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The Use of Reverse Phase Protein Arrays (RPPA) to Explore Protein Expression Variation within Individual Renal Cell Cancers
Published on: January 22, 2013
Molecular characterization of preneoplastic lesions provides insight on the development of renal tumors
Kerstin Stemmer1, Heidrun Ellinger-Ziegelbauer, Hans-Jürgen Ahr
1Department of Human and Environmental Toxicology, University of Konstanz, Konstanz 78457, Germany.
Abstract:
Kidneys are the second most frequent site for chemically induced cancers in rats. However, there is still limited information on direct effects of carcinogens on pathways involved in the development of kidney tumors. Since transformed tumor cells have different characteristics than their cell of origin, it was hypothesized that healthy tissue and progressing stages of preneoplastic lesions are differentially influenced by chemical carcinogens. To elucidate this question, TSC2(-/-) Eker rats were gavaged with genotoxic aristolochic acid or nongenotoxic ochratoxin A for 3 and 6 months, respectively. Histopathology and cell proliferation analysis demonstrated a compound- and sex-specific onset of preneoplastic lesions. In contrast, comparable gene expression profiles of laser-microdissected preneoplastic lesions from carcinogen-treated and control rats, including reduced expression of genes involved in carcinogen uptake and metabolism, point to a compound-independent lesion progression. Gene expression profiles and additional immunostaining suggested that clonal expansion of renal lesions appears primarily driven by disturbed mammalian target of rapamycin complex 1 and mammalian target of rapamycin complex 2 pathway regulation. Finally, prolonged carcinogen exposure resulted in only marginal gene expression changes in tubules with normal morphology, indicating that some tubules may have adapted to the treatment. Taken together, these findings indicate that the final outcome of in vivo carcinogenicity studies is primarily determined by time-restricted initial events, while lesion progression may be a compound-independent process, involving deregulated mTOR signaling in the Eker rat model.
Insights
Chemicals induce kidney tumors in rats, but progression may be independent of the carcinogen. Deregulated mTOR signaling drives lesion expansion in the Eker rat model, impacting kidney cancer development.
Area of Science:
- Toxicology and carcinogenesis research.
- Molecular biology and cancer pathology.
- Mammalian target of rapamycin (mTOR) signaling pathways.
Background:
- Kidneys are a frequent target for chemically induced cancers in rats.
- Limited understanding of carcinogen effects on kidney tumor development pathways.
- Hypothesis: Carcinogens differentially affect healthy tissue versus preneoplastic lesions.
Purpose of the Study:
- Investigate compound-independent versus compound-specific effects of carcinogens on kidney tissue.
- Elucidate the molecular mechanisms driving preneoplastic lesion progression.
- Examine the role of mTOR signaling in renal lesion development.
Main Methods:
- Utilized TSC2(-/-) Eker rats exposed to aristolochic acid or ochratoxin A.
- Performed histopathology and cell proliferation analysis.
- Analyzed gene expression profiles of laser-microdissected tissues.
- Conducted immunostaining for pathway analysis.
Main Results:
- Observed compound- and sex-specific onset of preneoplastic lesions.
- Found comparable gene expression in lesions, suggesting compound-independent progression.
- Identified disturbed mTORC1 and mTORC2 signaling as drivers of clonal expansion.
- Noted minimal gene expression changes in normal tubules after prolonged exposure.
Conclusions:
- Kidney tumor development in this model is influenced by initial, time-restricted events.
- Lesion progression appears to be a compound-independent process.
- Deregulated mTOR signaling is a key mechanism in renal lesion development in Eker rats.

