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Akt3-mediated resistance to apoptosis in B-RAF-targeted melanoma cells
Yongping Shao1, Andrew E Aplin
1Department of Cancer Biology and Kimmel Cancer Center, Thomas Jefferson University, Philadelphia, Pennsylvania 19107, USA
Abstract:
Melanoma cells are highly resistant to anoikis, a form of apoptosis induced in nonadherent/inappropriate adhesion conditions. Depleting B-RAF or the prosurvival Bcl-2 family protein Mcl-1 renders mutant B-RAF melanoma cells susceptible to anoikis. In this study, we examined the effect of targeting B-RAF on the survival of primary stage melanoma cells cultured in three-dimensional type I collagen gels, which partially mimics the dermal microenvironment. Depletion/inhibition of B-RAF with small interfering RNA or the mutant B-RAF inhibitor, PLX4720, induced apoptosis of mutant B-RAF melanoma cells in three-dimensional collagen. Apoptosis was dependent on two upregulated BH3-only proteins, Bim-EL and Bmf, and was inhibited by ectopic Mcl-1 expression. Akt3 activation has been associated with the survival of melanoma cells. Mutant B-RAF melanoma cells ectopically expressing a constitutively activated form of Akt3 or endogenously expressing mutant Akt3 were protected from apoptosis induced by B-RAF knockdown or PLX4720 treatment. Furthermore, intrinsically resistant metastatic melanoma cells displayed elevated Akt phosphorylation in three-dimensional collagen and were rendered susceptible to PLX4720 by Akt3 knockdown. Importantly, myristylated Akt3 prevented B-RAF targeting-induced upregulation of Bim-EL and Bmf in three-dimensional collagen and partially protected Mcl-1-depleted cells from apoptosis. These findings delineate how mutant B-RAF protects melanoma cells from apoptosis and provide insight into possible resistance mechanisms to B-RAF inhibitors.
Insights
Targeting BRAF in melanoma cells induces anoikis (apoptosis) by upregulating Bim and Bmf. Akt3 activation confers resistance, highlighting potential therapeutic strategies against melanoma survival.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Melanoma cells exhibit resistance to anoikis, a crucial factor in metastasis.
- Mutant BRAF is a key driver in melanoma proliferation and survival.
- Mcl-1 and Akt3 are implicated in melanoma cell survival pathways.
Purpose of the Study:
- To investigate the impact of targeting BRAF on melanoma cell survival in a 3D collagen matrix.
- To elucidate the molecular mechanisms underlying BRAF inhibitor-induced apoptosis.
- To identify potential resistance mechanisms to BRAF inhibition in melanoma.
Main Methods:
- Utilized small interfering RNA (siRNA) and PLX4720 to inhibit BRAF in melanoma cells.
- Cultured cells in three-dimensional type I collagen gels to mimic the dermal microenvironment.
- Assessed apoptosis induction, BH3-only protein upregulation (Bim-EL, Bmf), and Akt3 activation.
Main Results:
- BRAF inhibition induced apoptosis in melanoma cells, dependent on Bim-EL and Bmf upregulation.
- Ectopic Mcl-1 expression inhibited BRAF inhibitor-induced apoptosis.
- Akt3 activation protected melanoma cells from BRAF targeting-induced apoptosis and conferred resistance to PLX4720.
- Akt3 knockdown sensitized resistant metastatic melanoma cells to PLX4720.
Conclusions:
- BRAF inhibition triggers apoptosis in melanoma via Bim and Bmf, but Akt3 activation provides a resistance mechanism.
- Understanding the interplay between BRAF, Mcl-1, and Akt3 is crucial for overcoming therapeutic resistance in melanoma.
- Targeting Akt3 in combination with BRAF inhibitors may represent a viable strategy for melanoma treatment.
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