Nodal signaling promotes a tumorigenic phenotype in human breast cancer
Gina Kirsammer1, Luigi Strizzi2, Naira V Margaryan1
1Cancer Biology and Epigenomics Program, Ann and Robert H. Lurie Children's Hospital of Chicago Research Center, 2430 N Halsted St., Chicago, IL 60614, United States.
Abstract:
The Ras-ERK pathway is deregulated in approximately a third of human cancers, particularly those of epithelial origin. In aggressive, triple-negative, basal-like breast cancers, most tumors display increased MEK and ERK phosphorylation and exhibit a gene expression profile characteristic of Kras or EGFR mutant tumors; however, Ras family genetic mutations are uncommon in triple-negative breast cancer and EGFR mutations account for only a subset of these tumors. Therefore, the upstream events that activate MAPK signaling and promote tumor aggression in triple-negative breast cancers remain poorly defined. We have previously shown that a secreted TGF-β family signaling ligand, Nodal, is expressed in breast cancer in correlation with disease progression. Here we highlight key findings demonstrating that Nodal is required in aggressive human breast cancer cells to activate ERK signaling and downstream tumorigenic phenotypes both in vitro and in vivo. Experimental knockdown of Nodal signaling downregulates ERK activity, resulting in loss of c-myc, upregulation of p27, G1 cell cycle arrest, increased apoptosis and decreased tumorigenicity. The data suggest that ERK activation by Nodal signaling regulates c-myc and p27 proteins post-translationally and that this cascade is essential for aggressive breast tumor behavior in vivo. As the MAPK pathway is an important target for treating triple-negative breast cancers, upstream Nodal signaling may represent a promising target for breast cancer diagnosis and combined therapies aimed at blocking ERK pathway activation.
Insights
Nodal signaling activates the ERK pathway in aggressive breast cancer, driving tumor growth. Blocking Nodal may offer new therapeutic strategies for triple-negative breast cancer by inhibiting ERK signaling.
Area of Science:
- Oncology
- Molecular Biology
- Cell Signaling
Background:
- The Ras-ERK pathway is frequently deregulated in human cancers, especially epithelial cancers.
- Triple-negative breast cancers (TNBC) often show increased ERK phosphorylation, but upstream activators are unclear.
- Nodal, a TGF-β ligand, correlates with breast cancer progression.
Purpose of the Study:
- To investigate the role of Nodal in activating ERK signaling in aggressive breast cancer.
- To determine if Nodal signaling drives tumorigenic phenotypes in TNBC.
- To identify Nodal as a potential therapeutic target for TNBC.
Main Methods:
- Experimental knockdown of Nodal signaling in aggressive human breast cancer cells.
- Assessment of ERK activity, cell cycle progression, apoptosis, and tumorigenicity in vitro and in vivo.
- Analysis of c-myc and p27 protein regulation.
Main Results:
- Nodal knockdown significantly downregulated ERK activity.
- Reduced ERK activity led to c-myc loss, p27 upregulation, G1 cell cycle arrest, and increased apoptosis.
- Nodal signaling was essential for aggressive tumor behavior and tumorigenicity in vivo.
- Nodal-mediated ERK activation appears to regulate c-myc and p27 post-translationally.
Conclusions:
- Nodal signaling is required for ERK activation and aggressive phenotypes in human breast cancer.
- The Nodal-ERK-c-myc/p27 axis is critical for TNBC progression.
- Targeting upstream Nodal signaling presents a potential therapeutic strategy for TNBC by blocking ERK activation.
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