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Updated: Oct 30, 2025

Genetic and Biochemical Approaches for In Vivo and In Vitro Assessment of Protein Oligomerization: The Ryanodine Receptor Case Study
Published on: July 27, 2016
Phosphorylation-Dependent Interactome of Ryanodine Receptor Type 2 in the Heart
David Y Chiang1, Satadru Lahiri2,3, Guoliang Wang2
1Cardiovascular Division, Department of Medicine, Harvard Medical School, Brigham and Women's Hospital, Boston, MA 02115, USA.
Abstract:
Hyperphosphorylation of the calcium release channel/ryanodine receptor type 2 (RyR2) at serine 2814 (S2814) is associated with multiple cardiac diseases including atrial fibrillation and heart failure. Despite recent advances, the molecular mechanisms driving pathological changes associated with RyR2 S2814 phosphorylation are still not well understood. Methods: Using affinity-purification coupled to mass spectrometry (AP-MS), we investigated the RyR2 interactome in ventricles from wild-type (WT) mice and two S2814 knock-in mutants: the unphosphorylated alanine mutant (S2814A) and hyperphosphorylated mimic aspartic acid mutant (S2814D). Western blots were used for validation. Results: In WT mouse ventricular lysates, we identified 22 proteins which were enriched with RyR2 pull-down relative to both IgG control and no antibody (beads-only) pull-downs. Parallel AP-MS using WT, S2814A, and S2814D mouse ventricles identified 72 proteins, with 20 being high confidence RyR2 interactors. Of these, 14 had an increase in their binding to RyR2 S2814A but a decrease in their binding to RyR2 S2814D. We independently validated three protein hits, Idh3b, Aifm1, and Cpt1b, as RyR2 interactors by western blots and showed that Aifm1 and Idh3b had significantly decreased binding to RyR2 S2814D compared to WT and S2814A, consistent with MS findings. Conclusion: By applying state-of-the-art proteomic approaches, we discovered a number of novel RyR2 interactors in the mouse heart. In addition, we found and defined specific alterations in the RyR2 interactome that were dependent on the phosphorylation status of RyR2 at S2814. These findings yield mechanistic insights into RyR2 regulation which may guide future drug designs.
Insights
Altered phosphorylation of the calcium release channel/ryanodine receptor type 2 (RyR2) at serine 2814 impacts cardiac function. This study identified novel RyR2 interactors and revealed how S2814 phosphorylation affects RyR2 binding partners.
Area of Science:
- Cardiology
- Molecular Biology
- Proteomics
Background:
- Hyperphosphorylation of RyR2 at S2814 is linked to cardiac diseases like atrial fibrillation and heart failure.
- The precise molecular mechanisms underlying RyR2 S2814 phosphorylation's pathological effects remain unclear.
Purpose of the Study:
- To investigate the RyR2 interactome in mouse hearts.
- To determine how S2814 phosphorylation influences RyR2 binding partners.
Main Methods:
- Affinity-purification coupled to mass spectrometry (AP-MS) was used to analyze RyR2 interactors.
- Experiments utilized wild-type (WT) mice and S2814 alanine (S2814A) and aspartic acid (S2814D) knock-in mutants.
- Western blots validated identified protein interactions.
Main Results:
- 20 high-confidence RyR2 interactors were identified in mouse ventricular lysates.
- 14 interactors showed increased binding to RyR2 S2814A and decreased binding to RyR2 S2814D.
- Binding of Aifm1 and Idh3b to RyR2 was significantly decreased in the S2814D mutant compared to WT and S2814A.
Conclusions:
- Novel RyR2 interactors were discovered in the mouse heart using advanced proteomic techniques.
- Specific alterations in the RyR2 interactome were dependent on RyR2 S2814 phosphorylation status.
- Findings provide mechanistic insights into RyR2 regulation for potential therapeutic strategies.
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