Switching from Aromatase Inhibitors to Dual Targeting Flavonoid-Based Compounds for Breast Cancer Treatment

Molecules. 2023 Mar 29;28(7):3047. doi: 10.3390/molecules28073047.

Abstract

Despite the significant outcomes attained by scientific research, breast cancer (BC) still represents the second leading cause of death in women. Estrogen receptor-positive (ER+) BC accounts for the majority of diagnosed BCs, highlighting the disruption of estrogenic signalling as target for first-line treatment. This goal is presently pursued by inhibiting aromatase (AR) enzyme or by modulating Estrogen Receptor (ER) α. An appealing strategy for fighting BC and reducing side effects and resistance issues may lie in the design of multifunctional compounds able to simultaneously target AR and ER. In this paper, previously reported flavonoid-related potent AR inhibitors were suitably modified with the aim of also targeting ERα. As a result, homoisoflavone derivatives 3b and 4a emerged as well-balanced submicromolar dual acting compounds. An extensive computational study was then performed to gain insights into the interactions the best compounds established with the two targets. This study highlighted the feasibility of switching from single-target compounds to balanced dual-acting agents, confirming that a multi-target approach may represent a valid therapeutic option to counteract ER+ BC. The homoisoflavone core emerged as a valuable natural-inspired scaffold for the design of multifunctional compounds.

Keywords: ERα ligands; aromatase inhibitors; homoisoflavones; molecular dynamics; multitarget.

MeSH terms

  • Aromatase Inhibitors* / chemical synthesis
  • Aromatase Inhibitors* / chemistry
  • Aromatase Inhibitors* / pharmacology
  • Aromatase* / chemistry
  • Aromatase* / metabolism
  • Breast Neoplasms* / drug therapy
  • Breast Neoplasms* / enzymology
  • Breast Neoplasms* / metabolism
  • Drug Design*
  • Estrogen Receptor alpha* / antagonists & inhibitors
  • Estrogen Receptor alpha* / chemistry
  • Estrogen Receptor alpha* / metabolism
  • Female
  • Flavonoids* / chemical synthesis
  • Flavonoids* / chemistry
  • Flavonoids* / pharmacology
  • Humans
  • Inhibitory Concentration 50
  • Molecular Docking Simulation
  • Molecular Dynamics Simulation
  • Thermodynamics

Substances

  • Aromatase Inhibitors
  • Flavonoids
  • Estrogen Receptor alpha
  • Aromatase