Calmodulin (CaM) serves as one of the key cellular Ca2+ sensors with >300 targets and a highly conserved structure since its appearance in early eukaryogenesis. Three distinct CaM genes (CALM1, CALM2, and CALM3) encode one identical CaM protein in mammals. This low tolerance for structural changes highlights that CaM mutations are likely not well tolerated and therefore cause disease in humans. The first calmodulinopathies reported were catecholaminergic polymorphic ventricular tachycardia (CPVT) and a severe, early-onset cardiac arrhythmia syndrome with long-QT syndrome (LQTS). This led to recognition that CaM-modulated cardiac Cav1.2 L-type Ca2+ channels and RYR2 ryanodine receptors are key targets mediating the severe cardiac phenotype of CaM mutants . In this issue of the JGP, Hussey et al. (https://doi.org/10.1085/jgp.202413734) addressed the important question of whether dysregulation of voltage-gated Ca2+ channels in the brain could contribute to neurological/neurodevelopmental symptoms that are also associated with calmodulinopathies.

The International Calmodulinopathy Registry provides valuable information on clinical and genetic data from subjects with CALM variants. To date, 140 subjects have been enrolled, including 97 index cases and 43 family members (Crotti et al., 2023) with 59 distinct amino acid substitutions in the three CALM genes. The major phenotypes are long-QT syndrome (LQTS) (53%), catecholaminergic polymorphic ventricular tachycardia (CPVT) (26%), and LQTS/CPVT overlap (7%). Adrenergic stimulation was the major trigger of cardiac events in the entire population, irrespective of the phenotype. Interestingly, 20 subjects also had a primary neurological/neurodevelopmental disorder. This raises the important question of additional extracardiac manifestations of calmodulinopathies.

Pathogenic mutations are primarily located in the Ca2+-binding EF-hand motifs III and IV, comprising the C-terminal lobe of calmodulin (CaM). The C-lobe binds Ca2+ with a higher affinity than the N-lobe. Both lobes can mediate different effects on a target protein, as also found for Ca2+-channel modulation (Hussey et al., 2023, see below).

Over the last ∼15 years (Nyegaard et al., 2012; Crotti et al., 2013), a mechanistic genotype–phenotype correlation has emerged. CALM variants associated with LQTS prolong the cardiac action potential in transfected or human iPSC-derived cardiomyocytes, which prolongs the QT interval (Limpitikul et al., 2017; Yamamoto et al., 2017). This is explained by the impaired inactivation of Cav1.2. Cav1.2 is the predominant L-type Ca2+ channel in the working myocardium (Zamponi et al., 2015) and triggers Ca2+-induced Ca2+-release of adjacent RYR2 ryanodine receptors within the same nanodomain in the junctional sarcoplasmic reticulum (reviewed by Dixon, 2021). The C-lobe of CaM enables an essential Ca2+-dependent autoinhibitory feedback mechanism of Cav1.2, Ca2+-dependent inactivation (CDI): When action potential-triggered Cav1.2 Ca2+ entry and subsequent SR Ca2+ release increase nanodomain Ca2+ (reviewed by Bers and Perez-Reyes, 1999), Ca2+ occupies apo-CaM, which is pre-associated with the channel at resting free Ca2+ concentrations by binding to an IQ motif within the channel’s C terminus (Limpitikul and Dick, 2025). Ca2+/CaM accelerates channel inactivation and reduces Ca2+ flux during an action potential (Bers and Perez-Reyes, 1999). Because LQTS CaM mutations reduce Ca2+-affinity for the C-lobe, they are unable to support CDI, permitting excess Ca2+ entry.

Notably, these mutations do not prevent the pre-association of the mutated apo-CaM to Cav1.2 (for reviews see Jensen et al., 2018; Tsai et al., 2021; Crotti et al., 2023; Hussey et al., 2023; Schwartz et al., 2024; Gao et al., 2026). This pre-association answers two key questions:

  • (1)

    Heterozygous mutations in one of the three CALM genes affect only one out of their six alleles. How can this cause an apparently dominant effect (i.e., inhibition of CDI), despite an apparent loss-of-function (i.e., decreased CaM Ca2+ binding) in the presence of a (predicted) excess of unmutated CaM protein?

