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Molecular and behavioral consequences of Ube3a gene overdosage in mice
A. Mattijs Punt, Matthew C. Judson, Michael S. Sidorov, Brittany N. Williams, Naomi S. Johnson, Sabine Belder, Dion den Hertog, Courtney R. Davis, Maximillian S. Feygin, Patrick F. Lang, Mehrnoush Aghadavoud Jolfaei, Patrick J. Curran, Wilfred F.J. van IJcken, Ype Elgersma, Benjamin D. Philpot
A. Mattijs Punt, Matthew C. Judson, Michael S. Sidorov, Brittany N. Williams, Naomi S. Johnson, Sabine Belder, Dion den Hertog, Courtney R. Davis, Maximillian S. Feygin, Patrick F. Lang, Mehrnoush Aghadavoud Jolfaei, Patrick J. Curran, Wilfred F.J. van IJcken, Ype Elgersma, Benjamin D. Philpot
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Research Article Neuroscience

Molecular and behavioral consequences of Ube3a gene overdosage in mice

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Abstract

Chromosome 15q11.2–q13.1 duplication syndrome (Dup15q syndrome) is a severe neurodevelopmental disorder characterized by intellectual disability, impaired motor coordination, and autism spectrum disorder. Chromosomal multiplication of the UBE3A gene is presumed to be the primary driver of Dup15q pathophysiology, given that UBE3A exhibits maternal monoallelic expression in neurons and that maternal duplications typically yield far more severe neurodevelopmental outcomes than paternal duplications. However, studies into the pathogenic effects of UBE3A overexpression in mice have yielded conflicting results. Here, we investigated the neurodevelopmental impact of Ube3a gene overdosage using bacterial artificial chromosome–based transgenic mouse models (Ube3aOE) that recapitulate the increases in Ube3a copy number most often observed in Dup15q. In contrast to previously published Ube3a overexpression models, Ube3aOE mice were indistinguishable from wild-type controls on a number of molecular and behavioral measures, despite suffering increased mortality when challenged with seizures, a phenotype reminiscent of sudden unexpected death in epilepsy. Collectively, our data support a model wherein pathogenic synergy between UBE3A and other overexpressed 15q11.2–q13.1 genes is required for full penetrance of Dup15q syndrome phenotypes.

Authors

A. Mattijs Punt, Matthew C. Judson, Michael S. Sidorov, Brittany N. Williams, Naomi S. Johnson, Sabine Belder, Dion den Hertog, Courtney R. Davis, Maximillian S. Feygin, Patrick F. Lang, Mehrnoush Aghadavoud Jolfaei, Patrick J. Curran, Wilfred F.J. van IJcken, Ype Elgersma, Benjamin D. Philpot

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Figure 8

RNA-Seq reveals no significant transcriptional changes due to UBE3A overexpression.

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RNA-Seq reveals no significant transcriptional changes due to UBE3A over...
(A) Principal component analysis plot demonstrating the sample clustering of cortical and hippocampal tissue taken from WT and Ube3a+2 mice at P7. Open circles represent cortex and filled circles represent hippocampus. Clustering of cortical and hippocampal samples is indicated by dashed and solid outlines, respectively. (B and C) Volcano plots of the differential gene expression analysis performed on samples of hippocampal (B) and cortical (C) origin of the 1,000 genes with the lowest P values. Log2 fold change is plotted on the x axis versus log10 P value on the y axis. Dashed lines indicate the –0.5 and 0.5 log2 fold change borders. The Ube3a data points are indicated in blue, while the previously identified RNA target, Cbln1 (22), is outlined in black. (D and E) Normalized Ube3a transcript counts in hippocampus (D) and cortex (E). Data are presented as percentages, with WT transcript counts set at 100%. The normalized counts were compared using an unpaired 2-tailed t test. ****P < 0.0001.

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