Ryanodine receptors (RyRs) are intracellular membrane channels playing key roles in many Ca2+ signaling pathways and, as such, are emerging novel therapeutic and insecticidal targets. RyRs are so named because they bind the plant alkaloid ryanodine with high affinity and although it is established that ryanodine produces profound changes in all aspects of function, our understanding of the mechanisms underlying altered gating is minimal. We address this issue using detailed single-channel gating analysis, mathematical modeling, and energetic evaluation of state transitions establishing that, with ryanodine bound, the RyR pore adopts an extremely stable open conformation. We demonstrate that stability of this state is influenced by interacti...
Ryanodine receptors are homotetrameric intracellular calcium release channels. The efficiency of the...
Ryanodine receptors are homotetrameric intracellular calcium release channels. The efficiency of the...
AbstractThe free [Ca2+] in endoplasmic/sarcoplasmic reticulum Ca2+ stores regulates excitability of ...
Ryanodine receptors (RyRs) are intracellular membrane channels playing key roles in many Ca2+ signal...
Ryanodine receptors (RyRs) are intracellular membrane chan-nels playing key roles in many Ca21 signa...
In earlier studies we showed that point mutations introduced into the proposed pore-forming segment,...
AbstractIn earlier studies we showed that point mutations introduced into the proposed pore-forming ...
The intracellular Ca2+-release channel referred to as the “ryanodine receptor (RyR)” is a key factor...
1. The ryanodine receptor (RyR) is the Ca2+ release channel in the sarcoplamic reticulum of skeletal...
Cardiac muscle contraction, triggered by the action potential, is mediated by the release of Ca2+ fr...
Ryanodine receptor (RyR) Ca2+ release channels undergo a conformational change between the open and ...
Biological ion channels are proteins that passively conduct ions across membranes that are otherwise...
Ryanodine receptor(RyR), a Ca2+ release channel, plays an essential role in skeletal and cardiac mus...
Ryanodine Receptors (RyR) are large ion channels that are responsible for the release of Ca²⁺ from t...
Ryanodine receptor (RyR) ion channels are essential for skeletal and cardiac muscle function. Their ...
Ryanodine receptors are homotetrameric intracellular calcium release channels. The efficiency of the...
Ryanodine receptors are homotetrameric intracellular calcium release channels. The efficiency of the...
AbstractThe free [Ca2+] in endoplasmic/sarcoplasmic reticulum Ca2+ stores regulates excitability of ...
Ryanodine receptors (RyRs) are intracellular membrane channels playing key roles in many Ca2+ signal...
Ryanodine receptors (RyRs) are intracellular membrane chan-nels playing key roles in many Ca21 signa...
In earlier studies we showed that point mutations introduced into the proposed pore-forming segment,...
AbstractIn earlier studies we showed that point mutations introduced into the proposed pore-forming ...
The intracellular Ca2+-release channel referred to as the “ryanodine receptor (RyR)” is a key factor...
1. The ryanodine receptor (RyR) is the Ca2+ release channel in the sarcoplamic reticulum of skeletal...
Cardiac muscle contraction, triggered by the action potential, is mediated by the release of Ca2+ fr...
Ryanodine receptor (RyR) Ca2+ release channels undergo a conformational change between the open and ...
Biological ion channels are proteins that passively conduct ions across membranes that are otherwise...
Ryanodine receptor(RyR), a Ca2+ release channel, plays an essential role in skeletal and cardiac mus...
Ryanodine Receptors (RyR) are large ion channels that are responsible for the release of Ca²⁺ from t...
Ryanodine receptor (RyR) ion channels are essential for skeletal and cardiac muscle function. Their ...
Ryanodine receptors are homotetrameric intracellular calcium release channels. The efficiency of the...
Ryanodine receptors are homotetrameric intracellular calcium release channels. The efficiency of the...
AbstractThe free [Ca2+] in endoplasmic/sarcoplasmic reticulum Ca2+ stores regulates excitability of ...