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Updated: Jun 23, 2026

Spatial and Temporal Control of Murine Melanoma Initiation from Mutant Melanocyte Stem Cells
Published on: June 7, 2019
Erbb2 suppresses DNA damage-induced checkpoint activation and UV-induced mouse skin tumorigenesis
Justin G Madson1, David T Lynch, Jessica Svoboda
1Department of Biomedical Sciences, School of Medicine, Creighton University, 2500 California Plaza, Omaha, NE 68178, USA.
Abstract:
The Erbb2 receptor is activated by UV irradiation, the primary cause of non-melanoma skin cancer. We hypothesized that Erbb2 activation contributes to UV-induced skin tumorigenesis by suppressing cell cycle arrest. Consistent with this hypothesis, inhibition of Erbb2 in v-ras(Ha) transgenic mice before UV exposure resulted in both 56% fewer skin tumors and tumors that were 70% smaller. Inhibition of the UV-induced activation of Erbb2 also resulted in milder epidermal hyperplasia, S-phase accumulation, and decreased levels of the cell cycle regulator Cdc25a, suggesting altered cell cycle regulation on inhibition of Erbb2. Further investigation using inhibition or genetic deletion of Erbb2 in vitro revealed reduced Cdc25a levels and increased S-phase arrest in UV-irradiated cells lacking Erbb2 activity. Ectopic expression of Cdc25a prevented UV-induced S-phase arrest in keratinocytes lacking Erbb2 activity, demonstrating that maintenance of Cdc25a by Erbb2 suppresses cell cycle arrest. Examination of checkpoint pathway activation upstream of Cdc25a revealed Erbb2 activation did not alter Ataxia Telangiectasia and Rad3-related/Ataxia Telangiectasia Mutated activity but increased inhibitory phosphorylation of Chk1-Ser(280). Since Akt phosphorylates Chk1-Ser(280), the effect of Erbb2 on phosphatidyl inositol-3-kinase (PI3K)/Akt signaling during UV-induced cell cycle arrest was determined. Erbb2 ablation reduced the UV-induced activation of PI3K while inhibition of PI3K/Akt increased UV-induced S-phase arrest. Thus, UV-induced Erbb2 activation increases skin tumorigenesis through inhibitory phosphorylation of Chk1, Cdc25a maintenance, and suppression of S-phase arrest via a PI3K/Akt-dependent mechanism.
Insights
UV irradiation activates Erbb2, promoting skin cancer by suppressing cell cycle arrest. Inhibiting Erbb2 reduces skin tumors and alters cell cycle regulators, offering a potential therapeutic target for non-melanoma skin cancer.
Area of Science:
- Oncology
- Dermatology
- Molecular Biology
Background:
- UV irradiation is a primary cause of non-melanoma skin cancer.
- The Erbb2 receptor tyrosine kinase is implicated in various cancers.
- Understanding UV-induced skin tumorigenesis requires investigating key molecular pathways.
Purpose of the Study:
- To investigate the role of Erbb2 activation in UV-induced skin tumorigenesis.
- To determine if Erbb2 inhibition can prevent or reduce skin tumor development.
- To elucidate the molecular mechanisms by which Erbb2 influences cell cycle regulation after UV exposure.
Main Methods:
- Utilized v-ras(Ha) transgenic mice and in vitro keratinocyte models.
- Administered Erbb2 inhibitors before UV irradiation.
- Performed genetic deletion of Erbb2 and ectopic expression of Cdc25a.
- Analyzed epidermal hyperplasia, cell cycle phase distribution (S-phase), Cdc25a levels, and checkpoint pathway activation (Chk1, PI3K/Akt).
Main Results:
- Erbb2 inhibition in mice led to 56% fewer and 70% smaller skin tumors.
- Inhibition of Erbb2 reduced epidermal hyperplasia, increased S-phase arrest, and decreased Cdc25a levels.
- In vitro studies confirmed that Erbb2 absence caused reduced Cdc25a and increased S-phase arrest.
- Erbb2 activation suppressed UV-induced S-phase arrest via PI3K/Akt signaling, leading to inhibitory phosphorylation of Chk1 and Cdc25a maintenance.
Conclusions:
- UV-induced Erbb2 activation promotes skin tumorigenesis by suppressing cell cycle arrest.
- Erbb2 inhibition represents a potential therapeutic strategy for non-melanoma skin cancer.
- The mechanism involves Erbb2-mediated PI3K/Akt signaling, leading to Chk1 phosphorylation and Cdc25a stabilization, thereby inhibiting cell cycle arrest.
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