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Published on: January 22, 2013
Proteotranscriptomic Analysis Reveals Stage Specific Changes in the Molecular Landscape of Clear-Cell Renal Cell
Benjamin A Neely1, Christopher E Wilkins2, Laura A Marlow3
1Department of Cell and Molecular Pharmacology and Experimental Therapeutics, Medical University of South Carolina, Charleston, South Carolina, United States of America.
Abstract:
Renal cell carcinoma comprises 2 to 3% of malignancies in adults with the most prevalent subtype being clear-cell RCC (ccRCC). This type of cancer is well characterized at the genomic and transcriptomic level and is associated with a loss of VHL that results in stabilization of HIF1. The current study focused on evaluating ccRCC stage dependent changes at the proteome level to provide insight into the molecular pathogenesis of ccRCC progression. To accomplish this, label-free proteomics was used to characterize matched tumor and normal-adjacent tissues from 84 patients with stage I to IV ccRCC. Using pooled samples 1551 proteins were identified, of which 290 were differentially abundant, while 783 proteins were identified using individual samples, with 344 being differentially abundant. These 344 differentially abundant proteins were enriched in metabolic pathways and further examination revealed metabolic dysfunction consistent with the Warburg effect. Additionally, the protein data indicated activation of ESRRA and ESRRG, and HIF1A, as well as inhibition of FOXA1, MAPK1 and WISP2. A subset analysis of complementary gene expression array data on 47 pairs of these same tissues indicated similar upstream changes, such as increased HIF1A activation with stage, though ESRRA and ESRRG activation and FOXA1 inhibition were not predicted from the transcriptomic data. The activation of ESRRA and ESRRG implied that HIF2A may also be activated during later stages of ccRCC, which was confirmed in the transcriptional analysis. This combined analysis highlights the importance of HIF1A and HIF2A in developing the ccRCC molecular phenotype as well as the potential involvement of ESRRA and ESRRG in driving these changes. In addition, cofilin-1, profilin-1, nicotinamide N-methyltransferase, and fructose-bisphosphate aldolase A were identified as candidate markers of late stage ccRCC. Utilization of data collected from heterogeneous biological domains strengthened the findings from each domain, demonstrating the complementary nature of such an analysis. Together these results highlight the importance of the VHL/HIF1A/HIF2A axis and provide a foundation and therapeutic targets for future studies. (Data are available via ProteomeXchange with identifier PXD003271 and MassIVE with identifier MSV000079511.).
Insights
This study reveals key protein changes in clear-cell renal cell carcinoma (ccRCC) progression, highlighting the VHL/HIF1A/HIF2A axis and metabolic alterations. Findings identify potential biomarkers and therapeutic targets for advanced ccRCC.
Area of Science:
- Oncology
- Proteomics
- Molecular Biology
Background:
- Clear-cell renal cell carcinoma (ccRCC) is the most common kidney cancer subtype.
- Genomic and transcriptomic alterations, particularly VHL loss leading to HIF1 stabilization, are known drivers.
- Understanding proteomic changes is crucial for elucidating ccRCC progression.
Purpose of the Study:
- To investigate stage-dependent proteome alterations in ccRCC.
- To identify molecular pathways and potential biomarkers associated with ccRCC progression.
- To integrate proteomic and transcriptomic data for a comprehensive view of ccRCC pathogenesis.
Main Methods:
- Label-free proteomics was employed on matched tumor and normal-adjacent tissues from 84 ccRCC patients (Stage I-IV).
- Proteomic data was analyzed using pooled and individual samples to identify differentially abundant proteins.
- Complementary gene expression array data was analyzed for a subset of 47 patient samples.
Main Results:
- 344 differentially abundant proteins were identified, enriched in metabolic pathways, indicating the Warburg effect.
- Proteomic data suggested activation of HIF1A, ESRRA, and ESRRG, and inhibition of FOXA1, MAPK1, and WISP2.
- Integrated analysis confirmed HIF1A and HIF2A activation and identified cofilin-1, profilin-1, nicotinamide N-methyltransferase, and fructose-bisphosphate aldolase A as potential late-stage ccRCC markers.
Conclusions:
- The VHL/HIF1A/HIF2A axis is critical in ccRCC molecular phenotype development.
- ESRRA and ESRRG may play a role in driving ccRCC progression.
- The study provides a foundation for future research and identifies potential therapeutic targets for ccRCC.
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