Complementary vertebrate <i>Wac</i> models exhibit phenotypes relevant to DeSanto-Shinawi Syndrome.
basic_science · Level V
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- Record sourced from PubMed, PMID 42690726.
- Also identified by DOI 10.7554/eLife.109104.
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Abstract
Monogenic syndromes are associated with neurodevelopmental changes that result in cognitive impairments and neurobehavioral phenotypes, including autism and seizures. Limited studies and resources are available to make meaningful headway into the underlying molecular mechanisms that result in these symptoms. One such example is DeSanto-Shinawi Syndrome (DESSH), a rare disorder caused by pathogenic variants in the <i>WAC</i> gene. Individuals with DESSH syndrome exhibit a recognizable craniofacial gestalt, developmental delay/intellectual disability, neurobehavioral symptoms that include autism, ADHD, behavioral difficulties, and seizures. However, no thorough studies from a vertebrate model exist to understand how these changes occur. To overcome this, we developed both murine and zebrafish <i>Wac/wac</i> deletion mutants and studied whether their phenotypes recapitulate those described in individuals with DESSH syndrome. We first show that the two <i>Wac</i> models exhibit craniofacial and behavioral changes, reminiscent of abnormalities found in DESSH syndrome. In addition, each model revealed impacts on GABAergic neurons and further studies showed that the mouse mutants are susceptible to seizures, changes in brain volumes that are different between sexes and relevant behaviors. Finally, we uncovered transcriptional impacts of <i>Wac</i> loss-of-function in mice that will pave the way for future molecular studies into DESSH. These studies present two new vertebrate models that begin to uncover biological underpinnings of DESSH syndrome and elucidate the biology of <i>Wac</i>.
Medical subject headings
- Zebrafish Proteins
- Intellectual Disability