The long term goal of this Project is to define the genetic and biological bases for abnormalities seen in individuals with Down syndrome (DS; Trisomy 21, Ts21), using genetically defined and genetically manipulated mouse model systems. The Down syndrome region of human Chromosome (Chr) 21 is conserved in at least three mouse chromosomes Chr 10, 16, and 17- with the largest segment in Chr 16. My research group has produced a mouse strain that carries segmental trisomy [Ts(1716)65Dn] for most of the region of mouse Chr 16 that is homologous with the Down syndrome region of human Chr 21 genes at dosage imbalance in this model by combining Ts65Dn with transgenes containing genes from the region of human Chr 21 that is conserved in mouse Chr 10; (2) study the effects of individual candidate genes in the Ts65DN segment by combining in mouse Chr 10; (2) study the effects of individual candidate genes in the Ts65Dn segment by combining it with targeted mutations for the single-minded (Sim2) and minibrain (Dyrk) homologs of Drosophila genes, which are important in central nervous system development and glycolysis; (3) analyze the behavior and pathology of the combining mice produced and (4) carry out neurological and electrophysiologic studies on the combination mice produced. The evaluation of neural function will include in vitro recording from fresh brain slices to assess synaptic transmission and plasticity. In vivo procedures, such as electrocorticograms and quantification of tremor activity also will be used. These assessments will be complemented by the analysis of hippocampal place cell activity and dendritic morphology of a limited number of strains. This research will provide not only a better understanding of the role of single genes in the Down syndrome phenotype but also a more complete adult mouse model for testing therapeutic intervention.

Project Start
2000-12-01
Project End
2001-11-30
Budget Start
Budget End
Support Year
12
Fiscal Year
2001
Total Cost
$208,891
Indirect Cost
Name
Johns Hopkins University
Department
Type
DUNS #
045911138
City
Baltimore
State
MD
Country
United States
Zip Code
21218
Singh, Nandini; Dutka, Tara; Devenney, Benjamin M et al. (2015) Acute upregulation of hedgehog signaling in mice causes differential effects on cranial morphology. Dis Model Mech 8:271-9
Bean, Lora J H; Allen, Emily G; Tinker, Stuart W et al. (2011) Lack of maternal folic acid supplementation is associated with heart defects in Down syndrome: a report from the National Down Syndrome Project. Birth Defects Res A Clin Mol Teratol 91:885-93
Locke, Adam E; Dooley, Kenneth J; Tinker, Stuart W et al. (2010) Variation in folate pathway genes contributes to risk of congenital heart defects among individuals with Down syndrome. Genet Epidemiol 34:613-23
Freeman, S B; Torfs, C P; Romitti, P A et al. (2009) Congenital gastrointestinal defects in Down syndrome: a report from the Atlanta and National Down Syndrome Projects. Clin Genet 75:180-4
Lin, Yan; Tseng, George C; Cheong, Soo Yeon et al. (2008) Smarter clustering methods for SNP genotype calling. Bioinformatics 24:2665-71
Freeman, Sallie B; Bean, Lora H; Allen, Emily G et al. (2008) Ethnicity, sex, and the incidence of congenital heart defects: a report from the National Down Syndrome Project. Genet Med 10:173-80
Parsons, Trish; Ryan, Timothy M; Reeves, Roger H et al. (2007) Microstructure of trabecular bone in a mouse model for Down syndrome. Anat Rec (Hoboken) 290:414-21
Roper, Randall J; St John, Heidi K; Philip, Jessica et al. (2006) Perinatal loss of Ts65Dn Down syndrome mice. Genetics 172:437-43
Maslen, Cheryl L; Babcock, Darcie; Robinson, Susan W et al. (2006) CRELD1 mutations contribute to the occurrence of cardiac atrioventricular septal defects in Down syndrome. Am J Med Genet A 140:2501-5
Richtsmeier, Joan T; Aldridge, Kristina; DeLeon, Valerie B et al. (2006) Phenotypic integration of neurocranium and brain. J Exp Zool B Mol Dev Evol 306:360-78

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