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The Small Molecule Antagonist KCI807 Disrupts Association of the Amino-Terminal Domain of the Androgen Receptor with
Claire Soave1, Charles Ducker1, Naeyma Islam1
1Department of Oncology (C.S., S.K., Y.H., L.P., M.R.) and Smart Sensors and Integrated Microsystems (SSIM) Program (S.Y., G.A.), Wayne State University School of Medicine and Barbara Ann Karmanos Cancer Institute, Detroit, Michigan; Department of Biochemistry and Molecular Biology, College of Natural Science, Michigan State University, East Lansing, Michigan (N.I. and A.D.); School of Life Sciences, University of Nottingham, Queens Medical Centre, Nottingham, United Kingdom (C.D. and P.E.S.); and Department of Pharmacology, UNC-Chapel Hill School of Medicine, Chapel Hill, North Carolina (N.N.).
Abstract:
The androgen receptor (AR) is a crucial coactivator of ELK1 for prostate cancer (PCa) growth, associating with ELK1 through two peptide segments (358-457 and 514-557) within the amino-terminal domain (NTD) of AR. The small-molecule antagonist 5-hydroxy-2-(3-hydroxyphenyl)chromen-4-one (KCI807) binds to AR, blocking ELK1 binding and inhibiting PCa growth. We investigated the mode of interaction of KCI807 with AR using systematic mutagenesis coupled with ELK1 coactivation assays, testing polypeptide binding and Raman spectroscopy. In full-length AR, deletion of neither ELK1 binding segment affected sensitivity of residual ELK1 coactivation to KCI807. Although the NTD is sufficient for association of AR with ELK1, interaction of the isolated NTD with ELK1 was insensitive to KCI807. In contrast, coactivation of ELK1 by the AR-V7 splice variant, comprising the NTD and the DNA binding domain (DBD), was sensitive to KCI807. Deletions and point mutations within DBD segment 558-595, adjacent to the NTD, interfered with coactivation of ELK1, and residual ELK1 coactivation by the mutants was insensitive to KCI807. In a glutathione S-transferase pull-down assay, KCI807 inhibited ELK1 binding to an AR polypeptide that included the two ELK1 binding segments and the DBD but did not affect ELK1 binding to a similar AR segment that lacked the sequence downstream of residue 566. Raman spectroscopy detected KCI807-induced conformational change in the DBD. The data point to a putative KCI807 binding pocket within the crystal structure of the DBD and indicate that either mutations or binding of KCI807 at this site will induce conformational changes that disrupt ELK1 binding to the NTD. SIGNIFICANCE STATEMENT: The small-molecule antagonist KCI807 disrupts association of the androgen receptor (AR) with ELK1, serving as a prototype for the development of small molecules for a novel type of therapeutic intervention in drug-resistant prostate cancer. This study provides basic information needed for rational KCI807-based drug design by identifying a putative binding pocket in the DNA binding domain of AR through which KCI807 modulates the amino-terminal domain to inhibit ELK1 binding.
Insights
The small molecule KCI807 inhibits prostate cancer growth by disrupting androgen receptor (AR) and ELK1 binding. This study identifies a binding pocket in the AR DNA binding domain, crucial for developing new therapies for drug-resistant prostate cancer.
Area of Science:
- Molecular Biology
- Cancer Research
- Drug Discovery
Background:
- The androgen receptor (AR) is essential for prostate cancer (PCa) growth, coactivating ELK1 via its amino-terminal domain (NTD).
- The small-molecule antagonist KCI807 inhibits PCa growth by blocking AR-ELK1 interaction.
Purpose of the Study:
- To elucidate the interaction mechanism of KCI807 with AR.
- To identify the specific AR domain and residues involved in KCI807's inhibitory action.
- To provide a basis for rational drug design against drug-resistant prostate cancer.
Main Methods:
- Systematic mutagenesis of AR.
- ELK1 coactivation assays.
- Glutathione S-transferase (GST) pull-down assays.
- Raman spectroscopy.
Main Results:
- KCI807's inhibitory effect on ELK1 coactivation is dependent on the AR DNA binding domain (DBD), not solely the NTD.
- Mutations and KCI807 binding within the AR DBD (residues 558-595) disrupt ELK1 binding to the NTD.
- Raman spectroscopy confirmed KCI807-induced conformational changes in the AR DBD.
Conclusions:
- KCI807 acts via a binding pocket in the AR DBD, inducing conformational changes that allosterically inhibit ELK1 binding.
- This mechanism offers a novel therapeutic strategy for drug-resistant prostate cancer.
- The findings are critical for the rational design of KCI807-based therapeutics.
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