  • (2)

    Why is the clinical phenotype limited to cardiac arrhythmia in most patients, despite the key involvement of CaM in so many physiological processes?

The key answer to both questions is that the mutant CaM, like WT CaM, can still pre-associate as apo-CaM with Cav1.2. This allows a small fraction of mutant CaM proteins to prevent CDI in a subset of channels. This is sufficient to significantly affect Cav1.2 function (Hussey et al., 2023; Schwartz et al., 2024; Limpitikul et al., 2017). In contrast, other CaM-modulated proteins that bind CaM primarily in its Ca2+-bound form would preferentially bind free WT Ca2+/CaM because the activation of mutant CaM is compromised due to their reduced Ca2+ affinity. CaM pre-association is observed for many ion channels, including several voltage-gated Ca2+, Na+, and K+ channels and various TRP channels (Alemayhu and Paulsen, 2026). In contrast, no pre-association is observed for many other CaM targets, including many GPCRs, connexins, and CaM-dependent enzymes (Andrews et al., 2020).

In addition to CaM interactions with voltage-gated channels, CaM can also modulate RyR2 by direct interaction. Both apo-CaM and Ca2+/CaM bind to RyR2 (Gao et al., 2026). The CaM-mediated decrease of RyR2 open probability appears stronger at low intracellular Ca2+ and helps with the termination of SR Ca2+-release. Therefore, CaM serves as a constitutive Ca2+ sensor that inhibits RyR2 Ca2+ release in a Ca2+-dependent manner to support the termination of Ca2+ release and to maintain a low RyR2 activity during diastole (Gao et al., 2026).

There is substantial experimental evidence that mutant CaM proteins causing CPVT induce a disinhibition of RyR2 channels, which facilitates especially spontaneous SR Ca2+ release at high ER Ca2+ levels (Sondergaard et al., 2019), driving arrhythmias. CPVT is often observed in subjects with LQTS mutations (Crotti et al., 2023). Only four pathogenic mutations were reported to cause only CPVT without LQTS. In these mutants C-lobe Ca2+-binding affinity is unaltered or decreased only weakly (Gomez-Hurtado et al., 2016; Sondergaard et al., 2019; Gao et al., 2026).

Taken together, this provides strong evidence that CaM missense mutations in one of six CALM alleles induce disease-relevant changes in Ca2+-homeostasis by enhancing Ca2+ signals of these two functionally coupled Ca2+ channels, especially under conditions in which β-adrenergic receptor stimulation further enhances their activity.

Neurological/neurodevelopmental symptoms associated with (mostly LQTS associated) CaM mutations in the International Calmodulinopathy Registry include autism, ADHD, developmental delay, intellectual disability, hyperactivity, and seizures. This raises the important question about molecular targets dysregulated by mutant CaMs in the brain. Given the preferential modulation by mutant CaMs in the heart, voltage-gated L-type Ca2+ channels and RYR2 are again obvious targets to consider. Both regulate neuronal functions, including synaptic plasticity, learning, memory, and dendritic spine remodeling (Zamponi et al., 2015; Bertan et al., 2020; Striessnig et al., 2022).

Although CPVT mutations may affect neuronal function through RyR2 dysfunction (Gao et al., 2023), LQTS mutations are more likely candidates because they not only affect the CDI of L-type Ca2+ channels but, through their reduced C-lobe Ca2+ affinity, should also affect Cav2.1 channels, a major presynaptic Ca2+ channel controlling fast neurotransmitter release (Zamponi et al., 2015). Although their CDI is modulated by the N-lobe of CaM, upregulation of the activity of Cav2.1 following strong depolarizations, also known as Ca2+-dependent facilitation (CDF), is controlled by the C-lobe (Hussey et al., 2023). CDF allows presynaptic Cav2.1 channels to contribute to short-term synaptic plasticity and the CDF of synaptic transmission in response to repeated trains of depolarizing stimuli (Lee et al., 1999).

