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Published on: August 17, 2019
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.
Abstract:
Anthracycline antibiotics (ANT) are among the most widely used anticancer drugs. Unfortunately, their use is limited due to the development of drug resistance and cardiotoxicity. ANT metabolism, performed mainly by two enzymes-aldo-keto reductase 1C3 (AKR1C3) and carbonyl reductase 1 (CBR1)-is one of the proposed mechanisms generated by the described effects. In this study, we evaluated the CBR1 inhibitory properties of ASP9521, a compound already known as potent AKR1C3 inhibitor. First, we assessed the possibility of ASP9521 binding to the CBR1 catalytic site using molecular docking and molecular dynamics. The research revealed a potential binding mode of ASP9521. Moderate inhibitory activity against CBR1 was observed in studies with recombinant enzymes. Finally, we examined whether ASP9521 can improve the cytotoxic activity of daunorubicin against human lung carcinoma cell line A549 and assessed the cardioprotective properties of ASP9521 in a rat cardiomyocytes model (H9c2) against doxorubicin- and daunorubicin-induced toxicity. The addition of ASP9521 ameliorated the cytotoxic activity of daunorubicin and protected rat cardiomyocytes from the cytotoxic effect of both applied drugs. Considering the favorable bioavailability and safety profile of ASP9521, the obtained results encourage further research. Inhibition of both AKR1C3 and CBR1 may be a promising method of overcoming ANT resistance and cardiotoxicity.
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.
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