• 제목/요약/키워드: Inwardly rectifying $K^+$ current

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Ginsenoside $Rg_3$ Increases the ATP-sensitive $K^+$ Channel Activity in the Smooth Muscle of the Rabbit Coronary Artery

  • Chung Induk;Lee Jeong-Sun
    • Journal of Ginseng Research
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    • 제23권4호
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    • pp.235-238
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    • 1999
  • [ $K_{ATP}$ ]채널은 세포내 ATP에 의해서 억제되는 포타슘 채널로서 혈관평활근, 골격근 및 체장의 ${\beta}$세포 막에 존재하여, 근세포의 막전압 조절을 통하여 근수축 및 이완을 조절할 뿐만 아니라 췌장의 ${\beta}$세포로부터 인슐린분비를 조절한다. 홍삼 복합사포닌 및 사포닌 $Rg_3$ 성분은 토끼 관상동맥 평활근세포의 칼슘의존성-포타슘채널$(BK_{Ca})$의 활성을 증가시켜 막전압의 과분극을 유발하여 혈관평활근을 이완시킨다. 사포닌 $Rg_3$성분은 홍삼의 복합사포닌 성분보다 $BK_{Ca}$에 더 높은 활성을 보이기 때문에 본 연구는 사포닌 $Rg_3$성분이 토끼 관상동맥 단일 평활근세포의 ${\beta}$채널의 활성도를 조절하는지를 팻치클램프 방법으로 기록하였다. 막전압 의존성과 함께 내향전류(inward rectification)특성을 보이는 ${\beta}$채널의 활성을 토끼 관상동맥 평활근 세포로부터 기록하였다. 이 ${\beta}$채널은 ATP와 giyburide에 의해서 억제되었으며 minoxidil에 의해서 활성이 증가되었다. 홍삼 사포닌 $Rg_3$성분은 $K_{ATP}$채널의 전류극대치에는 영향을 주지 않고 전류의 inactivation을 억제시켜 결과적으로 $K_{ATP}$채널의 활성을 증가시켰으며, 단일 KhTr채널이 열리는 시간도 증가시켰다. 따라서 본 실험 결과는 사포닌 $Rg_3$성분이 KATP채널의 활성을 증가시켜 막전압을 조절하여 관상동맥 평활근의 이완을 촉진한다고 여겨진다.

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Protective effect of low-intensity treadmill exercise against acetylcholine-calcium chloride-induced atrial fibrillation in mice

  • Sung, Dong-Jun;Jeon, Yong-Kyun;Choi, Jaeil;Kim, Bokyung;Golpasandi, Shadi;Park, Sang Woong;Oh, Seung-Bum;Bae, Young Min
    • The Korean Journal of Physiology and Pharmacology
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    • 제26권5호
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    • pp.313-323
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    • 2022
  • Atrial fibrillation (AF) is the most common supraventricular arrhythmia, and it corresponds highly with exercise intensity. Here, we induced AF in mice using acetylcholine (ACh)-CaCl2 for 7 days and aimed to determine the appropriate exercise intensity (no, low, moderate, high) to protect against AF by running the mice at different intensities for 4 weeks before the AF induction by ACh-CaCl2. We examined the AF-induced atrial remodeling using electrocardiogram, patch-clamp, and immunohistochemistry. After the AF induction, heart rate, % increase of heart rate, and heart weight/body weight ratio were significantly higher in all the four AF groups than in the normal control; highest in the high-ex AF and lowest in the low-ex (lower than the no-ex AF), which indicates that low-ex treated the AF. Consistent with these changes, G protein-gated inwardly rectifying K+ currents, which were induced by ACh, increased in an exercise intensity-dependent manner and were lower in the low-ex AF than the no-ex AF. The peak level of Ca2+ current (at 0 mV) increased also in an exercise intensity-dependent manner and the inactivation time constants were shorter in all AF groups except for the low-ex AF group, in which the time constant was similar to that of the control. Finally, action potential duration was shorter in all the four AF groups than in the normal control; shortest in the high-ex AF and longest in the low-ex AF. Taken together, we conclude that low-intensity exercise protects the heart from AF, whereas high-intensity exercise might exacerbate AF.