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Focus Formation: A Cell-based Assay to Determine the Oncogenic Potential of a Gene
Published on: December 31, 2014
Analysis of Ras-induced oncogenic transformation of NIH-3T3 cells using differential-display 2-DE proteomics
Hong Ji1, Robert L Moritz, Yu-Sam Kim
1Joint Proteomics Laboratory, Ludwig Institute for Cancer Research and the Walter and Eliza Hall Institute of Medical Research, Parkville, Victoria, Australia.
Abstract:
Ras proteins control at least three crucial signalling networks responsible for several cellular processes including anchorage independence, survival, and proliferation. Point mutations in one of the three ras genes are frequent in human tumours. In these tumours, Ras oncoproteins contribute significantly to the malignant phenotype, including deregulation of tumour-cell growth, apoptosis and invasiveness, and the ability to induce angiogenesis. Although significant strides have been made in understanding Ras biology, the collaborative actions of Ras effectors are still poorly understood. Here, we describe a proteomics approach to study global changes in protein expression in Ras-transformed NIH3T3 cells. We exploited 2-D difference gel electrophoresis (DIGE) for pre-separation fluorescent protein labelling with three separate dyes to reduce gel-to-gel variability, to increase sensitivity and dynamic range of protein detection, and to enhance quantification of dysregulated proteins. Proteins dysregulated (> 1.5-fold) by oncogenic Ras transformation reported to be implicated in Ras-regulated pathways include S-methyl-5-thioadenosine phosphorylase, stress-induced-phosphoprotein 1, galectin-1, annexin A7 (synexin), 60S acidic ribosomal protein P0, serine/threonine protein phosphatase type 1 (PP1alpha) and prohibitin. Significantly, we report for the first time the expression of the newly discovered cytokine IL-25 (or IL-17E) in mouse embryonic fibroblast cells and its down-regulation (2.1-fold) upon Ras-induced oncogenic transformation.
Insights
Oncogenic Ras proteins drive cancer by altering cell signaling. This study used proteomics to identify key proteins, including the novel cytokine IL-25, dysregulated in Ras-transformed cells.
Area of Science:
- Proteomics
- Cancer Biology
- Molecular Signaling
Background:
- Ras proteins are critical regulators of cellular processes like proliferation and survival.
- Mutations in Ras genes are common in human tumors, contributing to malignancy.
- Understanding Ras effector collaboration is crucial for cancer research.
Purpose of the Study:
- To investigate global protein expression changes in Ras-transformed cells.
- To identify proteins dysregulated by oncogenic Ras.
- To explore the role of novel cytokines in Ras-mediated transformation.
Main Methods:
- Utilized 2-D difference gel electrophoresis (DIGE) for sensitive protein detection and quantification.
- Employed fluorescent protein labeling to minimize variability and enhance dynamic range.
- Analyzed protein expression in Ras-transformed NIH3T3 cells.
Main Results:
- Identified several dysregulated proteins (>1.5-fold) in Ras-transformed cells, including S-methyl-5-thioadenosine phosphorylase, galectin-1, and prohibitin.
- Reported the expression of the cytokine IL-25 (IL-17E) in mouse embryonic fibroblast cells.
- Observed a significant down-regulation (2.1-fold) of IL-25 upon Ras-induced oncogenic transformation.
Conclusions:
- Proteomics analysis reveals key protein alterations driven by oncogenic Ras.
- Ras transformation impacts multiple cellular pathways, including those involving identified proteins.
- The down-regulation of IL-25 in Ras-transformed cells warrants further investigation into its role in cancer development.
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