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An Ex vivo Culture System to Study Thyroid Development
Published on: June 6, 2014
Transcriptional profile of Ki-Ras-induced transformation of thyroid cells
Roberta Visconti1, Antonella Federico, Valeria Coppola
1Dipartimento di Biologia e Patologia Cellulare e Molecolare, L. Califano, Universita' degli Studi di Napoli Federico II e/o Istituto di Endocrinologia e Oncologia Sperimentale G. Salvatore del CNR, Napoli, Italy.
Abstract:
In the last years, an increasing number of experiments has provided compelling evidence for a casual role of Ras protein mutations, resulting in their constitutive activation, in thyroid carcinogenesis. However, despite the clear involvement of Ras proteins in thyroid carcinogenesis, the nature of most of the target genes, whose expression is modulated by the Ras-induced signaling pathways and that are ultimately responsible for Ras-induced cellular transformation, remains largely unknown. To analyze Ras-dependent modulation of gene expression in thyroid cells we took advantage of a differentiated rat thyroid cell line, FRTL-5. As a model for Ras-dependent thyroid transformation, we used FRTL-5 cells infected with the Kirsten murine sarcoma virus, carrying the v-Ki-Ras oncogene. The infected cells (FRTL-5 v-Ki-Ras) have lost expression of the thyroid differentiation markers and also are completely transformed. We hybridized two different Affimetrix chips containing probe sets interrogating both known rat genes and ESTs for a total of more than 17,000 sequences using mRNA extracted from FRTL-5 and FRTL-5 v-Ki-Ras cell lines. We identified about 50 genes whose expression was induced and about 40 genes whose expression was downregulated more than 10-fold by Ras. We confirmed the differential expression of many of these genes in FRTL-5 v-Ki-Ras as compared to parental cells by using alternative techniques. Remarkably, we investigated the expression of some of the Ras-regulated genes in human thyroid carcinoma cell lines and tumor samples, our results, therefore, providing a new molecular profile of the genes involved in thyroid neoplastic transformation.
Insights
Ras protein mutations drive thyroid cancer by altering gene expression. This study identified key Ras-regulated genes in thyroid cells, offering new insights into thyroid neoplastic transformation.
Area of Science:
- Molecular Biology
- Oncology
- Genetics
Background:
- Ras protein mutations are implicated in thyroid carcinogenesis, leading to constitutive activation.
- The specific target genes modulated by Ras signaling pathways in thyroid transformation remain largely unidentified.
Purpose of the Study:
- To investigate Ras-dependent gene expression modulation in thyroid cells.
- To identify novel genes involved in Ras-induced thyroid cellular transformation.
Main Methods:
- Utilized a differentiated rat thyroid cell line (FRTL-5) and a Ras-transformed counterpart (FRTL-5 v-Ki-Ras) infected with Kirsten murine sarcoma virus.
- Employed Affymetrix gene expression chips to analyze over 17,000 rat genes and ESTs using mRNA from both cell lines.
- Confirmed differential gene expression using alternative molecular techniques.
Main Results:
- Identified approximately 50 genes with >10-fold induction and 40 genes with >10-fold downregulation by Ras.
- Validated the differential expression of numerous identified genes.
- Examined the expression of selected Ras-regulated genes in human thyroid carcinoma cell lines and tumor samples.
Conclusions:
- Ras proteins significantly modulate gene expression in thyroid cells, contributing to neoplastic transformation.
- This study provides a novel molecular profile of genes involved in thyroid cancer.
- The findings offer potential targets for understanding and treating thyroid cancer.
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