4.8 Article

Chem-seq permits identification of genomic targets of drugs against androgen receptor regulation selected by functional phenotypic screens

出版社

NATL ACAD SCIENCES
DOI: 10.1073/pnas.1404303111

关键词

transcription; histone demethylase

资金

  1. National Institutes of Health (NIH)
  2. National Cancer Institute [DK039949, DK18477, NS034934, CA173903]
  3. Department of Defense [PC111467, SU2C-AACR-PCF DT0812]
  4. Prostate Cancer Foundation
  5. US Army Medical Research and Material Command Era of Hope Postdoctoral Award [W81XWH-08-1-0554]
  6. NIH Pathway to Independence Award [4R00CA166527-02, 1K99DK094981-01]
  7. Cancer Prevention Research Institute of Texas First-time Faculty Recruitment Award R1218

向作者/读者索取更多资源

Understanding the mechanisms by which compounds discovered using cell-based phenotypic screening strategies might exert their effects would be highly augmented by new approaches exploring their potential interactions with the genome. For example, altered androgen receptor (AR) transcriptional programs, including castration resistance and subsequent chromosomal translocations, play key roles in prostate cancer pathological progression, making the quest for identification of new therapeutic agents and an understanding of their actions a continued priority. Here we report an approach that has permitted us to uncover the sites and mechanisms of action of a drug, referred to as SD70, initially identified by phenotypic screening for inhibitors of ligand and genotoxic stress-induced translocations in prostate cancer cells. Based on synthesis of a derivatized form of SD70 that permits its application for a ChIP-sequencing-like approach, referred to as Chem-seq, we were next able to efficiently map the genomewide binding locations of this small molecule, revealing that it largely colocalized with AR on regulatory enhancers. Based on these observations, we performed the appropriate global analyses to ascertain that SD70 inhibits the androgen-dependent AR program, and prostate cancer cell growth, acting, at least in part, by functionally inhibiting the Jumonji domain-containing demethylase, KDM4C. Global location of candidate drugs represents a powerful strategy for new drug development by mapping genomewide location of small molecules, a powerful adjunct to contemporary drug development strategies.

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