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Published on: November 15, 2013
Small molecule inhibition of the steroid receptor coactivators, SRC-3 and SRC-1
Ying Wang1, David M Lonard, Yang Yu
1Department of Molecular and Cellular Biology, Baylor College of Medicine, Houston, Texas 77030, USA.
Abstract:
Overexpression of steroid receptor coactivator (SRC)-1 and SRC-3 is associated with cancer initiation, metastasis, advanced disease, and resistance to chemotherapy. In most of these cases, SRC-1 and SRC-3 have been shown to promote tumor cell growth by activating nuclear receptor and multiple growth factor signaling cascades that lead to uncontrolled tumor cell growth. Up until now, most targeted chemotherapeutic drugs have been designed largely to block a single pathway at a time, but cancers frequently acquire resistance by switching to alternative growth factor pathways. We reason that the development of chemotherapeutic agents against SRC coactivators that sit at the nexus of multiple cell growth signaling networks and transcriptional factors should be particularly effective therapeutics. To substantiate this hypothesis, we report the discovery of 2,2'-bis-(Formyl-1,6,7-trihydroxy-5-isopropyl-3-methylnaphthalene (gossypol) as a small molecule inhibitor of coactivator SRC-1 and SRC-3. Our data indicate that gossypol binds directly to SRC-3 in its receptor interacting domain. In MCF-7 breast cancer cells, gossypol selectively reduces the cellular protein concentrations of SRC-1 and SRC-3 without generally altering overall protein expression patterns, SRC-2, or other coactivators, such as p300 and coactivator-associated arginine methyltransferase 1. Gossypol reduces the concentration of SRC-3 in prostate, lung, and liver cancer cell lines. Gossypol inhibits cell viability in the same cancer cell lines where it promotes SRC-3 down-regulation. Additionally, gossypol sensitizes lung and breast cancer cell lines to the inhibitory effects of other chemotherapeutic agents. Importantly, gossypol is selectively cytotoxic to cancer cells, whereas normal cell viability is not affected. This data establish the proof-of-principle that, as a class, SRC-1 and SRC-3 coactivators are accessible chemotherapeutic targets. Given their function as integrators of multiple cell growth signaling systems, SRC-1/SRC-3 small molecule inhibitors comprise a new class of drugs that have potential as novel chemotherapeutics able to defeat aspects of acquired cancer cell resistance mechanisms.
Insights
Steroid receptor coactivator (SRC)-1 and SRC-3 overexpression drives cancer growth and drug resistance. Gossypol, a novel small molecule, inhibits SRC-1 and SRC-3, showing selective cancer cell toxicity and potential to overcome treatment resistance.
Area of Science:
- Molecular Biology
- Cancer Research
- Pharmacology
Background:
- Overexpression of steroid receptor coactivator (SRC)-1 and SRC-3 is linked to cancer initiation, metastasis, and chemotherapy resistance.
- SRC-1 and SRC-3 promote tumor growth by activating signaling cascades, but cancers develop resistance by utilizing alternative pathways.
- Targeting SRC coactivators at the nexus of multiple signaling networks offers a promising therapeutic strategy.
Purpose of the Study:
- To discover small molecule inhibitors targeting SRC-1 and SRC-3 as a novel therapeutic approach for cancer.
- To investigate the efficacy of gossypol as a small molecule inhibitor of SRC-1 and SRC-3.
Main Methods:
- Discovery of gossypol as a small molecule inhibitor of SRC-1 and SRC-3.
- Assessed gossypol's direct binding to SRC-3 in its receptor interacting domain.
- Evaluated gossypol's effect on SRC-1 and SRC-3 protein concentrations in various cancer cell lines (breast, prostate, lung, liver).
- Determined gossypol's impact on cancer cell viability and its synergistic effects with other chemotherapeutic agents.
Main Results:
- Gossypol selectively reduces SRC-1 and SRC-3 protein levels in MCF-7 breast cancer cells without affecting other coactivators.
- Gossypol decreases SRC-3 concentration in prostate, lung, and liver cancer cell lines, correlating with inhibited cell viability.
- Gossypol demonstrates selective cytotoxicity to cancer cells, sparing normal cells, and sensitizes lung and breast cancer cells to chemotherapy.
Conclusions:
- SRC-1 and SRC-3 are accessible chemotherapeutic targets, validating the strategy of inhibiting these coactivators.
- Gossypol acts as a proof-of-principle small molecule inhibitor for SRC-1 and SRC-3.
- SRC-1/SRC-3 inhibitors represent a new class of therapeutics with potential to overcome acquired cancer resistance mechanisms.
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