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Biomedical subjects

Natalie Fursov

Publications and source records attributed to Natalie Fursov.

3 recordsLinked to original sources

Phosphorylation of MNAR promotes estrogen activation of phosphatidylinositol 3-kinase.

Estrogen actions are mediated by a complex interface of direct control of gene expression (the so-called "genomic action") and by regulation of cell signaling/phosphorylation cascades, referred to as the "nongenomic," or extranuclear, action. We have previously described the identification of MNAR (modulator of nongenomic action of estrogen receptor) as a novel scaffold protein that regulates estrogen receptor alpha (ERalpha) activation of cSrc. In this study, we have investigated the role of MNAR in 17beta-estradiol (E2)-induced activation of the phosphatidylinositol 3-kinase (PI3K)/Akt pathway. Consistent with our previous results, a direct correlation was established between MNAR expression levels and E2-induced activation of PI3 and Akt kinases. Endogenous MNAR, ERalpha, cSrc, and p85, the regulatory subunit of PI3 kinase, interacted in MCF7 cells treated with E2. The interaction between p85 and MNAR required activation of cSrc and MNAR phosphorylation on Tyr 920. Consequently, the mutation of this tyrosine to alanine (Y920A) abrogated the interaction between MNAR and p85 and the E2-induced activation of the PI3K/Akt pathway, which was required for the E2-induced protection of MCF7 cells from apoptosis. Nonetheless, the Y920A mutant potentiated the E2-induced activation of the Src/MAPK pathway and MCF7 cell proliferation, as observed with the wild-type MNAR. These results provide new and important insights into the molecular mechanisms of E2-induced regulation of cell proliferation and apoptosis.

Alanine↗

Improving high-content-screening assay performance by using division-arrested cells.

As cell-based assays are used more commonly in robotic high-throughput compound screening, cells themselves have become critical reagents. Thus, it has become essential to produce cell reagents with high consistency and quality. We experimented with cells division-arrested with low-level mitomycin C treatment and demonstrate that they perform with better consistency than non-division-arrested counterparts in high-content screening imaging assays. We propose that for cell-based screening, it is possible to uncouple the cell production process from the screening process. Cells can be produced en masse, treated to become irreversibly division-arrested, and cryopreserved. These "ready-to-use" reagents can be thawed, plated, and used in screening with improved consistency and convenience.

Antibiotics, Antineoplastic↗

Improving consistency of cell-based assays by using division-arrested cells.

In this article we describe the use of division-arrested cells for cell-based assays designed for high-throughput screening. Cells are the most critical and variable reagent for cell-based high-throughput screening. The robustness of robotic screening depends on the quality and consistency of cell reagents. We demonstrate that for most cell types commonly used for high-throughput screening, cells can be irreversibly division-arrested by mitomycin C treatment at doses that cause no apparent toxicity or obvious change to the cell signaling properties we measured. Our data also suggest that division-arrested cells perform favorably compared to regular growing cells in reporter and calcium flux assays, two platforms most commonly used in robotic screening. Division arrest technology effectively uncouples the process of cell production from robotic screening and brings the convenience of having quality-approved cell reagent on demand for cell-based high-throughput screening.

Animals↗