Mice with R2509C-RYR1 mutation exhibit dysfunctional Ca2+ dynamics in primary skeletal myocytes

Author:

Tsuboi Yoshitaka12,Oyama Kotaro34ORCID,Kobirumaki-Shimozawa Fuyu4ORCID,Murayama Takashi5ORCID,Kurebayashi Nagomi5ORCID,Tachibana Toshiaki1,Manome Yoshinobu1ORCID,Kikuchi Emi1,Noguchi Satoru6ORCID,Inoue Takayoshi7ORCID,Inoue Yukiko U.7ORCID,Nishino Ichizo6ORCID,Mori Shuichi8,Ishida Ryosuke8,Kagechika Hiroyuki8,Suzuki Madoka9ORCID,Fukuda Norio4ORCID,Yamazawa Toshiko12ORCID

Affiliation:

1. Core Research Facilities, The Jikei University School of Medicine, Tokyo, Japan 1

2. Department of Molecular Physiology, The Jikei University School of Medicine, Tokyo, Japan 2

3. Quantum Beam Science Research Directorate, National Institutes for Quantum Science and Technology, Gunma, Japan 3

4. Department of Cell Physiology, The Jikei University School of Medicine, Tokyo, Japan 4

5. Department of Cellular and Molecular Pharmacology, Juntendo University Graduate School of Medicine, Tokyo, Japan 5

6. Department of Neuromuscular Research, National Institute of Neuroscience, National Center of Neurology and Psychiatry, Tokyo, Japan 6

7. Department of Biochemistry and Cellular Biology, National Institute of Neuroscience, National Center of Neurology and Psychiatry, Tokyo, Japan 7

8. Institute of Biomaterials and Bioengineering, Tokyo Medical and Dental University, Tokyo, Japan 8

9. Institute for Protein Research, Osaka University, Osaka, Japan 9

Abstract

Type 1 ryanodine receptor (RYR1) is a Ca2+ release channel in the sarcoplasmic reticulum (SR) of the skeletal muscle and plays a critical role in excitation–contraction coupling. Mutations in RYR1 cause severe muscle diseases, such as malignant hyperthermia, a disorder of Ca2+-induced Ca2+ release (CICR) through RYR1 from the SR. We recently reported that volatile anesthetics induce malignant hyperthermia (MH)-like episodes through enhanced CICR in heterozygous R2509C-RYR1 mice. However, the characterization of Ca2+ dynamics has yet to be investigated in skeletal muscle cells from homozygous mice because these animals die in utero. In the present study, we generated primary cultured skeletal myocytes from R2509C-RYR1 mice. No differences in cellular morphology were detected between wild type (WT) and mutant myocytes. Spontaneous Ca2+ transients and cellular contractions occurred in WT and heterozygous myocytes, but not in homozygous myocytes. Electron microscopic observation revealed that the sarcomere length was shortened to ∼1.7 µm in homozygous myocytes, as compared to ∼2.2 and ∼2.3 µm in WT and heterozygous myocytes, respectively. Consistently, the resting intracellular Ca2+ concentration was higher in homozygous myocytes than in WT or heterozygous myocytes, which may be coupled with a reduced Ca2+ concentration in the SR. Finally, using infrared laser-based microheating, we found that heterozygous myocytes showed larger heat-induced Ca2+ transients than WT myocytes. Our findings suggest that the R2509C mutation in RYR1 causes dysfunctional Ca2+ dynamics in a mutant-gene dose-dependent manner in the skeletal muscles, in turn provoking MH-like episodes and embryonic lethality in heterozygous and homozygous mice, respectively.

Funder

Japan Society for the Promotion of Science

Japan Agency for Medical Research and Development

Vehicle Racing Commemorative Foundation

Naito Foundation

National Center of Neurology and Psychiatry

Publisher

Rockefeller University Press

Subject

Physiology

Cited by 1 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Trans-scale thermal signaling in biological systems;The Journal of Biochemistry;2023-07-18

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