In the brain Cav1.3 L-type channels, expressed at lower levels than neuronal Cav1.2 channels (Zamponi et al., 2015), are also obvious candidates. Like Cav1.2, Cav1.3 is also pre-associated with apo-CaM and primarily located in somatodendritic postsynaptic compartments. Both support dendritic Ca2+-spike propagation, activity-dependent gene transcription, and shape neuronal firing. Through their different gating properties they contribute in different ways to normal neuronal development, synaptic pruning, and various forms of learning and memory (Zamponi et al., 2015; Striessnig et al., 2022). Moreover, missense mutations facilitating voltage-dependent channel opening and/or inhibiting inactivation cause abnormal brain function, both in mice (Bader et al., 2011; Ortner et al., 2023) and humans (Striessnig, 2021). Such Cav1.2 mutations (CACNA1C gene) not only cause LQTS but also neurological/neurodevelopmental symptoms, including neurodevelopmental delay and autism (Striessnig, 2021; Herold et al., 2023). In Cav1.3 (CACNA1D, Fig. 1) they lead to a neurodevelopmental disorder, including autism, autoaggressive behaviors, developmental delay, and sometimes also endocrine symptoms (Ortner et al, 2023). Cav1.3 does not contribute to QT prolongation because it is not expressed in adult ventricular myocytes. However, in both mice and humans, Cav1.3 expression contributes to normal sinoatrial node pacemaking and AV-node conduction (Zamponi et al., 2015).

Figure 1.
Line graphs showing current traces illustrating pathogenic changes in Cav1.3 and Cav1.2 L-type calcium channel inactivation. Panel A: A line graph titled CACNA1D mutation (Cav1.3) shows normalized calcium inward current on the vertical axis and time on the horizontal axis. Two lines are plotted: Cav1.3 wild-type in black and Cav1.3-mutant in blue. The wild-type line shows a faster decrease of normalized inward current compared to the mutant line. Panel B: A line graph titled Calmodulinopathy (Cav1.2) shows normalized calcium inward current on the vertical axis and time on the horizontal axis. Two lines are plotted: CaM wild-type in black and CaM-mutant in blue. The wild-type line shows a faster decrease of normalized inward current compared to the mutant line.

Pathogenic changes in L-type Ca 2+ -channel inactivation. (A and B) Schematic current traces illustrate that time-dependent inactivation during a depolarization can be slowed either by missense mutations in a pore-forming α1-subunit, as shown in A (5 s test pulse) for Cav1.3 (CACNA1D gene; Striessnig, 2021 for review) or by missense mutations in CaM, as shown in B (300 ms test pulse) for modulation of Cav1.2 current (Kotta et al., 2018 for review). Likewise, missense mutations in the Cav1.2 α1-subunit (CACNA1C) can also slow inactivation, causing Timothy syndrome with LQTS and neurodevelopmental abnormalities (Striessnig, 2021; Herold et al., 2023). Because mutant CaM can also slow inactivation of Cav1.3 (Hussey et al., 2026), enhanced Ca2+ signaling through Cav1.3 in neurons may contribute to a neurological phenotype in calmodulinopathies. However, CaM dysregulation would not be limited to a single Ca2+ channel but can affect several Ca2+ channel types simultaneously (including Cav1.2 and Cav2.1), perhaps together with other targets not identified yet. Note that channel gating, including voltage-dependent inactivation and CDI, may vary depending on experimental conditions, e.g., co-expressed auxiliary β-subunits (see also this report in JGP). Adapted from Kotta et al. (2018) (Fig. 2 A, middle).

Figure 1.
Line graphs showing current traces illustrating pathogenic changes in Cav1.3 and Cav1.2 L-type calcium channel inactivation. Panel A: A line graph titled CACNA1D mutation (Cav1.3) shows normalized calcium inward current on the vertical axis and time on the horizontal axis. Two lines are plotted: Cav1.3 wild-type in black and Cav1.3-mutant in blue. The wild-type line shows a faster decrease of normalized inward current compared to the mutant line. Panel B: A line graph titled Calmodulinopathy (Cav1.2) shows normalized calcium inward current on the vertical axis and time on the horizontal axis. Two lines are plotted: CaM wild-type in black and CaM-mutant in blue. The wild-type line shows a faster decrease of normalized inward current compared to the mutant line.

