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Moyer, A. J.

Publications and source records attributed to Moyer, A. J..

3 recordsLinked to original sources

Overexpression screen of chromosome 21 genes reveals modulators of Sonic hedgehog signaling relevant to Down syndrome

Dysregulation of Sonic hedgehog (SHH) signaling may contribute to multiple Down syndrome-associated phenotypes, including cerebellar hypoplasia, congenital heart defects, craniofacial and skeletal dysmorphologies, and Hirschsprung disease. Granule cell precursors isolated from the developing cerebellum of Ts65Dn mice are less responsive to the mitogenic effects of SHH than euploid cells, and a single postnatal dose of the SHH pathway agonist SAG rescues cerebellar morphology and performance on learning and memory tasks in Ts65Dn mice. SAG treatment also normalizes expression levels of OLIG2 in neural progenitor cells derived from human trisomy 21 iPSCs. However, despite evidence that activating SHH signaling can ameliorate some Down syndrome-associated phenotypes, chromosome 21 does not encode any components of the canonical SHH pathway. Here, we screened 163 chromosome 21 cDNAs in a series of SHH-responsive cell lines to identify chromosome 21 genes that modulate SHH signaling. We confirmed overexpression of trisomic candidate genes using RNA-seq in Ts65Dn and TcMAC21 cerebellum. Our study indicates that some chromosome 21 genes, including DYRK1A, upregulate SHH signaling while others, such as HMGN1 and MIS18A, inhibit SHH signaling. Overexpression of genes involved in chromatin structure and mitosis, but not genes previously implicated in ciliogenesis, regulate the SHH pathway. Our data suggest that cerebellar hypoplasia and other phenotypes related to aberrant SHH signaling arise from the net effect of trisomy for multiple chromosome 21 genes rather than the overexpression of a single trisomic gene. Identifying which chromosome 21 genes modulate SHH signaling may suggest new therapeutic avenues for ameliorating Down syndrome phenotypes. One Sentence SummaryMultiple chromosome 21 genes modulate Sonic hedgehog signaling, which is dysregulated in Down syndrome.

genetics↗

A Mouse Model with Complete Penetrance for Atrioventricular Septal Defect/Complete AV Canal

Complete Atrioventricular Septal Defect/complete AV canal (AVSD/ cAVC) occurs via defective formation of the Dorsal Mesenchymal Protrusion (DMP) which grows from the interior dorsal wall of the fetal heart. The DMP is derived from cells of the second heart field (SHF). AVSD occurs in about 1/10,000 births in the general population, but is 2000 times more prevalent in individuals with Down syndrome (DS). The low penetrance of AVSD in the general population remains a fundamental challenge to investigation of the genetic and developmental basis for this condition. Analysis of the etiology of this condition in mouse models is limited by the fact that the developmental events producing the DMP begin around embryonic day 9 (E9) but AVSD cannot be diagnosed until E14, and no model has been described previously in which AVSD occurs in 100% of embryos. We describe a trisomic mouse DS model with conditional mutations in the SHH pathway that produces AVSD with 100% penetrance. This new mouse model can serve as an important tool to understand the mechanisms underlying AVSD pathogenesis.

developmental biology↗

The first transchromosomic rat model with human chromosome 21 shows robust Down syndrome features

Progress in earlier detection and symptom management has increased life expectancy and quality of life in people with Down syndrome (DS). However, no drug has been approved to help individuals with DS live independently and fully. Although rat models could support more robust physiological, behavioral, and toxicology analysis than mouse models during preclinical validation, no DS rat model is available due to technical challenges. We developed the first transchromosomic rat model of DS, TcHSA21rat, which contains a freely segregating, EGFP-inserted, human chromosome 21 (HSA21) with >93% of its protein coding genes. RNA-Seq of neonatal forebrains demonstrates that TcHSA21rat not only expresses HSA21 genes but also has an imbalance in global gene expression. Using EGFP as a marker for trisomic cells, flow cytometry analyses of peripheral blood cells from 361 adult TcHSA21rat animals show that 81% of animals retain HSA21 in >80% of cells, the criterion for a "Down syndrome karyotype" in people. TcHSA21rat exhibits learning and memory deficits and shows increased anxiety and hyperactivity. TcHSA21rat recapitulates well-characterized DS brain morphology, including smaller brain volume and reduced cerebellar size. In addition, the rat model shows reduced cerebellar foliation, a prominent feature of DS that is not observed in DS mouse models. Moreover, TcHSA21rat exhibits anomalies in craniofacial morphology, heart development, husbandry, and stature. TcHSA21rat is a robust DS animal model that can facilitate DS basic research and provide a unique tool for preclinical validation to accelerate DS drug development.

genetics↗