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October 4, 2022The Journal of General Physiology9 citationsOpen Access

A reconstituted depolarization-induced Ca2+ release platform for validation of skeletal muscle disease mutations and drug discovery

TMTakashi MurayamaNKNagomi KurebayashiTNTakuro Numaga‐Tomita

Structured PICO

P
Population
HEK293 cells stably expressing RyR1 and R-CEPIA1er, transduced with baculovirus vectors for Cav1.1, β1a, Stac3, JP2, and Kir2.1
I
Intervention
Chemical depolarization using high [K+] solutions, testing of Cav1.1 mutations (R174W, R1086H, T1354S), and testing of RyR1 inhibitors (dantrolene, Cpd1, procaine)
C
Comparator
HEK293 cells without baculovirus infection, or wild-type Cav1.1
O
Outcome
Ca2+ release measured quantitatively with R-CEPIA1er (fluorescent ER Ca2+ indicator)surrogate

A reconstituted DICR platform in HEK293 cells successfully models skeletal muscle excitation-contraction coupling, enabling efficient validation of disease mutations and drug discovery.

Abstract

In skeletal muscle excitation-contraction (E-C) coupling, depolarization of the plasma membrane triggers Ca2+ release from the sarcoplasmic reticulum (SR), referred to as depolarization-induced Ca2+ release (DICR). DICR occurs through the type 1 ryanodine receptor (RyR1), which physically interacts with the dihydropyridine receptor Cav1.1 subunit in specific machinery formed with additional essential components including β1a, Stac3 adaptor protein, and junctophilins. Exome sequencing has accelerated the discovery of many novel mutations in genes encoding DICR machinery in various skeletal muscle diseases. However, functional validation is time-consuming because it must be performed in a skeletal muscle environment. In this study, we established a platform of the reconstituted DICR in HEK293 cells. The essential components were effectively transduced into HEK293 cells expressing RyR1 using baculovirus vectors, and Ca2+ release was quantitatively measured with R-CEPIA1er, a fluorescent ER Ca2+ indicator, without contaminant of extracellular Ca2+ influx. In these cells, K+-dependent Ca2+ release was triggered by chemical depolarization with the aid of inward rectifying potassium channel, indicating a successful reconstitution of DICR. Using the platform, we evaluated several Cav1.1 mutations that are implicated in malignant hyperthermia and myopathy. We also tested several RyR1 inhibitors; whereas dantrolene and Cpd1 inhibited DICR, procaine had no effect. Furthermore, twitch potentiators such as perchlorate and thiocyanate shifted the voltage dependence of DICR to more negative potentials without affecting Ca2+-induced Ca2+ release. These results well reproduced the findings with the muscle fibers and the cultured myotubes. Since the procedure is simple and reproducible, the reconstituted DICR platform will be highly useful for the validation of mutations and drug discovery for skeletal muscle diseases.

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Cite This Study

Murayama et al. (2022) studied this question.

synapsesocial.com/papers/6a1d0cc9d676c7290baf2d38https://doi.org/10.1085/jgp.202213230
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