Mechanistic diversity within RLC-dependent myosin ATPase inhibitors differentiates EDG-7500, a diastolic-selective cardiac sarcomere modulator

Small molecules that modulate myofibril ATPase activity via the myosin regulatory light chain (RLC) display a broad spectrum of activity in their ability to enhance relaxation and slow contraction. EDG-7500 exhibits features consistent with a ‘diastolic-selective’ cardiac sarcomere modulator (d-CSM), and its ability to treat HCM was explored in engineered human tissue (EHT), human HCM cardiac strips, and an R403Q mutation swine model. In fibers, EDG-7500 preferentially inhibited myofibril ATPase activity and force at diastolic calcium levels, retained length-dependent force activation, accelerated relaxation, and exhibited a shallow, self-limiting inhibitory-exposure response to LV fractional shortening. Compared to CMIs, EDG-7500 moved myosin heads towards the thin filament and accelerated relaxation without decreasing force in mutated EHTs (R403Q). In human HCM cardiac strips, EDG-7500 did not alter myosin SRX state, but decreased Ca2 + -sensitivity of force independent of mutation. In R403Q swine, chronic EDG-7500 normalized LV filling pressure and prevented pathological cardiac remodeling while preserving normal systolic function and cardiac reserve. EDG-7500 differentiates itself from CMIs by uniquely targeting both phases of the cardiac cycle, improving ventricular relaxation while preserving systolic function. This suggests optimal diastolic efficacy can be reached without balancing systolic impairment.

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Publication Details

Journal
JCI Insight
Published
2026-09-21
DOI
https://doi.org/10.1172/jci.insight.203086
Primary Topic
Cardiomyopathy and Myosin Studies
Type
article
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article

Mechanistic diversity within RLC-dependent myosin ATPase inhibitors differentiates EDG-7500, a diastolic-selective cardiac sarcomere modulator

Carlos L. del Rio, Ben Barthel, Martin Beyer, Christine E. Seidman et al.
JCI Insight
Cardiomyopathy and Myosin Studies
article

Mechanistic diversity within RLC-dependent myosin ATPase inhibitors differentiates EDG-7500, a diastolic-selective cardiac sarcomere modulator

Carlos L. del Rio, Ben Barthel, Martin Beyer, Christine E. Seidman, Yangsong Wu, Julien Ochala, Mike Duvall, Lindsey Lee, Weikang Ma, Marc Semigran, Emily DiNatale, Eric Wei, Stuart Campbell, Craig A. Emter, Jessica Tolley, Angela Peter, Sara Cantrell, Molly Madden, Marc Evanchik, Leslie Leinwand, Sarah Lehman, Steve Roof, David Bluemke, Amy Perry, Jolanda van der Velden, Alan Russell, Stephen Schlachter, Cassady Rupert, Darla Tharp, Natalie A. Hawryluk, Kevin Koch, Jonathan Seidman, Michelle Michels, Marcus Henze
article en

Abstract

Small molecules that modulate myofibril ATPase activity via the myosin regulatory light chain (RLC) display a broad spectrum of activity in their ability to enhance relaxation and slow contraction. EDG-7500 exhibits features consistent with a ‘diastolic-selective’ cardiac sarcomere modulator (d-CSM), and its ability to treat HCM was explored in engineered human tissue (EHT), human HCM cardiac strips, and an R403Q mutation swine model. In fibers, EDG-7500 preferentially inhibited myofibril ATPase activity and force at diastolic calcium levels, retained length-dependent force activation, accelerated relaxation, and exhibited a shallow, self-limiting inhibitory-exposure response to LV fractional shortening. Compared to CMIs, EDG-7500 moved myosin heads towards the thin filament and accelerated relaxation without decreasing force in mutated EHTs (R403Q). In human HCM cardiac strips, EDG-7500 did not alter myosin SRX state, but decreased Ca2 + -sensitivity of force independent of mutation. In R403Q swine, chronic EDG-7500 normalized LV filling pressure and prevented pathological cardiac remodeling while preserving normal systolic function and cardiac reserve. EDG-7500 differentiates itself from CMIs by uniquely targeting both phases of the cardiac cycle, improving ventricular relaxation while preserving systolic function. This suggests optimal diastolic efficacy can be reached without balancing systolic impairment.

JCI InsightVol. 11(18)
University of Copenhagen (DK), University of Wisconsin–Madison (US), Harvard University (US), Universität Hamburg (DE), Illinois Institute of Technology (US), University of Colorado Boulder (US), University of Missouri Health System (US), Erasmus MC (NL), Yale University (US), University Medical Center Hamburg-Eppendorf (DE), QED Labs (US), German Centre for Cardiovascular Research (DE), Amsterdam University Medical Centers (NL), Edgewise Therapeutics (United States), University of Missouri (US), Vrije Universiteit Amsterdam (NL), Erasmus University Rotterdam (NL)
Openalex Percentile: Top 11%
Cardiomyopathy and Myosin Studies
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