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Chiasson-MacKenzie, C.

Publications and source records attributed to Chiasson-MacKenzie, C..

2 recordsLinked to original sources

Merlin restoration prevents schwannoma progression in a genetically engineered mouse model of NF2-SWN

Patients with NF2-related schwannomatosis (NF2-SWN) present with hallmark bilateral vestibular schwannomas, but also schwannomas on other cranial, spinal, and peripheral nerves, as well as meningiomas and ependymomas, caused by germline mutations in the tumor suppressor gene NF2. Current therapies involving surgery and radiosurgery are effective for individual tumors but are not always a viable option for patients with multiple tumors, and harbor significant risk of neurological deficits and morbidity. Gene replacement therapy is becoming a promising new treatment strategy for several neurologic diseases. This study aims to understand if restoration of a functional merlin protein, gene product of the Nf2 gene, in Nf2-deficient tumor cells, can provide preclinical therapeutic efficacy in a NF2-SWN genetically engineered mouse model. We have developed a new Nf2 allele (Nf2FRT) that allows to conditionally restore Nf2 expression by activation with the Flp recombinase. We generated a new mouse model using the Nf2FRT allele in combination with Nf2flox and Postn-Cre alleles. Using the new conditional schwannoma mouse model Postn-Cre;Nf2FRT/flox;R26FlpoER, we validated the hypothesis that restoration of Nf2 reduces the growth of schwannoma. Demonstrating that merlin restoration effectively controls schwannoma growth is a crucial first step toward developing this concept as a new therapeutic strategy for potentially treating schwannomas. The new mouse model will be used to better understand the cellular and molecular mechanisms involved in stopping the growth of Nf2-deficient tumors.

cancer biology↗

Distinct phenotypic consequences of cholangiocarcinoma-associated FGFR2 alterations depend on biliary epithelial maturity

Epithelial cancers disrupt tissue architecture and are often driven by mutations in genes that play important roles in normal epithelial morphogenesis. The intrahepatic biliary system is an epithelial tubular network that forms within the developing liver via the de novo initiation and expansion of apical lumens. Intrahepatic biliary tumors (intrahepatic cholangiocarcinoma) commonly harbor activating genomic alterations in the FGFR2 receptor tyrosine kinase, which plays important roles in epithelial morphogenesis in other developmental settings. Using a physiologic and quantitative 3D model we demonstrate that FGFR signaling is important for biliary morphogenesis and that oncogenic FGFR2 fusions and in-frame deletions disrupt biliary architecture. Importantly, we show that the trafficking of and signaling from the FGFR2 mutants, as well as their phenotypic impacts, are governed by the epithelial state of the cell. Unexpectedly, we also found that distinct tumor-driving FGFR2 mutants disrupt biliary morphogenesis in completely different and clinically relevant ways, informing our understanding of morphogenesis and tumorigenesis and highlighting the importance of convergent studies of both.

cancer biology↗