Negative metabolic effects of cyclic GMP in quiescent cardiomyocytes are not related to L-type calcium channel activity.

L Yan, G X Gong, P M Scholz, J Tse, H R Weiss
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引用次数: 6

Abstract

We tested the hypothesis that the negative metabolic effects of elevating cyclic GMP act through inhibition of L-type calcium channels in quiescent cardiac myocytes. The steady state O2 consumption (VO2) of ventricular myocytes, isolated from hearts of New Zealand white rabbits, was measured in a glass chamber using Clark-type oxygen electrodes. The cellular cyclic GMP levels were determined by radioimmunoassay at baseline with either 0.5 mM or 2.0 mM of Ca2+, sodium nitroprusside at increasing concentration (10(-8),(-6),(-4) M) with and without pretreatment by BAY K8644 10(-5) M (L-type Ca2+ channel activator) in 0.5 mM Ca2+, or nitroprusside with and without pretreatment with nifedipine 10(-4) M (L-type Ca2+ channel blocker) in 2.0 mM Ca2+. In the 0.5 mM Ca2+ medium, basal VO2 was 459 +/- 104 (nl O2/min per 10(5) myocytes) with a corresponding cyclic GMP level of 112 +/- 23 (fmol/10(5) myocytes). With nitroprusside 10(-4) M, VO2 was decreased to 285 +/- 39 and cyclic GMP level was significantly elevated to 425 +/- 128. In the same medium, VO2 was slightly increased by BAY K8644 10(-5) M while the cyclic GMP level did not change. With BAY K8644 10(-5) M, nitroprusside 10(-4) M decreased VO2 and increased cyclic GMP to a level which was similar to cells treated with nitroprusside alone. In the 2.0 mM Ca2+ medium, the basal VO2 and cyclic GMP were 518 +/- 121 and 137 +/- 24. In the presence of nitroprusside 10(-4) M, VO2 was decreased to 295 +/- 49 and cyclic GMP was increased to 454 +/- 116. In the same medium, nifedipine 10(-4) M significantly decreased VO2, while the cyclic GMP level was comparable to the baseline. After nifedipine 10(-4) M, nitroprusside 10(-4) M decreased VO2 and increased cyclic GMP to levels which were similar to control. Therefore, in quiescent cardiac myocytes, the negative metabolic effects associated with cyclic GMP were not primarily mediated through inhibition of L-type Ca2+ channels.

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环GMP在静止心肌细胞中的负代谢作用与l型钙通道活性无关。
我们通过对静止心肌细胞中l型钙通道的抑制,验证了环GMP升高的负代谢效应。采用clark型氧电极,在玻璃室中测定了新西兰大白兔心脏心肌细胞稳态耗氧量(VO2)。通过放射免疫法测定细胞环GMP水平,基线浓度为0.5 mM或2.0 mM Ca2+,硝普钠浓度增加(10(-8),(-6),(-4)M),使用和不使用BAY K8644 10(-5) M (l型Ca2+通道激活剂)预处理0.5 mM Ca2+,硝普钠使用和不使用硝苯地平10(-4)M (l型Ca2+通道阻滞剂)预处理2.0 mM Ca2+。在0.5 mM Ca2+培养基中,基础VO2为459 +/- 104(每10(5)个肌细胞nl O2/min),相应的循环GMP水平为112 +/- 23 (fmol/10(5)个肌细胞)。硝普苷10(-4)M可使VO2降低至285 +/- 39,使环GMP水平显著升高至425 +/- 128。在相同的培养基中,BAY K8644 10(-5) M对VO2有轻微的促进作用,而环GMP水平没有变化。在BAY K8644 10(-5) M的作用下,硝普苷10(-4)M降低了VO2,增加了环GMP,其水平与硝普苷单独处理的细胞相似。在2.0 mM Ca2+培养基中,基础VO2和环GMP分别为518 +/- 121和137 +/- 24。硝普10(-4)M存在时,VO2降低至295 +/- 49,环GMP增加至454 +/- 116。在相同的培养基中,硝苯地平10(-4)M显著降低VO2,而循环GMP水平与基线相当。硝苯地平10(-4)M后硝普苷10(-4)M降低VO2,使循环GMP升高至与对照组相似的水平。因此,在静止心肌细胞中,与环GMP相关的负代谢效应主要不是通过抑制l型Ca2+通道介导的。
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