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Updated: Oct 14, 2025

Functional Characterization of Endogenously Expressed Human RYR1 Variants
Published on: June 9, 2021
Clinical and Functional Characterization of Ryanodine Receptor 2 Variants Implicated in Calcium-Release Deficiency
Thomas M Roston1,2, Jinhong Wei3, Wenting Guo3
1Division of Cardiology, Department of Pediatrics, University of British Columbia, Vancouver, British Columbia, Canada.
Importance:
Calcium-release deficiency syndrome (CRDS), which is caused by loss-of-function variants in cardiac ryanodine receptor 2 (RyR2), is an emerging cause of ventricular fibrillation. However, the lack of complex polymorphic/bidirectional ventricular tachyarrhythmias during exercise stress testing (EST) may distinguish it from catecholaminergic polymorphic ventricular tachycardia (CPVT). Recently, in the first clinical series describing the condition, mouse and human studies showed that the long-burst, long-pause, short-coupled ventricular extra stimulus (LBLPS) electrophysiology protocol reliably induced CRDS ventricular arrhythmias. Data from larger populations with CRDS and its associated spectrum of disease are lacking.
Objective:
To further insight into CRDS through international collaboration.
Design, Setting, And Participants:
In this multicenter observational cohort study, probands with unexplained life-threatening arrhythmic events and an ultrarare RyR2 variant were identified. Variants were expressed in HEK293 cells and subjected to caffeine stimulation to determine their functional impact. Data were collected from September 1, 2012, to March 6, 2021, and analyzed from August 9, 2015, to March 6, 2021.
Main Outcomes And Measures:
The functional association of RyR2 variants found in putative cases of CRDS and the associated clinical phenotype(s).
Results:
Of 10 RyR2 variants found in 10 probands, 6 were loss-of-function, consistent with CRDS (p.E4451del, p.F4499C, p.V4606E, p.R4608Q, p.R4608W, and p.Q2275H) (in 4 [67%] male and 2 [33%] female probands; median age at presentation, 22 [IQR, 8-34] years). In 5 probands with a documented trigger, 3 were catecholamine driven. During EST, 3 probands with CRDS had no arrhythmias, 1 had a monomorphic couplet, and 2 could not undergo EST (deceased). Relatives of the decedents carrying the RyR2 variant did not have EST results consistent with CPVT. After screening 3 families, 13 relatives were diagnosed with CRDS, including 3 with previous arrhythmic events (23%). None had complex ventricular tachyarrhythmias during EST. Among the 19 confirmed cases with CRDS, 10 had at least 1 life-threatening event at presentation and/or during a median follow-up of 7 (IQR, 6-18) years. Two of the 3 device-detected ventricular fibrillation episodes were induced by a spontaneous LBLPS-like sequence. β-Blockers were used in 16 of 17 surviving patients (94%). Three of 16 individuals who were reportedly adherent to β-blocker therapy (19%) had breakthrough events.
Conclusions And Relevance:
The results of this study suggest that calcium-release deficiency syndrome due to RyR2 loss-of-function variants mechanistically and phenotypically differs from CPVT. Ventricular fibrillation may be precipitated by a spontaneous LBLPS-like sequence of ectopy; however, CRDS remains difficult to recognize clinically. These data highlight the need for better diagnostic tools and treatments for this emerging condition.
Insights
Calcium-release deficiency syndrome (CRDS) differs from CPVT, with arrhythmias potentially triggered by specific electrical sequences. Early identification and treatment are crucial for this emerging condition.
Area of Science:
- Cardiology
- Genetics
- Electrophysiology
Background:
- Calcium-release deficiency syndrome (CRDS) is an emerging cause of ventricular fibrillation, linked to cardiac ryanodine receptor 2 (RyR2) loss-of-function variants.
- Distinguishing CRDS from catecholaminergic polymorphic ventricular tachycardia (CPVT) is challenging due to differing arrhythmia patterns during exercise stress testing (EST).
Purpose of the Study:
- To investigate the functional impact of RyR2 variants in patients with unexplained life-threatening arrhythmic events.
- To elucidate the clinical phenotype and electrophysiological characteristics of CRDS through international collaboration.
Main Methods:
- A multicenter observational cohort study identified probands with unexplained life-threatening arrhythmic events and rare RyR2 variants.
- RyR2 variants were functionally assessed in HEK293 cells with caffeine stimulation.
- Clinical data, including EST and family screening, were collected and analyzed.
Main Results:
- Six of ten identified RyR2 variants exhibited loss-of-function, consistent with CRDS.
- CRDS patients showed varied responses to EST, with some exhibiting no arrhythmias or only monomorphic couplets.
- Ventricular fibrillation episodes were occasionally induced by a long-burst, long-pause, short-coupled ventricular extra stimulus (LBLPS)-like sequence.
Conclusions:
- CRDS, caused by RyR2 loss-of-function variants, presents distinct mechanistic and phenotypic features compared to CPVT.
- The condition remains clinically challenging to diagnose, underscoring the need for improved diagnostic tools and therapeutic strategies.
- Specific electrophysiological sequences may precipitate ventricular fibrillation in CRDS patients.
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