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Mechanistic diversity within RLC-dependent myosin ATPase inhibitors differentiates EDG-7500, a diastolic-selective cardiac sarcomere modulator
Craig A. Emter, Marcus Henze, Mike DuVall, Sarah Lehman, Lindsey Lee, Ben Barthel, Natalie A. Hawryluk, Molly Madden, Yangsong Wu, Amy Perry, Martin Beyer, Eric Wei, Cassady Rupert, Steve Roof, Angela Peter, Emily DiNatale, Sara Cantrell, Jessica Tolley, Stephen Schlachter, Jolanda van der Velden, Michelle Michels, Christine Seidman, Weikang Ma, Leslie Leinwand, Stuart Campbell, Julien Ochala, David Bluemke, Darla Tharp, Jonathan Seidman, Carlos L. del Rio, Marc Semigran, Marc Evanchik, Kevin Koch, Alan Russell
Craig A. Emter, Marcus Henze, Mike DuVall, Sarah Lehman, Lindsey Lee, Ben Barthel, Natalie A. Hawryluk, Molly Madden, Yangsong Wu, Amy Perry, Martin Beyer, Eric Wei, Cassady Rupert, Steve Roof, Angela Peter, Emily DiNatale, Sara Cantrell, Jessica Tolley, Stephen Schlachter, Jolanda van der Velden, Michelle Michels, Christine Seidman, Weikang Ma, Leslie Leinwand, Stuart Campbell, Julien Ochala, David Bluemke, Darla Tharp, Jonathan Seidman, Carlos L. del Rio, Marc Semigran, Marc Evanchik, Kevin Koch, Alan Russell
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Research Article Cardiology Muscle biology

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

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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.

Authors

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

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Figure 2

Functional comparisons between EDG-7500 and EDG-7499 highlight a phenotype preferentially promoting relaxation and preserving cardiac reserve without impacting systolic function in EDG-7500 treated tissue and animals.

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Functional comparisons between EDG-7500 and EDG-7499 highlight a phenoty...
(A) EDG-7500 decreases force to a lesser extent in porcine LV skinned fibers (n = 5–26). (B) Calcium dependence of tension was significantly reduced in EDG-7500–treated fibers with inhibition observed at low levels but not maximally activated Ca2+ in porcine LV skinned fibers. (C) EDG-7500 activates relaxation kinetics at lower compound dose levels (1 μM; *P < 0.05 versus 0.01 μM kREL dose) prior to decreasing activation (10 μM; †P < 0.05 versus 0.01 μM kACT dose) in porcine LV myofibrils. (D) EDG-7499 decreased activation kinetics (1 μM; †P < 0.05 versus 0.01 μM kACT dose) prior to increasing relaxation (3 μM; *P < 0.05 versus 0.01 μM kREL dose) in porcine LV myofibrils. (E and F) Cardiac myosin length-dependent activation (LDA) indicated porcine LV myofibrils treated with EDG-7500 recovered 44% of an initial force inhibition of ~40% (E, n = 8). EDG-7499 did not alter LDA (F, n = 6). (G and H) EDG-7500 and EDG-7499 significantly increased I1,1/I1,0 at SL 2.1 (illustrative insets describe myosin head movement) in porcine LV myocardial strips. EDG-7500 preserved a significant increase in I1,1/I1,0 at SL 2.3 (G). Myosin head recruitment was decreased in response to stretch after EDG-7499 treatment (H). (I) The PK/PD relationship for FS% was significantly shifted to the right in EDG-7500–treated Sprague Dawley rats. (J) EDG-7500 preserves normal cardiac reserve in response to β-adrenergic agonism compared with Sprague Dawley rats treated with EDG-7499 (*P < 0.05 CON and EDG-7499 versus EDG-7500; #P < 0.05 CON versus EDG-7499 and EDG-7500; †P < 0.05 EDG-7500 versus EDG-7499). *P < 0.05, regression analysis for A, B, and I; repeated-measures ANOVA for C–H and J; 1-way ANOVA used for specific pCa assessments presented in B.

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