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Updated: Feb 3, 2026

Pull-down of Calmodulin-binding Proteins
Published on: January 23, 2012
Nuclear translocation of calmodulin in pathological cardiac hypertrophy originates from ryanodine receptor bound
Tetsuro Oda1, Takeshi Yamamoto2, Takayoshi Kato2
1Department of Medicine and Clinical Science, Division of Cardiology, Yamaguchi University Graduate School of Medicine, Ube, Yamaguchi, Japan; Department of Pharmacology, University of California, Davis, CA, United States.
Abstract:
In cardiac myocytes Calmodulin (CaM) bound to the ryanodine receptor (RyR2) constitutes a large pool of total myocyte CaM, but the CaM-RyR2 affinity is reduced in pathological conditions. Knock-in mice expressing RyR2 unable to bind CaM also developed hypertrophy and early death. However, it is unknown whether CaM released from this RyR2-bound pool participates in pathological cardiac hypertrophy. We found that angiotensin II (AngII) or phenylephrine (PE) both cause CaM to dissociate from the RyR2 and translocate to the nucleus. To test whether this nuclear CaM accumulation depends on CaM released from RyR2, we enhanced CaM-RyR2 binding affinity (with dantrolene), or caused CaM dissociation from RyR2 (using suramin). Dantrolene dramatically reduced AngII- and PE-induced nuclear CaM accumulation. Conversely, suramin enhanced nuclear CaM accumulation. This is consistent with nuclear CaM accumulation coming largely from the CaM-RyR2 pool. CaM lacks a nuclear localization signal (NLS), but G-protein coupled receptor kinase 5 (GRK5) binds CaM, has a NLS and translocates like CaM in response to AngII or PE. Suramin also promoted GRK5 nuclear import, and caused nuclear export of histone deacetylase 5 (HDAC5). Dantrolene prevented these effects. After 2-8 weeks of pressure overload (TAC) CaM binding to RyR2 was reduced, nuclear CaM and GRK5 were both elevated and there was enhanced nuclear export of HDAC5. Stress (acute AngII or TAC) causes CaM dissociation from RyR2 and translocation to the nucleus with GRK5 with parallel HDAC5 nuclear export. Thus CaM dissociation from RyR2 may be an important step in driving pathological hypertrophic gene transcription.
Insights
Stress causes Calmodulin (CaM) to detach from the RyR2 receptor in heart cells, moving to the nucleus and promoting pathological cardiac hypertrophy. This dissociation is a key step in disease development.
Area of Science:
- Cardiology
- Molecular Biology
- Cell Biology
Background:
- Calmodulin (CaM) bound to the ryanodine receptor (RyR2) is a major CaM pool in cardiac myocytes.
- Reduced CaM-RyR2 affinity is linked to pathological conditions.
- The role of CaM released from RyR2 in cardiac hypertrophy is unclear.
Purpose of the Study:
- To investigate if CaM released from RyR2 contributes to pathological cardiac hypertrophy.
- To determine the mechanism of CaM nuclear translocation during cardiac stress.
Main Methods:
- Utilized knock-in mouse models with altered CaM-RyR2 binding.
- Administered pharmacological agents (dantrolene, suramin) to modulate CaM-RyR2 interaction.
- Induced cardiac stress via angiotensin II, phenylephrine, and transverse aortic constriction (TAC).
- Assessed CaM, GRK5, and HDAC5 localization using cellular and molecular techniques.
Main Results:
- Angiotensin II and phenylephrine induced CaM dissociation from RyR2 and nuclear translocation.
- Dantrolene inhibited, while suramin enhanced, AngII/PE-induced nuclear CaM accumulation.
- Nuclear CaM accumulation correlated with CaM release from RyR2.
- Stress (AngII, TAC) led to reduced CaM-RyR2 binding, increased nuclear CaM and GRK5, and HDAC5 nuclear export.
- GRK5, which binds CaM and has a nuclear localization signal, translocated with CaM.
Conclusions:
- CaM dissociation from RyR2 is a significant source of nuclear CaM during cardiac stress.
- Nuclear CaM, along with GRK5, promotes hypertrophic gene transcription via HDAC5 export.
- CaM dissociation from RyR2 is a critical step in the pathogenesis of cardiac hypertrophy.
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