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Metz, J. R.

Publications and source records attributed to Metz, J. R..

2 recordsLinked to original sources

foxe1 mutant zebrafish show indications of a hypothyroid phenotype and increased sensitivity to ethanol for craniofacial malformations

FOXE1 mutations in humans are associated with Bamforth-Lazarus syndrome, characterized by cleft palate and hypothyroidism. Moreover, polymorphisms of FOXE1 are implicated in non-syndromic cleft palate. Much uncertainty still exists about the function of transcription factor FOXE1 in development. To address this, we have previously developed a foxe1 mutant zebrafish demonstrating mineralization defects in larvae. In the present study, we further investigate the thyroid status and skeletal phenotype of adult foxe1 mutants. Compared to wild type controls, mutant fish have increased expression of hypothalamic tsh{beta}, and hepatic dio1 and dio2. In plasma we found higher circulating Mg levels; together these findings are indicative of hypothyroidism. We further observed mineralization defects in scales, likely due to enhanced osteoclast activity as measured by increased expression levels of the markers tracp, ctsk and rankl. Gene-environment interactions in the etiology of FOXE1-related craniofacial abnormalities remain elusive, which prompts the need for models to investigate genotype-phenotype associations. We here investigated whether ethanol exposure increases the risk of developing craniofacial malformations in foxe1 mutant larvae that we compared to wild types. We found in ethanol-exposed mutants an increased incidence of developmental malformations and marked changes in gene expression patterns of cartilage markers (sox9a), apoptotic markers (casp3b), retinoic acid metabolism (cyp26c1), and tissue hypoxia markers (hifaa, hifab). Taken together, this study shows that the foxe1 mutant zebrafish recapitulates phenotypes associated with FOXE1 mutations in human patients and a clear foxe1-ethanol interaction.

developmental biology↗

The transcriptome of regenerating zebrafish scales identifies genes involved in human bone disease

Zebrafish scales are mineralised plates that can regenerate involving de novo bone formation. This presents an opportunity to uncover genes and pathways relevant to human musculoskeletal disease relevant to impaired bone formation. To investigate this hypothesis, we defined transcriptomic profiles of ontogenetic and regenerating scales, and identified 604 differentially expressed genes (DEGs) that were enriched for extracellular matrix, ossification, and cell adhesion pathways. Next, we showed that human orthologues of DEGs were 2.8 times more likely to cause human monogenic skeletal diseases (P<8x10-11), and they showed enrichment for human orthologues associated with polygenetic disease traits including stature, bone density and osteoarthritis (P<0.005). Finally, zebrafish mutants of two human orthologues that were robustly associated with height and osteoarthritis (COL11A2) or bone density only (SPP1) developed skeletal abnormalities consistent with our genetic association studies. Col11a2Y228X/Y228X mutants showed endoskeletal features consistent with abnormal growth and osteoarthritis, whereas spp1P160X/P160X mutants had elevated bone density (P<0.05). In summary, we show that transcriptomic studies of regenerating zebrafish scales have potential to identify new genes and pathways relevant to human skeletal disease.

genetics↗