Pathogenic changes in L-type Ca 2+ -channel inactivation. (A and B) Schematic current traces illustrate that time-dependent inactivation during a depolarization can be slowed either by missense mutations in a pore-forming α1-subunit, as shown in A (5 s test pulse) for Cav1.3 (CACNA1D gene; Striessnig, 2021 for review) or by missense mutations in CaM, as shown in B (300 ms test pulse) for modulation of Cav1.2 current (Kotta et al., 2018 for review). Likewise, missense mutations in the Cav1.2 α1-subunit (CACNA1C) can also slow inactivation, causing Timothy syndrome with LQTS and neurodevelopmental abnormalities (Striessnig, 2021; Herold et al., 2023). Because mutant CaM can also slow inactivation of Cav1.3 (Hussey et al., 2026), enhanced Ca2+ signaling through Cav1.3 in neurons may contribute to a neurological phenotype in calmodulinopathies. However, CaM dysregulation would not be limited to a single Ca2+ channel but can affect several Ca2+ channel types simultaneously (including Cav1.2 and Cav2.1), perhaps together with other targets not identified yet. Note that channel gating, including voltage-dependent inactivation and CDI, may vary depending on experimental conditions, e.g., co-expressed auxiliary β-subunits (see also this report in JGP). Adapted from Kotta et al. (2018) (Fig. 2 A, middle).

Close modal

The importance for CDI fine-tuning of Cav1.3 is evident from the fact that alternative splicing generates full-length (Cav1.3L) and C-terminally short variants (Cav1.3S), which differ with respect to CaM binding and the strength of CDI (Zamponi et al., 2015). Moreover, depending on cellular function, Cav1.3 CDI can be turned off completely by alternative splicing or CaM-like Ca2+-binding proteins (Zamponi et al., 2015; Limpitikul and Dick, 2025).

In their comprehensive analysis in this issue of the JGP (Hussey et al., 2026) investigated the modulation of CDI in Cav1.3 and CDF in Cav2.1 by heterologous expression of channels and mutant CaM in HEK-293 cells, followed by whole-cell patch-clamp recordings. To interpret these findings, they determined changes in the affinity of mutant CaM for binding to a peptide containing the channels’ IQ domains using live-cell flow cytometric FRET. Finally, they investigated the Ca2+ dependence of CaM interaction with the IQ domains under low and high Ca2+ conditions with a fluorescence anisotropy-binding assay.

They investigated C-lobe mutations strongly associated with LQTS (D96V, F142L, D130G, and D132G) or with sudden death and cardiac arrest (G114R) previously shown to blunt CDI in Cav1.2. N-lobe mutation N54I, which is associated with CPVT without LQTS and does not affect CDI, was also included.

CDI is measured by comparing the inactivation of the channel with Ba2+ (no CDI) or Ca2+ (CDI) as the conducting ion. All mutants except for N54I reduced CDI in both Cav1.3L and Cav1.3S by about 60%. Incomplete inhibition of CDI in Cav1.3 is consistent with the previous finding that, in contrast to Cav1.2, a small fraction of CDI is only inhibited by the CaM N-lobe (Hussey et al., 2026). G114R was unable to affect CDI in Cav1.3S, which suggested that it loses binding affinity and, in contrast to the other mutants, cannot efficiently compete with endogenous CaM. This was confirmed in their live-cell FRET-measurements; impaired G114R pre-association was only partly rescued by high intracellular Ca2+.

Fluorescence anisotropy confirmed a 10-fold reduced affinity of apo-G114R for the Cav1.3 IQ domain, an increased affinity for all mutants in Ca2+-bound conditions and reduced Ca2+ sensitivity for binding to the channel except, as expected, for N54I.

The same approach was used to monitor changes of CDF modulation of Cav2.1. While mutants D130G, D132G, and F142L strongly impaired CDF, inhibition was absent for D96V and minimal for G114R. This could not be readily explained by the small reductions in apo-CaM affinity or the reduced Ca2+ dependency of the CaM/Cav2.1 IQ interaction. The absence of an effect of D96V shows that dysregulation by CaM mutations can be channel specific. The previously shown major distortion of the C-terminal lobe architecture in D96V that alters its C-lobe interaction with the IQ domain (Wang et al., 2018) may contribute to this difference.

