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Updated: Aug 23, 2026

Spatial and Temporal Control of Murine Melanoma Initiation from Mutant Melanocyte Stem Cells
Published on: June 7, 2019
Inhibition of constitutively activated nuclear factor-kappaB radiosensitizes human melanoma cells
Anupama Munshi1, John F Kurland, Takashi Nishikawa
1Department of Experimental Radiation Oncology, University of Texas M.D. Anderson Cancer Center, Box 066, 1515 Holcombe Boulevard, Houston, TX 7703, USA.
Abstract:
Melanoma tumors and cultured cell lines are relatively resistant to the cytotoxic effects of ionizing radiation, thereby limiting the use of radiotherapy for the clinical treatment of melanoma. New strategies for sensitizing melanoma cells therefore deserve examination. In an attempt to identify and target signaling pathways that contribute to radioresistance, we investigated the role of nuclear factor-kappaB (NF-kappaB), a transcription factor known to inhibit apoptosis induced by a variety of stimuli and promote radioresistance. Two human metastatic melanoma cell lines, A375 and MeWo, were used to examine the radiosensitizing effects of inhibitors of the NF-kappaB pathway. Nuclear extracts from these cell lines were tested for active NF-kappaB using the electrophoretic mobility shift assay. Both melanoma cell lines had constitutively activated NF-kappaB as observed by electrophoretic mobility shift assay. In an attempt to reverse NF-kappaB activity, cells were treated either with vehicle alone (DMSO) or with a proteasome inhibitor Z-Leu-Leu-Leu-H (MG132; 10 micromol/L for 2 hours prior to irradiation) that inhibited both constitutive and radiation-induced NF-kappaB activity. The clonogenic cell survival assay showed that pretreatment with MG132 enhanced tumor cell radiosensitivity with the survival factor at 2 Gy being reduced from 48 +/- 0.8% and 48 +/- 1.6% in vehicle-treated cells to 27.7 +/- 0.32% and 34.3 +/- 0.7% in MG132-treated MeWo and A375 cells, respectively. To test the role of NF-kappaB in radioresistance more directly, MeWo cells were stably transfected with a dominant-negative mutant IkappaBalpha construct, which led to the inhibition of both constitutive and radiation-induced NF-kappaB activity. A modest restoration of radiosensitivity was also observed in the stably transfected MeWo cells with survival factor at 2 Gy values being reduced from 47 +/- 0.8% in parental MeWo cells to 32.9 +/- 0.7% in stable transfectants. Because constitutively activated mitogen-activated protein kinase kinase (MEK) pathway has been shown to lead to activated NF-kappaB, we wanted to determine the relative contribution of activated MEK in the human melanoma cells. To test this, MeWo and A375 melanoma cells were exposed to the MEK inhibitor PD184352. Treatment with PD184352 partially reversed NF-kappaB activity but did not impart radiation sensitivity to these cells. Our results indicate that activated NF-kappaB may be one of the pathways responsible for the radioresistance of melanoma cells and that strategies for inhibiting its influence may be useful in restoring the radioresponse of melanomas.
Insights
Targeting nuclear factor-kappaB (NF-kappaB) can enhance melanoma cell radiosensitivity. Inhibiting NF-kappaB activity with agents like MG132 or dominant-negative IkappaBalpha restores the effectiveness of radiation therapy for melanoma.
Area of Science:
- Oncology
- Molecular Biology
- Radiotherapy Research
Background:
- Melanoma exhibits resistance to ionizing radiation, limiting radiotherapy efficacy.
- Nuclear factor-kappaB (NF-kappaB) is a key transcription factor implicated in cellular radioresistance and inhibition of apoptosis.
- Constitutive activation of NF-kappaB is observed in melanoma cell lines, contributing to treatment challenges.
Purpose of the Study:
- To investigate the role of nuclear factor-kappaB (NF-kappaB) in melanoma radioresistance.
- To evaluate the radiosensitizing effects of inhibiting the NF-kappaB pathway in melanoma cells.
- To explore potential therapeutic strategies for overcoming melanoma radioresistance.
Main Methods:
- Utilized human metastatic melanoma cell lines (A375, MeWo).
- Assessed NF-kappaB activity using electrophoretic mobility shift assay.
- Administered proteasome inhibitor (MG132) and dominant-negative IkappaBalpha transfection to inhibit NF-kappaB.
- Evaluated radiosensitivity via clonogenic cell survival assays.
- Investigated the effect of MEK inhibitor (PD184352) on NF-kappaB activity and radiosensitivity.
Main Results:
- Both melanoma cell lines displayed constitutively activated NF-kappaB.
- MG132 treatment significantly enhanced radiosensitivity, reducing cell survival post-irradiation.
- Stable transfection with dominant-negative IkappaBalpha also restored melanoma cell radiosensitivity.
- MEK inhibitor partially reduced NF-kappaB activity but did not significantly increase radiosensitivity.
Conclusions:
- Activated NF-kappaB is a significant contributor to radioresistance in melanoma cells.
- Inhibiting NF-kappaB activity represents a promising strategy to sensitize melanoma to radiotherapy.
- Targeting the NF-kappaB pathway holds potential for improving clinical outcomes in melanoma treatment.
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