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Sheriff, S.

Publications and source records attributed to Sheriff, S..

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Clinically defined mutations in MEN1 alter its tumor-suppressive function through increased menin turnover

Loss of the tumor suppressor protein menin is a critical event underlying the formation of neuroendocrine tumors (NETs) in hormone-expressing tissues including gastrinomas. While aberrant expression of menin impairs its tumor suppression, few studies explore the structure- function relationship of clinical Multiple Endocrine Neoplasia, type 1 (MEN1) mutations in the absence of a complete loss of heterozygosity at both loci. Here, we determined whether clinical MEN1 mutations render nuclear menin unstable and lead to its functional inactivation. We studied the structural and functional implications of three clinical MEN1 mutations (R516fs, E235K, and A541T) recently identified in a cohort of ten patients with GEP-NETs. We evaluated the subcellular localization and half-lives of these mutated menin variants in Men1-null mouse embryo fibroblast cells and in hormone-expressing human gastric adenocarcinoma and murine enteroendocrine tumor cell lines. Loss of menin function was assessed by cell proliferation and gastrin gene expression assays. Lastly, we evaluated the effect of the small molecule compound MI-503 on stabilizing nuclear menin expression and function in vitro and in a previously reported mouse model of gastric NET development. Both the R516fs and E235K variants exhibited severe defects in total and subcellular expression of menin, and this was consistent with reduced half-lives of these mutants. Mutated menin variants exhibited loss of function in suppressing tumor cell proliferation and gastrin expression. Treatment with MI-503 rescued nuclear menin expression and attenuated hypergastrinemia and gastric hyperplasia in NET-bearing mice. ImplicationClinically defined germline and somatic MEN1 mutations confer pathogenicity by destabilizing nuclear menin expression.

cancer biology↗

Toll Like Receptor 9 Pathway Mediates Schlafen+-MDSC Polarization During Helicobacter-Induced Gastric Metaplasias

Background and AimsA subset of MDSCs that express murine Schlafen4 (SLFN4) or its human ortholog SLFN12L polarize in the Helicobacter-inflamed stomach coincident with intestinal or spasmolytic polypeptide-expressing metaplasia (SPEM). We propose that individuals with a more robust response to damage-activated molecular patterns (DAMPs) and increased Toll-like receptor (TLR9) expression are predisposed to the neoplastic complications of Helicobacter infection. MethodsA mouse or human Transwell co-culture system comprised of dendritic cells (DCs), 2-dimensional gastric epithelial monolayers and Helicobacter were used to dissect the cellular source of interferon (IFN) in the stomach by flow cytometry. Conditioned media from the cocultures polarized primary myeloid cells. Myeloid-derived suppressor cell (MDSC) activity was determined by T cell suppression assays. In human subjects with intestinal metaplasia or gastric cancer, the rs5743836 TLR9T>C variant was genotyped and linked to TLR9, IFN and SLFN12L expression by immunohistochemistry. NF{kappa}B binding to the TLR9 C allele was determined by electrophoretic mobility shift assays. ResultsHelicobacter infection induced gastric epithelial and plasmacytoid DC expression of TLR9 and IFN. Co-culturing primary mouse or human cells with DCs and Helicobacter induced TLR9, IFN secretion and SLFN+-MDSC polarization. Neutralizing IFN in vivo mitigated Helicobacter-induced SPEM. The TLR9 minor C allele creates an NF{kappa}b binding site associated with higher levels of TLR9, IFN and SLFN12L in Helicobacter-infected stomachs that correlated with a greater incidence of metaplasias and cancer. ConclusionTLR9 plays an essential role in the production of IFN and polarization of SLFN+-MDSCs upon Helicobacter infection. Subjects carrying the rs5743836 TLR9 minor C allele are predisposed to neoplastic complications if chronically infected.

cancer biology↗