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Updated: Apr 28, 2026

Transmembrane Domain Oligomerization Propensity determined by ToxR Assay
Published on: May 26, 2011
Pore dynamics and conductance of RyR1 transmembrane domain
David Shirvanyants1, Srinivas Ramachandran1, Yingwu Mei1
1Department of Biochemistry and Biophysics, School of Medicine, University of North Carolina, Chapel Hill, North Carolina.
Abstract:
Ryanodine receptors (RyR) are calcium release channels, playing a major role in the regulation of muscular contraction. Mutations in skeletal muscle RyR (RyR1) are associated with congenital diseases such as malignant hyperthermia and central core disease (CCD). The absence of high-resolution structures of RyR1 has limited our understanding of channel function and disease mechanisms at the molecular level. Previously, we have reported a hypothetical structure of the RyR1 pore-forming region, obtained by homology modeling and supported by mutational scans, electrophysiological measurements, and cryo-electron microscopy. Here, we utilize the expanded model encompassing six transmembrane helices to calculate the RyR1 pore region conductance, to analyze its structural stability, and to hypothesize the mechanism of the Ile4897 CCD-associated mutation. The calculated conductance of the wild-type RyR1 suggests that the proposed pore structure can sustain ion currents measured in single-channel experiments. We observe a stable pore structure on timescales of 0.2 μs, with multiple cations occupying the selectivity filter and cytosolic vestibule, but not the inner chamber. We further suggest that stability of the selectivity filter critically depends on the interactions between the I4897 residue and several hydrophobic residues of the neighboring subunit. Loss of these interactions in the case of polar substitution I4897T results in destabilization of the selectivity filter, a possible cause of the CCD-specific reduced Ca(2+) conductance.
Insights
Ryanodine receptors (RyR1) mutations cause muscle diseases. This study models RyR1
Area of Science:
- Molecular Biology
- Biophysics
- Structural Biology
Background:
- Ryanodine receptors (RyR) are critical calcium channels regulating muscle contraction.
- Mutations in skeletal muscle RyR1 cause congenital diseases like malignant hyperthermia and central core disease (CCD).
- Lack of high-resolution RyR1 structures hinders understanding of channel function and disease mechanisms.
Purpose of the Study:
- To calculate RyR1 pore region conductance using an expanded model.
- To analyze the structural stability of the RyR1 pore region.
- To hypothesize the mechanism of the Ile4897 mutation associated with CCD.
Main Methods:
- Utilized an expanded homology model of the RyR1 pore region (six transmembrane helices).
- Performed molecular dynamics simulations to calculate conductance and assess structural stability.
- Analyzed the impact of the Ile4897 mutation on selectivity filter stability.
Main Results:
- Calculated wild-type RyR1 conductance aligns with experimental single-channel measurements.
- The RyR1 pore structure remained stable over 0.2 μs simulations, with cations in the filter and vestibule.
- Selectivity filter stability depends on interactions involving Ile4897; the I4897T mutation destabilizes the filter.
Conclusions:
- The proposed RyR1 pore model is consistent with ion transport.
- The Ile4897 residue is crucial for selectivity filter stability.
- Destabilization of the selectivity filter by mutations like I4897T may explain reduced Ca(2+) conductance in CCD.
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