首页> 美国卫生研究院文献>The Journal of Physiology >Relaxation in ferret ventricular myocytes: unusual interplay among calcium transport systems.
【2h】

Relaxation in ferret ventricular myocytes: unusual interplay among calcium transport systems.

机译:雪貂心室肌细胞中的松弛:钙转运系统之间异常的相互作用。

代理获取
本网站仅为用户提供外文OA文献查询和代理获取服务,本网站没有原文。下单后我们将采用程序或人工为您竭诚获取高质量的原文,但由于OA文献来源多样且变更频繁,仍可能出现获取不到、文献不完整或与标题不符等情况,如果获取不到我们将提供退款服务。请知悉。
获取外文期刊封面目录资料

摘要

Transport systems responsible for removing Ca2+ from the myoplasm during relaxation in isolated ferret ventricular myocytes were studied using caffeine-induced contractures. Internal calcium concentration ([Ca2+]i) was measured with the fluorescent calcium indicator indo-1, and the results were compared with our recent detailed characterizations in rabbit and rat myocytes. Relaxation and [Ca2+]i decline during a twitch in ferret myocytes were fast and similar to that in rat myocytes (i.e. half-time, t 1/2 approximately 100-160 ms). During a caffeine-induced contracture (SR Ca2+ accumulation prevented), relaxation was still relatively fast (t 1/2 = 0.57 s) and similar to relaxation in rabbit supported mainly by a strong Na(+)-Ca2+ exchange. When both the SR Ca2+ uptake and Na(+)-Ca2+ exchange are blocked (by caffeine and 0 Na+, 0 Ca2+ solution) relaxation in the ferret myocyte is remarkably fast (approximately 5-fold) compared with rabbit and rat myocytes. The decline of the Cai2+ transient was also fast under these conditions. These values were similar to those in rat under conditions where relaxation is due primarily to Na(+)-Ca2+ exchange. Additional inhibition of either the sarcolemmal Ca(2+)-ATPase or mitochondrial Ca2+ uptake caused only modest slowing of the relaxation of caffeine-induced contracture in 0 Na+, 0 Ca2+ (t 1/2 increased to approximately 3 s). In rabbit myocytes the relaxation t 1/2 is slowed to 20-30 s by these procedures. Even when the systems responsible for slow relaxation in rabbit ventricular myocytes are inhibited (i.e. sarcolemmal Ca(2+)-ATPase and mitochondrial Ca2+ uptake) along with the SR Ca(2+)-ATPase and Na(+)-Ca2+ exchange, relaxation and [Ca2+]i decline in ferret myocytes remain rapid compared with rabbit myocytes. Ca2+ taken up by mitochondria in rabbit myocytes during a caffeine contracture in 0 Na+, 0 Ca2+ solution gradually returns to the SR after caffeine removal, but this component appears to be much smaller in ferret myocytes under the same conditions. We tested for possible residual Ca2+ transport by each of the four systems which suffice to explain Ca2+ removal from the cytoplasm in rabbit (SR Ca(2+)-ATPase, Na(+)-Ca2+ exchange, sarcolemmal Ca(2+)-ATPase and mitochondrial Ca2+ uptake). We conclude that there is an additional calcium transport system at work in ferret myocytes. For this additional system, our results are most compatible with a trans-sarcolemmal Ca2+ transport, but neither a cation exchanger nor a Ca(2+)-ATPase with characteristics like that in other cardiac cells. This additional system appears able to transport Ca2+ nearly as fast as the Na(+)-Ca2+ exchange in rat ventricular myocytes.
机译:使用咖啡因诱导的挛缩研究了在分离的雪貂心室肌细胞松弛过程中负责从肌质去除Ca2 +的转运系统。用荧光钙指示剂indo-1测量内部钙浓度([Ca2 +] i),并将结果与​​我们最近在兔和大鼠心肌细胞中的详细表征进行比较。雪貂肌细胞抽搐期间的松弛和[Ca2 +] i下降很快,并且与大鼠肌细胞相似(即半衰期,t 1/2约为100-160 ms)。在咖啡因诱导的挛缩(防止SR Ca2 +积累)期间,松弛仍然相对较快(t 1/2 = 0.57 s),类似于主要由强Na(+)-Ca2 +交换支持的兔子的松弛。当SR Ca2 +的摄取和Na(+)-Ca2 +交换均被阻止时(咖啡因和0 Na +,0 Ca2 +溶液),雪貂肌细胞中的松弛比兔和大鼠肌细胞快得多(约5倍)。在这些条件下,Cai2 +瞬变的下降也很快。这些值类似于大鼠松弛主要归因于Na(+)-Ca2 +交换的条件下的值。肌膜Ca(2 +)-ATPase或线粒体Ca2 +摄取的其他抑制作用仅导致咖啡因诱导的挛缩在0 Na +,0 Ca2 +中的松弛程度有所降低(t 1/2增加至约3 s)。通过这些程序,在兔心肌细胞中的松弛t 1/2减慢至20-30 s。即使负责兔心室肌细胞缓慢松弛的系统被抑制(即肌膜Ca(2 +)-ATPase和线粒体Ca2 +摄取)以及SR Ca(2 +)-ATPase和Na(+)-Ca2 +交换,松弛与兔心肌细胞相比,雪貂心肌细胞的[Ca2 +] i下降仍然迅速。在咖啡因挛缩期间,在0 Na +中,线粒体在兔心肌细胞中吸收的Ca2 +,在去除咖啡因后,0 Ca2 +溶液逐渐返回到SR,但在相同条件下,在雪貂心肌细胞中该成分似乎要小得多。我们通过四个系统中的每个系统测试了可能的残留Ca2 +转运,这足以解释兔细胞质中的Ca2 +去除(SR Ca(2 +)-ATPase,Na(+)-Ca2 +交换,肌膜Ca(2 +)-ATPase和线粒体的Ca2 +吸收)。我们得出结论,雪貂肌细胞中还有一个额外的钙转运系统。对于此附加系统,我们的结果与反肌膜Ca2 +转运最兼容,但阳离子交换剂或Ca(2 +)-ATPase都没有其他心肌细胞那样的特性。这个额外的系统似乎能够在大鼠心室肌细胞中几乎与Na(+)-Ca2 +交换一样快地运输Ca2 +。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
代理获取

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号