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Modified Yeast-Two-Hybrid System to Identify Proteins Interacting with the Growth Factor Progranulin
Published on: January 17, 2012
Transcript and protein profiling identifies signaling, growth arrest, apoptosis, and NF-κB survival signatures
Colette Meyer1, Andrew H Sims, Kevin Morgan
1Breakthrough Breast Cancer Research Unit and Division of Pathology, Institute of Genetics and Molecular Medicine, University of Edinburgh, Crewe Road South, Edinburgh, UK.
Abstract:
GNRH significantly inhibits proliferation of a proportion of cancer cell lines by activating GNRH receptor (GNRHR)-G protein signaling. Therefore, manipulation of GNRHR signaling may have an under-utilized role in treating certain breast and ovarian cancers. However, the precise signaling pathways necessary for the effect and the features of cellular responses remain poorly defined. We used transcriptomic and proteomic profiling approaches to characterize the effects of GNRHR activation in sensitive cells (HEK293-GNRHR, SCL60) in vitro and in vivo, compared to unresponsive HEK293. Analyses of gene expression demonstrated a dynamic response to the GNRH superagonist Triptorelin. Early and mid-phase changes (0.5-1.0 h) comprised mainly transcription factors. Later changes (8-24 h) included a GNRH target gene, CGA, and up- or downregulation of transcripts encoding signaling and cell division machinery. Pathway analysis identified altered MAPK and cell cycle pathways, consistent with occurrence of G(2)/M arrest and apoptosis. Nuclear factor kappa B (NF-κB) pathway gene transcripts were differentially expressed between control and Triptorelin-treated SCL60 cultures. Reverse-phase protein and phospho-proteomic array analyses profiled responses in cultured cells and SCL60 xenografts in vivo during Triptorelin anti-proliferation. Increased phosphorylated NF-κB (p65) occurred in SCL60 in vitro, and p-NF-κB and IκBε were higher in treated xenografts than controls after 4 days Triptorelin. NF-κB inhibition enhanced the anti-proliferative effect of Triptorelin in SCL60 cultures. This study reveals details of pathways interacting with intense GNRHR signaling, identifies potential anti-proliferative target genes, and implicates the NF-κB survival pathway as a node for enhancing GNRH agonist-induced anti-proliferation.
Insights
Gonadotropin-releasing hormone (GNRH) receptor signaling inhibits cancer cell proliferation. Targeting the nuclear factor kappa B (NF-κB) pathway enhances this anti-proliferative effect, offering new therapeutic strategies for breast and ovarian cancers.
Area of Science:
- Molecular Biology
- Oncology
- Endocrinology
Background:
- Gonadotropin-releasing hormone (GNRH) receptor (GNRHR) signaling inhibits certain cancer cell proliferation.
- The precise signaling pathways and cellular responses remain poorly understood.
- GNRHR signaling is a potential therapeutic target for breast and ovarian cancers.
Purpose of the Study:
- To characterize the signaling pathways and cellular responses to GNRHR activation.
- To investigate the role of the nuclear factor kappa B (NF-κB) pathway in GNRH agonist-induced anti-proliferation.
- To identify potential therapeutic targets for enhancing anti-cancer effects.
Main Methods:
- Transcriptomic and proteomic profiling of GNRHR-sensitive and insensitive cell lines (HEK293-GNRHR, SCL60, HEK293) in vitro and in vivo.
- Treatment with GNRH superagonist Triptorelin.
- Analysis of gene expression, pathway analysis (MAPK, cell cycle, NF-κB), and reverse-phase protein/phospho-proteomic arrays.
- Assessment of NF-κB inhibition effects on Triptorelin's anti-proliferative activity.
Main Results:
- Triptorelin induced dynamic gene expression changes, including transcription factors, CGA, and signaling/cell division machinery.
- GNRHR activation altered MAPK and cell cycle pathways, leading to G(2)/M arrest and apoptosis.
- NF-κB pathway activation (increased p65, p-NF-κB, IκBε) was observed in Triptorelin-treated cells and xenografts.
- Inhibition of NF-κB enhanced Triptorelin's anti-proliferative effect.
Conclusions:
- GNRHR signaling involves complex interactions with MAPK, cell cycle, and NF-κB pathways.
- NF-κB acts as a survival pathway that can be targeted to enhance GNRH agonist efficacy.
- This study identifies potential anti-proliferative target genes and implicates NF-κB as a key node for therapeutic intervention in GNRH-responsive cancers.
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