In this series of elegant experiments, the authors convincingly demonstrated that CaM mutants can affect the autoregulatory fine-tuning of neuronal Ca2+ channels. However, the potential implications for neurodevelopmental symptoms in calmodulinopathy subjects remain speculative. Limitations include the broad repertoire of brain CaM targets and the artificial nature of heterologous expression systems, which cannot accurately model a native environment, and the predicted lower abundance of mutant CaM compared with WT. Although it has been convincingly shown that effects on Cav1.2 and RYR2 function can also be detected when mutant proteins represent only half (Hussey et al., 2026) or even much less of the total CaM protein (Limpitikul et al., 2017; Schwartz et al., 2024), actual mutant expression levels across different cells remain largely unknown. Surprisingly, a recent study in Calm1N98S knockin mice found that high levels of mutant protein accumulated in the hearts of heterozygous animals, even exceeding WT levels, despite very low mutated transcript levels (Tsai et al., 2025).

While iPSC-derived human cardiomyocytes have been successfully used to characterize CaM-mutant pathology, this has not yet been extended to neurons. The same is true for CaM-mutation knockin mice, which focused on the characterization of the severe cardiac phenotype (Tsai et al., 2025). Studies with iPSC neurons and mouse knockin models should focus on CaM mutations for which a primary, not hypoxia-associated, neurological/neurodevelopmental phenotype can be unambiguously validated and which exert strong effects on CaM modulation of Cav1.2, Cav1.3, and Cav2.1 channels in heterologous systems.

The study by Hussey et al. represents an important first step toward a better understanding of how a calmodulinopathy can become a neuronal “channelopathy” and cause human central nervous system diseases.

Christopher J. Lingle served as editor.

This work was funded in whole or in part by the Austrian Science Fund (FWF, DOI 10.55776/P35722).

For open access purposes, the author has applied a CC-BY public copyright license to the author-accepted manuscript version arising from this submission.

Author contributions: Jörg Striessnig: conceptualization, funding acquisition, project administration, supervision, validation, and writing—original draft, review, and editing.

