Related Experiment Video
Updated: Aug 17, 2026

Testing Targeted Therapies in Cancer using Structural DNA Alteration Analysis and Patient-Derived Xenografts
Published on: July 25, 2020
Proteomics analysis of H-RAS-mediated oncogenic transformation in a genetically defined human ovarian cancer model
Travis Young1, Fang Mei, Jinsong Liu
1Department of Pharmacology and Toxicology, The University of Texas Medical Branch, 301 University Boulevard, Galveston, TX 77555-1031, USA.
Abstract:
RAS is a small GTP binding protein mutated in approximately 30% human cancer. Despite its important role in the initiation and progression of human cancer, the underlying mechanism of RAS-induced human epithelial transformation remains elusive. In this study, we probe the cellular and molecular mechanisms of RAS-mediated transformation, by profiling two human ovarian epithelial cell lines. One cell line was immortalized with SV40 T/t antigens and the human catalytic subunit of telomerase (T29), while the second cell line was transformed with an additional oncogenic ras(V12) allele (T29H). In total, 32 proteins associated with RAS-mediated transformation have been identified using peptide mass fingerprinting. These protein targets are involved in several cellular pathways, including metabolism, redox balance, calcium signaling, apoptosis, and cellular methylation. One such target, the 40 kDa procaspase 4 is significantly upregulated at the protein level in RAS-transformed T29H cells, related directly to signaling through MEK, but not PI3 kinase. Cellular caspase 4 activity is, however, suppressed in the T29H cells, suggesting that the maturation process of caspase 4 is abrogated in RAS-transformed T29H cells. Consistent with this notion, transformed T29H cells were less susceptible to the toxic effects of anti-Fas antibody than were immortalized, nontransformed T29 cells, associated with less activation of caspase 4. This study demonstrates that functional proteomic analysis of a genetically defined cancer model provides a powerful approach toward systematically identifying cellular targets associated with oncogenic transformation.
Insights
RAS mutations drive cancer by altering cell transformation mechanisms. This study identified 32 proteins, including procaspase 4, involved in RAS-mediated transformation, revealing new therapeutic targets for cancer treatment.
Area of Science:
- Oncology
- Molecular Biology
- Proteomics
Background:
- RAS proteins are frequently mutated in human cancers, driving tumor initiation and progression.
- The precise molecular mechanisms underlying RAS-induced epithelial cell transformation are not fully understood.
Purpose of the Study:
- To investigate the cellular and molecular pathways involved in RAS-mediated transformation.
- To identify novel protein targets associated with RAS oncogenic activity.
Main Methods:
- Utilized two human ovarian epithelial cell lines: one immortalized (T29) and one oncogenically transformed with RAS (T29H).
- Employed peptide mass fingerprinting for proteomic profiling to identify differentially expressed proteins.
- Analyzed signaling pathways including MEK and PI3K, and caspase 4 activity.
Main Results:
- Identified 32 proteins implicated in RAS-mediated transformation, affecting pathways like metabolism, redox balance, apoptosis, and methylation.
- Found significant upregulation of procaspase 4 in RAS-transformed cells, linked to MEK signaling.
- Observed suppressed caspase 4 activity and reduced susceptibility to anti-Fas-induced apoptosis in transformed cells.
Conclusions:
- Functional proteomic analysis of genetically defined cancer models is effective for identifying transformation-associated targets.
- RAS transformation impacts procaspase 4 maturation and apoptotic signaling, offering potential therapeutic insights.
Related Concept Videos
The Ras Gene
Ras is a superfamily...
Small GTPases - Ras and Rho
Three regulatory proteins control their activity:
Cancer-Critical Genes I: Proto-oncogenes
When the function of certain critical genes, especially those involved in cell cycle regulation and cell growth signaling cascades, gets disrupted, it upsets the cell cycle progression. Such cells with unchecked cell cycles start proliferating uncontrollably and eventually develop into tumors.
Such genes that act...
