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Published on: May 27, 2021
GZ17-6.02 and palbociclib interact to kill ER+ breast cancer cells
Laurence Booth1, Cameron West2, Robert P Moore2
1Department of Biochemistry and Molecular Biology, Virginia Commonwealth University, Richmond, VA 23298, USA.
Abstract:
GZ17-6.02 is presently undergoing clinical evaluation in solid tumors and lymphoma. The present studies were performed to define its biology in estrogen receptor positive breast cancer cells and to determine whether it interacted with palbociclib to enhance tumor cell killing. GZ17-6.02 interacted in an additive fashion with palbociclib to kill ER+ breast cancer cells. GZ17-6.02 and palbociclib cooperated to inactivate mTOR and AKT and to activate ULK1 and PERK. The drugs interacted to increase the expression of FAS-L and BAX, and to decrease the levels of MCL1, the estrogen receptor, and HDACs 1-3. Palbociclib activated ERBB3, an effect blocked by GZ17-6.02. GZ17-6.02 and palbociclib interacted to increase the expression of multiple toxic BH3 domain proteins and to reduce MCL1 and BCL-XL expression. Knock down of FAS-L reduced the lethality of [GZ17-6.02 + palbociclib]. GZ17-6.02 and palbociclib interacted to enhance autophagosome formation and autophagic flux. Knock down of Beclin1, ATG5, BAG3, eIF2α, toxic BH3 domain proteins or CD95 significantly reduced drug combination lethality. GZ17-6.02 and palbociclib increased the expression of Beclin1 and ATG5, effects blocked by knock down of eIF2α. The drugs also increased the phosphorylation of the AMPK and ATG13, effects blocked by knock down of ATM. Knock down of ATM or the AMPK, or expression of activated mTOR significantly reduced the abilities of GZ17-6.02 and palbociclib to enhance autophagosome formation and autophagic flux.
Insights
GZ17-6.02 and palbociclib show additive effects in killing estrogen receptor-positive breast cancer cells. The combination therapy impacts key cell death pathways and enhances autophagy, suggesting a cooperative mechanism for tumor cell killing.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Estrogen receptor-positive (ER+) breast cancer remains a significant health challenge.
- Targeted therapies like GZ17-6.02 and palbociclib offer potential treatment avenues.
- Understanding drug interactions is crucial for optimizing breast cancer therapy.
Purpose of the Study:
- To investigate the biological effects of GZ17-6.02 in ER+ breast cancer cells.
- To determine the synergistic potential of combining GZ17-6.02 with palbociclib.
- To elucidate the molecular mechanisms underlying the combination's anti-cancer activity.
Main Methods:
- Cell viability assays in ER+ breast cancer cell lines.
- Western blotting to assess protein expression and phosphorylation.
- Analysis of autophagy markers and signaling pathways.
- Gene knockdown studies to identify critical mediators.
Main Results:
- GZ17-6.02 and palbociclib demonstrated additive cytotoxicity in ER+ breast cancer cells.
- The combination therapy induced apoptosis by modulating BAX, MCL1, and FAS-L expression.
- Co-treatment enhanced autophagosome formation and autophagic flux via ATM/AMPK and eIF2α signaling.
- Palbociclib-induced ERBB3 activation was inhibited by GZ17-6.02.
Conclusions:
- GZ17-6.02 and palbociclib exhibit a cooperative interaction against ER+ breast cancer cells.
- The combination therapy targets multiple cell death and survival pathways, including apoptosis and autophagy.
- This combination warrants further investigation as a potential therapeutic strategy for ER+ breast cancer.
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