Alemayhu
,
A.M.
, and
C.E.
Paulsen
.
2026
.
Drafting the calmodulation playbook: Emerging structural insights into transient receptor potential channel regulation by calmodulin
.
J. Physiol.
Andrews
,
C.
,
Y.
Xu
,
M.
Kirberger
, and
J.J.
Yang
.
2020
.
Structural aspects and prediction of calmodulin-binding proteins
.
Int. J. Mol. Sci.
22
:
308
.
Bader
,
P.L.
,
M.
Faizi
,
L.H.
Kim
,
S.F.
Owen
,
M.R.
Tadross
,
R.W.
Alfa
,
G.C.L.
Bett
,
R.W.
Tsien
,
R.L.
Rasmusson
, and
M.
Shamloo
.
2011
.
Mouse model of Timothy syndrome recapitulates triad of autistic traits
.
Proc. Natl. Acad. Sci. USA
.
108
:
15432
15437
.
Bers
,
D.M.
, and
E.
Perez-Reyes
.
1999
.
Ca channels in cardiac myocytes: Structure and function in Ca influx and intracellular Ca release
.
Cardiovasc. Res.
42
:
339
360
.
Bertan
,
F.
,
L.
Wischhof
,
L.
Sosulina
,
M.
Mittag
,
D.
Dalugge
,
A.
Fornarelli
,
F.
Gardoni
,
E.
Marcello
,
M.
Di Luca
,
M.
Fuhrmann
, et al
.
2020
.
Loss of Ryanodine Receptor 2 impairs neuronal activity-dependent remodeling of dendritic spines and triggers compensatory neuronal hyperexcitability
.
Cell Death Differ.
27
:
3354
3373
.
Crotti
,
L.
,
C.N.
Johnson
,
E.
Graf
,
G.M.
De Ferrari
,
B.F.
Cuneo
,
M.
Ovadia
,
J.
Papagiannis
,
M.D.
Feldkamp
,
S.G.
Rathi
,
J.D.
Kunic
, et al
.
2013
.
Calmodulin mutations associated with recurrent cardiac arrest in infants
.
Circulation
.
127
:
1009
1017
.
Crotti
,
L.
,
C.
Spazzolini
,
M.
Nyegaard
,
M.T.
Overgaard
,
M.C.
Kotta
,
F.
Dagradi
,
L.
Sala
,
T.
Aiba
,
M.D.
Ayers
,
A.
Baban
, et al
.
2023
.
Clinical presentation of calmodulin mutations: The international calmodulinopathy registry
.
Eur. Heart J.
44
:
3357
3370
.
Dixon
,
R.E.
2021
.
Nanoscale organization, regulation, and dynamic reorganization of cardiac calcium channels
.
Front. Physiol.
12
:
810408
.
Gao
,
J.
,
T.
Makiyama
,
Y.
Yamamoto
,
T.
Kobayashi
,
H.
Aoki
,
T.L.
Maurissen
,
Y.
Wuriyanghai
,
A.
Kashiwa
,
T.
Imamura
,
T.
Aizawa
, et al
.
2023
.
Novel calmodulin variant p.E46K associated with severe catecholaminergic polymorphic ventricular tachycardia produces robust arrhythmogenicity in human induced pluripotent stem cell-derived cardiomyocytes
.
Circ. Arrhythm. Electrophysiol.
16
:e011387.
Gao
,
K.
,
W.
Wang
,
Y.
Ling
,
B.
Li
,
C.
Xing
,
N.
Li
,
X.
Yin
,
L.
Tao
,
X.
Li
,
J.
Qiu
, et al
.
2026
.
Structural and functional regulation of RyR2 in cardiac calcium handling and arrhythmogenesis
.
Biomedicines
.
14
:
662
.
Gomez-Hurtado
,
N.
,
N.J.
Boczek
,
D.O.
Kryshtal
,
C.N.
Johnson
,
J.
Sun
,
F.R.
Nitu
,
R.L.
Cornea
,
W.J.
Chazin
,
M.L.
Calvert
,
D.J.
Tester
, et al
.
2016
.
Novel CPVT-associated calmodulin mutation in CALM3 (CALM3-A103V) activates arrhythmogenic Ca waves and sparks
.
Circ. Arrhythm. Electrophysiol.
9
:e004161.
Herold
,
K.G.
,
J.W.
Hussey
, and
I.E.
Dick
.
2023
.
CACNA1C-related channelopathies
.
Handb. Exp. Pharmacol.
279
:
159
181
.
Hussey
,
J.W.
,
E.
DeMarco
,
D.
DiSilvestre
,
M.
Brohus
,
A.-O.
Busuioc
,
E.D.
Iversen
,
H.H.
Jensen
,
M.
Nyegaard
,
M.T.
Overgaard
,
M.
Ben-Johny
, et al
.
2026
.
Calmodulinopathy variants impair CaV1.3 and CaV2.1 regulation
.
J. Gen. Physiol
.
158
:
e20241373
.
Hussey
,
J.W.
,
W.B.
Limpitikul
, and
I.E.
Dick
.
2023
.
Calmodulin mutations in human disease
.
Channels
.
17
:
2165278
.
Jensen
,
H.H.
,
M.
Brohus
,
M.
Nyegaard
, and
M.T.
Overgaard
.
2018
.
Human calmodulin mutations
.
Front. Mol. Neurosci.
11
:
396
.
Kotta
,
M.C.
,
L.
Sala
,
A.
Ghidoni
,
B.
Badone
,
C.
Ronchi
,
G.
Parati
,
A.
Zaza
, and
L.
Crotti
.
2018
.
