we report CRISPR-Cas9-mediated generation of germline-transmissible mutations of SHANK3 in cynomolgus macaques (Macaca fascicularis) and their F1 offspring. Genotyping of somatic cells as well as brain biopsies confirmed mutations in the SHANK3 gene and reduced levels of SHANK3 protein in these macaques. Analysis of data from functional magnetic resonance imaging revealed altered local and global connectivity patterns that were indicative of circuit abnormalities. The founder mutants exhibited sleep disturbances, motor deficits and increased repetitive behaviours, as well as social and learning impairments. Together, these results parallel some aspects of the dysfunctions in the SHANK3 gene and circuits, as well as the behavioural phenotypes, that characterize autism spectrum disorder and Phelan-McDermid syndrome.
Mutation Burden of Rare Variants in Schizophrenia Candidate Genes
PLOS ONE
Authors: Girard, Simon L.; Dion, Patrick A.; Bourassa, Cynthia V.; Geoffroy, Steve; Lachance-Touchette, Pamela; Barhdadi, Amina; Langlois, Mathieu; Joober, Ridha; Krebs, Marie-Odile; Dube, Marie-Pierre; Rouleau, Guy A.
Abstract
Background Schizophrenia (SCZ) is a very heterogeneous disease that affects approximately 1% of the general population. Recently, the genetic complexity thought to underlie this condition was further supported by three independent studies that identified an increased number of damaging de novo mutations DNM in different SCZ probands. While these three reports support the implication of DNM in the pathogenesis of SCZ, the absence of overlap in the genes identified suggests that the number of genes involved in SCZ is likely to be very large; a notion that has been supported by the moderate success of Genome-Wide Association Studies (GWAS). Methods To further examine the genetic heterogeneity of this disease, we resequenced 62 genes that were found to have a DNM in SCZ patients, and 40 genes that encode for proteins known to interact with the products of the genes with DNM, in a cohort of 235 SCZ cases and 233 controls. Results We found an enrichment of private nonsense mutations amongst schizophrenia patients. Using a kernel association method, we were able to assess for association for different sets. Although our power of detection was limited, we observed an increased mutation burden in the genes that have DNM.