EMD-42764
Structure of PKA phosphorylated human RyR2-R420W in the primed state in the presence of calcium
EMD-42764
Composite mapSingle-particle
3.52 Å
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Map released: 22/11/2023
Last modified: 06/11/2024
Sample Organism:
Homo sapiens
Sample: Complex of RyR2-R420W and Calstabin-2
Fitted models: 8uxh (Avg. Q-score: 0.366)
Deposition Authors: Miotto MC
,
Marks AR
Sample: Complex of RyR2-R420W and Calstabin-2
Fitted models: 8uxh (Avg. Q-score: 0.366)
Deposition Authors: Miotto MC
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Structural basis for ryanodine receptor type 2 leak in heart failure and arrhythmogenic disorders.
Miotto MC
,
Reiken S,
Wronska A
,
Yuan Q,
Dridi H
,
Liu Y,
Weninger G
,
Tchagou C,
Marks AR
(2024) Nat Commun , 15 , 8080 - 8080
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(2024) Nat Commun , 15 , 8080 - 8080
Abstract:
Heart failure, the leading cause of mortality and morbidity in the developed world, is characterized by cardiac ryanodine receptor 2 channels that are hyperphosphorylated, oxidized, and depleted of the stabilizing subunit calstabin-2. This results in a diastolic sarcoplasmic reticulum Ca2+ leak that impairs cardiac contractility and triggers arrhythmias. Genetic mutations in ryanodine receptor 2 can also cause Ca2+ leak, leading to arrhythmias and sudden cardiac death. Here, we solved the cryogenic electron microscopy structures of ryanodine receptor 2 variants linked either to heart failure or inherited sudden cardiac death. All are in the primed state, part way between closed and open. Binding of Rycal drugs to ryanodine receptor 2 channels reverts the primed state back towards the closed state, decreasing Ca2+ leak, improving cardiac function, and preventing arrhythmias. We propose a structural-physiological mechanism whereby the ryanodine receptor 2 channel primed state underlies the arrhythmias in heart failure and arrhythmogenic disorders.
Heart failure, the leading cause of mortality and morbidity in the developed world, is characterized by cardiac ryanodine receptor 2 channels that are hyperphosphorylated, oxidized, and depleted of the stabilizing subunit calstabin-2. This results in a diastolic sarcoplasmic reticulum Ca2+ leak that impairs cardiac contractility and triggers arrhythmias. Genetic mutations in ryanodine receptor 2 can also cause Ca2+ leak, leading to arrhythmias and sudden cardiac death. Here, we solved the cryogenic electron microscopy structures of ryanodine receptor 2 variants linked either to heart failure or inherited sudden cardiac death. All are in the primed state, part way between closed and open. Binding of Rycal drugs to ryanodine receptor 2 channels reverts the primed state back towards the closed state, decreasing Ca2+ leak, improving cardiac function, and preventing arrhythmias. We propose a structural-physiological mechanism whereby the ryanodine receptor 2 channel primed state underlies the arrhythmias in heart failure and arrhythmogenic disorders.