In Silico and In Vitro Assessment of Carbonyl Reductase 1 Inhibition Using ASP9521-A Potent Aldo-Keto Reductase 1C3

Marek Jamrozik1, Kamil Piska2, Adam Bucki1

  • 1Department of Medicinal Chemistry, Faculty of Pharmacy, Jagiellonian University Medical College, Medyczna 9 St, 31-008 Cracow, Poland.

Insights

ASP9521 inhibits carbonyl reductase 1 (CBR1), enhancing anticancer drug efficacy and reducing cardiotoxicity. This dual inhibition strategy shows promise for overcoming anthracycline resistance and side effects.

Area of Science:

  • Pharmacology
  • Biochemistry
  • Oncology

Background:

  • Anthracycline antibiotics (ANT) are crucial anticancer agents but face limitations due to drug resistance and cardiotoxicity.
  • Metabolism by aldo-keto reductase 1C3 (AKR1C3) and carbonyl reductase 1 (CBR1) is implicated in ANT resistance and toxicity.

Purpose of the Study:

  • To evaluate the carbonyl reductase 1 (CBR1) inhibitory properties of ASP9521, a known AKR1C3 inhibitor.
  • To assess ASP9521's potential to overcome anthracycline resistance and cardiotoxicity.

Main Methods:

  • Molecular docking and dynamics simulations to predict ASP9521 binding to CBR1.
  • In vitro assays using recombinant enzymes to determine CBR1 inhibitory activity.
  • Cell-based assays (A549 lung carcinoma) to evaluate daunorubicin potentiation.
  • Cardiomyocyte models (H9c2) to assess cardioprotective effects against doxorubicin and daunorubicin.

Main Results:

  • ASP9521 demonstrated a potential binding mode within the CBR1 catalytic site.
  • Moderate CBR1 inhibitory activity was observed for ASP9521.
  • ASP9521 enhanced the cytotoxic activity of daunorubicin against A549 cells.
  • ASP9521 protected rat cardiomyocytes from doxorubicin- and daunorubicin-induced toxicity.

Conclusions:

  • Dual inhibition of AKR1C3 and CBR1 by ASP9521 may offer a strategy to combat ANT resistance and cardiotoxicity.
  • ASP9521's favorable bioavailability and safety profile warrant further investigation for clinical application.