3-Chlorodiphenylamine activates cardiac troponin by a mechanism distinct from bepridil or TFP
Svetlana B Tikunova1, Andres Cuesta2, Morgan Price2
1Department of Physiology and Cell Biology, The Ohio State University, Columbus, OH tikunova.1@osu.edu.
Abstract:
Despite extensive efforts spanning multiple decades, the development of highly effective Ca2+ sensitizers for the heart remains an elusive goal. Existing Ca2+ sensitizers have other targets in addition to cardiac troponin (cTn), which can lead to adverse side effects, such as hypotension or arrhythmias. Thus, there is a need to design Ca2+-sensitizing drugs with higher affinity and selectivity for cTn. Previously, we determined that many compounds based on diphenylamine (DPA) were able to bind to a cTnC-cTnI chimera with moderate affinity (Kd ∼10-120 µM). Of these compounds, 3-chlorodiphenylamine (3-Cl-DPA) bound most tightly (Kd of 10 µM). Here, we investigate 3-Cl-DPA further and find that it increases the Ca2+ sensitivity of force development in skinned cardiac muscle. Using NMR, we show that, like the known Ca2+ sensitizers, trifluoperazine (TFP) and bepridil, 3-Cl-DPA is able to bind to the isolated N-terminal domain (N-domain) of cTnC (Kd of 6 µM). However, while the bulky molecules of TFP and bepridil stabilize the open state of the N-domain of cTnC, the small and flexible 3-Cl-DPA molecule is able to bind without stabilizing this open state. Thus, unlike TFP, which drastically slows the rate of Ca2+ dissociation from the N-domain of isolated cTnC in a dose-dependent manner, 3-Cl-DPA has no effect on the rate of Ca2+ dissociation. On the other hand, the affinity of 3-Cl-DPA for a cTnC-TnI chimera is at least an order of magnitude higher than that of TFP or bepridil, likely because 3-Cl-DPA is less disruptive of cTnI binding to cTnC. Therefore, 3-Cl-DPA has a bigger effect on the rate of Ca2+ dissociation from the entire cTn complex than TFP and bepridil. Our data suggest that 3-Cl-DPA activates the cTn complex via a unique mechanism and could be a suitable scaffold for the development of novel treatments for systolic heart failure.
Insights
New diphenylamine compounds show promise as cardiac calcium sensitizers. 3-chlorodiphenylamine selectively targets cardiac troponin, offering a potential treatment for heart failure with fewer side effects.
Area of Science:
- Cardiovascular pharmacology
- Molecular cardiology
- Drug discovery
Background:
- Developing effective cardiac calcium (Ca2+) sensitizers is challenging due to off-target effects of existing drugs.
- Cardiac troponin (cTn) is the primary target for Ca2+ sensitization in heart muscle.
- Previous studies identified diphenylamine (DPA) derivatives binding to a cTnC-cTnI chimera.
Purpose of the Study:
- To investigate 3-chlorodiphenylamine (3-Cl-DPA) as a selective Ca2+ sensitizer for cardiac troponin.
- To elucidate the mechanism of action of 3-Cl-DPA on the cardiac troponin complex.
- To assess the potential of 3-Cl-DPA as a scaffold for novel heart failure therapeutics.
Main Methods:
- Binding affinity studies using a cTnC-cTnI chimera.
- Assessment of Ca2+ sensitivity of force development in skinned cardiac muscle.
- Nuclear Magnetic Resonance (NMR) spectroscopy to study binding to isolated cTnC N-domain and Ca2+ dissociation rates.
Main Results:
- 3-Cl-DPA demonstrated potent binding (Kd = 10 µM) to the cTnC-cTnI chimera, enhancing cardiac muscle force.
- NMR confirmed 3-Cl-DPA binding to the cTnC N-domain (Kd = 6 µM) without stabilizing its open state.
- Unlike other sensitizers, 3-Cl-DPA did not affect Ca2+ dissociation from isolated cTnC but showed higher affinity for the cTn complex, suggesting a unique activation mechanism.
Conclusions:
- 3-Cl-DPA selectively targets the cardiac troponin complex with high affinity.
- Its unique binding mechanism offers a novel approach to cardiac Ca2+ sensitization.
- 3-Cl-DPA represents a promising scaffold for developing new treatments for systolic heart failure.
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