골격근 세포에서 ATP-의존성 $K^+$통로의 활성화가 근피로에 미치는 영향

The Effects of ATP - sensitive $K^+$ Channel on the Muscle Fatigue in Mouse Skeletal Muscle Cell

  • 구현모 (대구대학교 대학원 재활과학과 물리치료전공) ;
  • 남기원 (대구대학교 대학원 재활과학과 물리치료전공) ;
  • 김석범 (대구대학교 대학원 재활과학과 물리치료전공) ;
  • 이선민 (대구대학교 대학원 재활과학과 물리치료전공) ;
  • 김진상 (대구대학교 물리치료학과)
  • Koo Hyun-Mo (Major in Physical Therapy, Graduate School of Rehabilitation Science, Taegu University) ;
  • Nam Ki-Won (Major in Physical Therapy, Graduate School of Rehabilitation Science, Taegu University) ;
  • Kim Suck-Bum (Major in Physical Therapy, Graduate School of Rehabilitation Science, Taegu University) ;
  • Lee Sun-Min (Major in Physical Therapy, Graduate School of Rehabilitation Science, Taegu University) ;
  • Kim Jin-Sang (Department of Physical Therapy, College of Rehabilitation Science, Taegu University)
  • 발행 : 2002.06.01

초록

Excitation-contraction coupling in skeletal muscle is process by which depolarization of the muscle fiber membrane, elicited by a nerve action potential, triggers the release of $Ca^{2+}$ from the sarcoplasmic reticulum(SR). The resulting rise in intracellular $Ca^{2+}$ concentration$([Ca^{2+}]_i)$ activates the troponin complex, thereby initiating the contraction of the muscle. The question remains as to what factors are involved in the inhibition of SR $Ca^{2+}$ release in fatigued muscle. The purpose of this study was determine whether ATP-sensitive $K^+(K_{ATP})$ channels are activated and contribute to decrease in $[Ca^{2+}]_i$ during fatigue development in the mouse skeletal muscle. To elucidate a role of $K_{ATP})$ in relation to ECC, I measured the modulation effects of $K_{ATP})$ channel blocker(glibenclamide) and opener(pinacidil) on $[Ca^{2+}]_i$ after fatiguing electrical field stimulation(FEFS). Intracellular $Ca^{2+}$ signals were recorded by conforcal laser microscopy(LSM 410) and monitored using the fluorescent $Ca^{2+}$-Sensitive indicator Fluo-3 AM. The results of this study were as followed: 1. The relative [Ca2'li after FEFS in the pre-glibenclamide-treated group was higher than the control. And relative $[Ca^{2+}]_i$ after FEFS in the pre-glibenclamide-treated group was lower than the control. 2. The relative $[Ca^{2+}]_i$ after FEFS for 3 min in the control, pre-glibenclamide-treated group and pre-pinacidil-treated group showed a similar pattern; the gradually significant decrease in $[Ca^{2+}]_i$. But, these decreasing pattern was most significant in the control. These findings suggest a tight relationship between $K_{ATP})$ and $Ca^{2+}$ in ECC during fatigue. Therefore, 1 thought that activation of $K_{ATP})$ channels may be one of mechanisms of the fatigue in skeletal muscle.

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