bioRxiv Science⌕ Search

Biology subjects

Hollingshead, M.

Publications and source records attributed to Hollingshead, M..

2 recordsLinked to original sources

Exploiting Embryonic Niche Conditions to Grow Wilms Tumor Blastema in Culture

Wilms Tumor (WT), or nephroblastoma, is the most common pediatric kidney cancer. Most WTs display a "favorable" triphasic histology, in which the tumor is comprised of blastemal, stromal, and epithelial cell types. Blastemal predominance after neoadjuvant chemotherapy or diffuse anaplasia ("unfavorable" histology; 5-8%) portend a worse prognosis. Blastema likely provide the putative cancer stem cells (CSCs), which retain molecular and histologic features characteristic of nephron progenitor cells (NPCs), within WTs. NPCs arise in the metanephric mesenchyme (MM) and populate the cap mesenchyme (CM) in the developing kidney. WT blastemal cells, like NPCs, similarly express markers, SIX2 and CITED1. Tumor xenotransplantation is currently the only dependable method to propagate tumor tissue for research or therapeutic screening, since efforts to culture tumors in vitro as monolayers have invariably failed. Therefore, a critical need exists to propagate WT stem cells rapidly and efficiently for high-throughput, real-time drug screening. Previously, our lab developed niche conditions that support the propagation of murine NPCs in culture. By applying similar conditions to WTs, we have successfully expanded and passaged WT cells from five distinct untreated patient tumors and maintained key NPC "stemness" markers, SIX2, NCAM and YAP1, and CSC marker ALDH1. These findings suggest that our culture conditions sustain the WT blastemal population, as previously shown for normal NPCs. As a result, we have developed new WT cell lines and a multi-passage in vitro model for studying the blastemal lineage/CSCs in WTs. Furthermore, this system supports growth of heterogeneous WT cells, upon which potential drug therapies could be tested for efficacy and resistance.

cancer biology↗

Dexamethasone Inhibits Cytokine-Induced, DUOX2-Related VEGF-A Expression and DNA damage in Human Pancreatic Cancer Cells and Growth of Pancreatic Cancer Xenografts

Previously, we demonstrated that pro-inflammatory cytokines enhance dual oxidase 2 (DUOX2)-dependent production of reactive oxygen species by human pancreatic ductal carcinoma (PDAC) cells, and that DUOX2 expression is significantly increased in patients with early stages of PDAC. In genetically-engineered mouse models of PDAC, dexamethasone (Dex) decreases formation of pancreatic intraepithelial neoplasia (PanIn) foci as well as PDAC invasiveness. Herein, we report that Dex, in a concentration- and time-dependent fashion, inhibited pro-inflammatory cytokine (IFN-{gamma}/LPS/IL-17A/IL-4)-mediated enhancement of DUOX2 expression in BxPC-3, CFPAC-1, and AsPC-1 human PDAC cell lines, as well as DUOX2-induced DNA damage. The inhibitory effects of Dex were abolished by pre-treatment with the Dex antagonist RU-486. Examination of the human DUOX2 promoter in silico revealed a putative negative glucocorticoid receptor (GR) binding element (IRnGRE). Western analysis, using nuclear extracts from Dex-treated PDAC cells, demonstrated that Dex activated the glucocorticoid receptor in PDAC cell nuclei in the presence of certain co-repressors, such as NCoR-1/2 and histone deacetylases (HDAC1, 2, and 3). Dex produced no anti-proliferative effects on PDAC cells in vitro. However, Dex significantly decreased the growth of BxPC-3 xenografts while decreasing inflammatory and immune cell infiltration of the microenvironment, as well as the mRNA expression of DUOX2 and VEGF-A, in BxPC-3 tumors. In contrast, Dex had no effect on the growth of xenografts developed from MIA-PaCa cells that are unresponsive to pro-inflammatory cytokines in culture. In summary, these studies suggest that suppression of inflammation-related DUOX2 expression by Dex could diminish the oxidative milieu supporting PDAC growth and development.

pharmacology and toxicology↗