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Notch signaling induces cell cycle arrest in small cell lung cancer cells
V Sriuranpong1, M W Borges, R K Ravi
1Oncology Center, Johns Hopkins University School of Medicine, Baltimore, Maryland 21231, USA.
Abstract:
Among the various forms of human lung cancer, small cell lung cancer (SCLC) exhibits a characteristic neuroendocrine (NE) phenotype. Neural and NE differentiation in SCLC depend, in part, on the action of the basic-helix-loop-helix (bHLH) transcription factor human achaete-scute homologue-1 (hASH1). In nervous system development, the Notch signaling pathway is a critical negative regulator of bHLH factors, including hASH1, controlling cell fate commitment and differentiation. To characterize Notch pathway function in SCLC, we explored the consequences of constitutively active Notch signaling in cultured SCLC cells. Recombinant adenoviruses were used to overexpress active forms of Notch1, Notch2, or the Notch effector protein human hairy enhancer of split-1 (HES1) in DMS53 and NCI-H209 SCLC cells. Notch proteins, but not HES1 or control adenoviruses, caused a profound growth arrest, associated with a G1 cell cycle block. We found up-regulation of p21(waf1/cip1) and p27kip1 in concert with the cell cycle changes. Active Notch proteins also led to dramatic reduction in hASH1 expression, as well as marked activation of phosphorylated extracellular signal-regulated kinase (ERK)1 and ERK2, findings that have been shown to be associated with cell cycle arrest in SCLC cells. These data suggest that the previously described function of Notch proteins as proto-oncogenes is highly context-dependent. Notch activation, in the setting of a highly proliferative hASH1-dependent NE neoplasm, can be associated with growth arrest and apparent reduction in neoplastic potential.
Insights
Notch signaling activation in small cell lung cancer (SCLC) cells halts their growth by blocking the cell cycle. This pathway reduces human achaete-scute homologue-1 (hASH1) expression, impacting neuroendocrine differentiation in SCLC.
Area of Science:
- Oncology
- Cell Biology
- Molecular Biology
Background:
- Small cell lung cancer (SCLC) is characterized by a neuroendocrine (NE) phenotype.
- Neural and NE differentiation in SCLC rely on the transcription factor human achaete-scute homologue-1 (hASH1).
- The Notch signaling pathway negatively regulates bHLH factors like hASH1 during nervous system development.
Purpose of the Study:
- To investigate the role and consequences of Notch pathway activation in SCLC.
- To determine how Notch signaling affects SCLC cell growth and differentiation.
Main Methods:
- Overexpression of active Notch1, Notch2, or HES1 using recombinant adenoviruses in DMS53 and NCI-H209 SCLC cell lines.
- Analysis of cell cycle progression, expression of key regulatory proteins (hASH1, p21, p27), and ERK phosphorylation.
Main Results:
- Constitutively active Notch proteins induced profound SCLC cell growth arrest.
- Notch activation resulted in a G1 cell cycle block, with up-regulation of p21(waf1/cip1) and p27kip1.
- Active Notch proteins significantly reduced hASH1 expression and activated ERK1/ERK2 phosphorylation.
Conclusions:
- Notch pathway activation can lead to cell cycle arrest and reduced neoplastic potential in SCLC.
- The oncogenic role of Notch proteins is context-dependent, particularly in hASH1-dependent NE neoplasms.
- Notch signaling represents a potential therapeutic target for modulating SCLC proliferation.
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