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Targeting Unique Ligand Binding Domain Structural Features Downregulates DKK1 in Y537S ESR1 Mutant Breast Cancer Cells.
Young, K S; Hancock, G R; Fink, E; Zigrossi, A; Flowers, B; Cooper, D A; Nguyen, V T; Martinez, M; Mon, K S; Bosland, M; Zak, D; Runde, A; Sharifi, M N; Kastrati, I; Minh, D D L; Kregel, S; Fanning, S W.
Affiliation
  • Young KS; Department of Cancer Biology, Loyola University Chicago Stritch School of Medicine, Maywood, IL 50153.
  • Hancock GR; Department of Cancer Biology, Loyola University Chicago Stritch School of Medicine, Maywood, IL 50153.
  • Fink E; Department of Cancer Biology, Loyola University Chicago Stritch School of Medicine, Maywood, IL 50153.
  • Zigrossi A; Department of Cancer Biology, Loyola University Chicago Stritch School of Medicine, Maywood, IL 50153.
  • Flowers B; Department of Cancer Biology, Loyola University Chicago Stritch School of Medicine, Maywood, IL 50153.
  • Cooper DA; Department of Chemistry, Illinois Institute of Technology, Chicago, IL 60616.
  • Nguyen VT; Department of Chemistry, Illinois Institute of Technology, Chicago, IL 60616.
  • Martinez M; Department of Cancer Biology, Loyola University Chicago Stritch School of Medicine, Maywood, IL 50153.
  • Mon KS; Department of Cancer Biology, Loyola University Chicago Stritch School of Medicine, Maywood, IL 50153.
  • Bosland M; Department of Pathology, University of Illinois Chicago, Chicago, IL 60607.
  • Zak D; Department of Cancer Biology, Loyola University Chicago Stritch School of Medicine, Maywood, IL 50153.
  • Runde A; Department of Cancer Biology, Loyola University Chicago Stritch School of Medicine, Maywood, IL 50153.
  • Sharifi MN; Department of Medicine, University of Wisconsin, Madison, WI 53705.
  • Kastrati I; Department of Cancer Biology, Loyola University Chicago Stritch School of Medicine, Maywood, IL 50153.
  • Minh DDL; Department of Chemistry, Illinois Institute of Technology, Chicago, IL 60616.
  • Kregel S; Department of Cancer Biology, Loyola University Chicago Stritch School of Medicine, Maywood, IL 50153.
  • Fanning SW; Department of Cancer Biology, Loyola University Chicago Stritch School of Medicine, Maywood, IL 50153.
bioRxiv ; 2024 Jun 02.
Article in En | MEDLINE | ID: mdl-38854123
ABSTRACT
Resistance to endocrine therapies remains a major clinical hurdle in breast cancer. Mutations to estrogen receptor alpha (ERα) arise after continued therapeutic pressure. Next generation selective estrogen receptor modulators and degraders/downregulators (SERMs and SERDs) show clinical efficacy, but responses are often non-durable. A tyrosine to serine point mutation at position 537 in the ERα ligand binding domain (LBD) is among the most common and most pathogenic alteration in this setting. It enables endocrine therapy resistance by superceding intrinsic structural-energetic gatekeepers of ER hormone-dependence, it enhances metastatic burden by enabling neomorphic ER-dependent transcriptional programs, and it resists SERM and SERD inhibiton by reducing their binding affinities and abilities to antagonize transcriptional coregulator binding. However, a subset of SERMs and SERDs can achieve efficacy by adopting poses that force the mutation to engage in a new interaction that favors the therapeutic receptor antagonist conformation. We previously described a chemically unconventional SERM, T6I-29, that demonstrates significant anti-proliferative activities in Y537S ERα breast cancer cells. Here, we use a comprehensive suite of structural-biochemical, in vitro, and in vivo approaches to better T6I-29's activities in breast cancer cells harboring Y537S ERα. RNA sequencing in cells treated with T6I-29 reveals a neomorphic downregulation of DKK1, a secreted glycoprotein known to play oncogenic roles in other cancers. Importantly, we find that DKK1 is significantly enriched in ER+ breast cancer plasma compared to healthy controls. This study shows how new SERMs and SERDs can identify new therapeutic pathways in endocrine-resistant ER+ breast cancers.

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: BioRxiv Year: 2024 Document type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: BioRxiv Year: 2024 Document type: Article