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Updated: Jul 15, 2025

FRET Microscopy for Real-time Monitoring of Signaling Events in Live Cells Using Unimolecular Biosensors
Published on: August 20, 2012
RyR2 Binding of an Antiarrhythmic Cyclic Depsipeptide Mapped Using Confocal Fluorescence Lifetime Detection of FRET
Jaroslava Šeflová1, Jacob A Schwarz2, Abigail N Smith3
1Department of Cell and Molecular Physiology, Loyola University Chicago, Chicago, Illinois 60153, United States.
Abstract:
Hyperactivity of cardiac sarcoplasmic reticulum (SR) ryanodine receptor (RyR2) Ca2+-release channels contributes to heart failure and arrhythmias. Reducing the RyR2 activity, particularly during cardiac relaxation (diastole), is a desirable therapeutic goal. We previously reported that the unnatural enantiomer (ent) of an insect-RyR activator, verticilide, inhibits porcine and mouse RyR2 at diastolic (nanomolar) Ca2+ and has in vivo efficacy against atrial and ventricular arrhythmia. To determine the ent-verticilide structural mode of action on RyR2 and guide its further development via medicinal chemistry structure-activity relationship studies, here, we used fluorescence lifetime (FLT)-measurements of Förster resonance energy transfer (FRET) in HEK293 cells expressing human RyR2. For these studies, we used an RyR-specific FRET molecular-toolkit and computational methods for trilateration (i.e., using distances to locate a point of interest). Multiexponential analysis of FLT-FRET measurements between four donor-labeled FKBP12.6 variants and acceptor-labeled ent-verticilide yielded distance relationships placing the acceptor probe at two candidate loci within the RyR2 cryo-EM map. One locus is within the Ry12 domain (at the corner periphery of the RyR2 tetrameric complex). The other locus is sandwiched at the interface between helical domain 1 and the SPRY3 domain. These findings document RyR2-target engagement by ent-verticilide, reveal new insight into the mechanism of action of this new class of RyR2-targeting drug candidate, and can serve as input in future computational determinations of the ent-verticilide binding site on RyR2 that will inform structure-activity studies for lead optimization.
Insights
The unnatural enantiomer of verticilide, ent-verticilide, inhibits cardiac ryanodine receptor 2 (RyR2) channels, offering a potential therapeutic strategy for heart failure and arrhythmias. This study reveals ent-verticilide
Area of Science:
- Cardiovascular Physiology
- Molecular Pharmacology
- Biophysics
Background:
- Cardiac sarcoplasmic reticulum (SR) ryanodine receptor 2 (RyR2) hyperactivity is implicated in heart failure and arrhythmias.
- Inhibition of RyR2, especially during diastole, is a therapeutic target.
- The insect RyR activator enantiomer, ent-verticilide, was previously shown to inhibit RyR2 and reduce arrhythmias.
Purpose of the Study:
- To elucidate the structural mechanism of ent-verticilide action on human RyR2.
- To guide medicinal chemistry efforts for developing novel RyR2-targeting drugs.
- To identify potential binding sites of ent-verticilide on RyR2.
Main Methods:
- Utilized Förster resonance energy transfer (FRET) with fluorescence lifetime (FLT) measurements in HEK293 cells expressing human RyR2.
- Employed an RyR-specific FRET molecular toolkit and computational trilateration.
- Analyzed FLT-FRET data from donor-labeled FKBP12.6 variants and acceptor-labeled ent-verticilide.
Main Results:
- Identified two candidate loci for ent-verticilide binding within the RyR2 cryo-electron microscopy (cryo-EM) map.
- One locus is in the Ry12 domain periphery, and the other is at the interface of helical domain 1 and the SPRY3 domain.
- Confirmed RyR2 target engagement by ent-verticilide.
Conclusions:
- The findings provide new insights into the mechanism of action of ent-verticilide, a novel RyR2-targeting drug candidate.
- The identified binding sites serve as crucial input for future computational studies to determine the precise binding site.
- This research supports structure-activity relationship studies for optimizing ent-verticilide and related compounds for therapeutic development.

