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Published on: November 11, 2022
Structure-Activity Relationship and Voltage Dependence for the Drug-Drug Interaction between Amiodarone Analogs and
Jixin Wang1, Haoyu Zeng2, Grace Dong2
1Safety and Exploratory Pharmacology (J.W., H.Z., A.L.) and Discovery Chemistry (G.D., S.W., J.M.), Merck Research Laboratories, Merck & Co., Inc., West Point, Pennsylvania jixin_wang@merck.com.
Abstract:
The drug-drug interaction (DDI) between amiodarone (AMIO) and sofosbuvir (SOF), a direct-acting hepatitis-C NS5B nucleotide polymerase inhibitor, has been associated with severe bradyarrhythmia in patients. Recent cryo-EM data has revealed that this DDI occurs at the α-subunit of L-type Cav channels, with AMIO binding at the fenestration site and SOF [or MSD nucleotide inhibitor #1 (MNI-1): analog of SOF] binding at the central cavity of the conductance pathway. In this study, we investigated the DDI between 21 AMIO analogs, including dronedarone (DRON) and MNI-1 (or SOF) in human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) and hCav1.2 models. Our findings indicate that among the tested AMIO analogs in hiPSC-CMs at clinically relevant concentrations, only three analogs (AA-9, AA-10, and AA-17) were able to effectively substitute for AMIO in this DDI with 1 µM MNI-1. This highlights the importance of the diethyl amino group of AMIO for interacting with MNI-1. In the hCav1.2 model, desethylamiodarone (AA-12) demonstrated synergy with 90 µM MNI-1, while three other analogs with modifications to the position of the diethyl amino group or removal of iodo groups showed weaker synergy with 90 µM MNI-1. Interestingly, DRON did not exhibit any interaction with 270 µM SOF or 90 µM MNI-1, suggesting that it could safely replace AMIO in patients requiring SOF treatment, other clinically relevant differences considered. Overall, our functional data align with the cryo-EM data, highlighting that this DDI is dependent on the structure of AMIO and cardiomyocyte resting membrane potential. SIGNIFICANCE STATEMENT: Our findings point to specific residues in the AMIO molecule playing a critical role in the DDI between AMIO and MNI-1 (SOF analog), confirming cryo-EM results. Applied at clinically relevant AMIO's concentrations or projected MNI-1's concentrations at the resting potentials mimicking the sinoatrial node, this DDI significantly slowed down or completely inhibited the beating of hiPSC-CMs. Finally, these in vitro results support the safe replacement of AMIO (Cordarone) with DRON (Multaq) for patients requiring SOF treatment, other clinical caveats considered.
Insights
Drug interactions between amiodarone (AMIO) and sofosbuvir (SOF) can cause severe heart rhythm issues. This study found dronedarone (DRON) may safely replace AMIO when used with SOF, based on molecular interactions and cardiomyocyte models.
Area of Science:
- Cardiovascular Pharmacology
- Drug Discovery and Development
- Molecular Cardiology
Background:
- Drug-drug interactions (DDIs) between amiodarone (AMIO) and sofosbuvir (SOF) are linked to severe bradyarrhythmia.
- Cryo-EM studies identified the α-subunit of L-type Cav channels as the interaction site for AMIO and SOF.
Purpose of the Study:
- To investigate the DDI between AMIO analogs and MNI-1 (an SOF analog) in human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) and hCav1.2 models.
- To evaluate the potential of dronedarone (DRON) as a safer alternative to AMIO in patients treated with SOF.
Main Methods:
- Screened 21 AMIO analogs for DDI with MNI-1 in hiPSC-CMs and hCav1.2 models.
- Utilized clinically relevant concentrations and cryo-EM structural data to guide investigations.
- Assessed effects on cardiomyocyte beating and ion channel function.
Main Results:
- Only three AMIO analogs (AA-9, AA-10, AA-17) substituted for AMIO in the DDI with MNI-1 in hiPSC-CMs.
- Desethylamiodarone (AA-12) showed synergy with MNI-1 in the hCav1.2 model.
- Dronedarone (DRON) showed no interaction with SOF or MNI-1, suggesting it may be a safe alternative.
Conclusions:
- The DDI is dependent on AMIO's structure, particularly the diethyl amino group, and cardiomyocyte resting membrane potential.
- In vitro results support the potential for safe replacement of AMIO with DRON for patients requiring SOF treatment, pending further clinical evaluation.
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