Calmodulinopathy: A novel, life-threatening clinical entity affecting the young
.
Front. Cardiovasc. Med.
5
:
175
.
Lee
,
A.
,
S.T.
Wong
,
D.
Gallagher
,
B.
Li
,
D.R.
Storm
,
T.
Scheuer
, and
W.A.
Catterall
.
1999
.
Ca2+/calmodulin binds to and modulates P/Q-type calcium channels
.
Nature
.
399
:
155
159
.
Limpitikul
,
W.B.
, and
I.E.
Dick
.
2025
.
Inactivation of CaV1 and CaV2 channels
.
J. Gen. Physiol.
157
:e202313531.
Limpitikul
,
W.B.
,
I.E.
Dick
,
D.J.
Tester
,
N.J.
Boczek
,
P.
Limphong
,
W.
Yang
,
M.H.
Choi
,
J.
Babich
,
D.
DiSilvestre
,
R.J.
Kanter
, et al
.
2017
.
A precision medicine approach to the rescue of function on malignant calmodulinopathic long-QT syndrome
.
Circ. Res.
120
:
39
48
.
Nyegaard
,
M.
,
M.T.
Overgaard
,
M.T.
Sondergaard
,
M.
Vranas
,
E.R.
Behr
,
L.L.
Hildebrandt
,
J.
Lund
,
P.L.
Hedley
,
A.J.
Camm
,
G.
Wettrell
, et al
.
2012
.
Mutations in calmodulin cause ventricular tachycardia and sudden cardiac death
.
Am. J. Hum. Genet.
91
:
703
712
.
Ortner
,
N.J.
,
A.
Sah
,
E.
Paradiso
,
J.
Shin
,
S.
Stojanovic
,
N.
Hammer
,
M.
Haritonova
,
N.T.
Hofer
,
A.
Marcantoni
,
L.
Guarina
, et al
.
2023
.
The human channel gating-modifying A749G CACNA1D (Cav1.3) variant induces a neurodevelopmental syndrome-like phenotype in mice
.
JCI Insight
.
8
:e162100.
Schwartz
,
P.J.
,
L.
Crotti
,
M.
Nyegaard
, and
M.T.
Overgaard
.
2024
.
Role of calmodulin in cardiac disease: Insights on genotype and phenotype
.
Circ. Genom. Precis Med.
17
:e004542.
Sondergaard
,
M.T.
,
Y.
Liu
,
M.
Brohus
,
W.
Guo
,
A.
Nani
,
C.
Carvajal
,
M.
Fill
,
M.T.
Overgaard
, and
S.R.W.
Chen
.
2019
.
Diminished inhibition and facilitated activation of RyR2-mediated Ca(2+) release is a common defect of arrhythmogenic calmodulin mutations
.
FEBS J.
286
:
4554
4578
.
Striessnig
,
J.
2021
.
Voltage-Gated Ca2+-channel α1-subunit de novo missense mutations: Gain or loss of function - implications for potential therapies
.
Front. Synaptic Neurosci.
13
:
634760
.
Striessnig
,
J.
,
A.
Nakao
, and
Y.
Mori
.
2022
.
Voltage-gated Ca2+ channels. Lessons from knockout and knock-in mice
. In
Voltage-Gated Calcium Channels
.
G.W.
Zamponi
, and
N.
Weiss
, editors.
Springer International Publishing
,
Cham
.
255
357
.
Tsai
,
W.C.
,
P.S.
Chen
, and
M.
Rubart
.
2021
.
Calmodulinopathy in inherited arrhythmia syndromes
.
Tzu Chi Med. J.
33
:
339
344
.
Tsai
,
W.C.
,
C.F.
Yang
,
S.Y.
Lin
,
S.Y.
Liang
,
W.C.
Tsai
,
S.
Guo
,
X.
Li
,
S.
Ofner
,
K.C.
Yang
,
T.C.
Meng
, et al
.
2025
.
Enrichment of mutant calmodulin protein in a murine model of a human calmodulinopathy
.
JCI Insight
.
10
:e185524.
Wang
,
K.
,
C.
Holt
,
J.
Lu
,
M.
Brohus
,
K.T.
Larsen
,
M.T.
Overgaard
,
R.
Wimmer
, and
F.
Van Petegem
.
2018
.
Arrhythmia mutations in calmodulin cause conformational changes that affect interactions with the cardiac voltage-gated calcium channel
.
Proc. Natl. Acad. Sci. USA
.
115
:
E10556
E10565
.
Yamamoto
,
Y.
,
T.
Makiyama
,
T.
Harita
,
K.
Sasaki
,
Y.
Wuriyanghai
,
M.
Hayano
,
S.
Nishiuchi
,
H.
Kohjitani
,
S.
Hirose
,
J.
Chen
, et al
.
2017
.
Allele-specific ablation rescues electrophysiological abnormalities in a human iPS cell model of long-QT syndrome with a CALM2 mutation
.
Hum. Mol. Genet.
26
:
1670
1677
.
Zamponi
,
G.W.
,
J.
Striessnig
,
A.
Koschak
, and
A.C.
Dolphin
.
2015
.
The physiology, pathology, and pharmacology of voltage-gated calcium channels and their future therapeutic potential
.
Pharmacol. Rev.
67
:
821
870
.

Author notes

Disclosures: The author declares no competing interests exist.

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