首页> 美国卫生研究院文献>The Journal of General Physiology >Dynamics of Signaling between Ca2+ Sparks and Ca2+- Activated K+ Channels Studied with a Novel Image-Based Method for Direct Intracellular Measurement of Ryanodine Receptor Ca2+ Current
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Dynamics of Signaling between Ca2+ Sparks and Ca2+- Activated K+ Channels Studied with a Novel Image-Based Method for Direct Intracellular Measurement of Ryanodine Receptor Ca2+ Current

机译:Ca2 +火花和Ca2 +-激活的K +通道之间信号传递的动力学研究基于新颖的基于图像的方法用于细胞内直接测量雷诺定受体Ca2 +电流

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摘要

Ca2+ sparks are highly localized cytosolic Ca2+ transients caused by a release of Ca2+ from the sarcoplasmic reticulum via ryanodine receptors (RyRs); they are the elementary events underlying global changes in Ca2+ in skeletal and cardiac muscle. In smooth muscle and some neurons, Ca2+ sparks activate large conductance Ca2+-activated K+ channels (BK channels) in the spark microdomain, causing spontaneous transient outward currents (STOCs) that regulate membrane potential and, hence, voltage-gated channels. Using the fluorescent Ca2+ indicator fluo-3 and a high speed widefield digital imaging system, it was possible to capture the total increase in fluorescence (i.e., the signal mass) during a spark in smooth muscle cells, which is the first time such a direct approach has been used in any system. The signal mass is proportional to the total quantity of Ca2+ released into the cytosol, and its rate of rise is proportional to the Ca2+ current flowing through the RyRs during a spark (ICa(spark)). Thus, Ca2+ currents through RyRs can be monitored inside the cell under physiological conditions. Since the magnitude of ICa(spark) in different sparks varies more than fivefold, Ca2+ sparks appear to be caused by the concerted opening of a number of RyRs. Sparks with the same underlying Ca2+ current cause STOCs, whose amplitudes vary more than threefold, a finding that is best explained by variability in coupling ratio (i.e., the ratio of RyRs to BK channels in the spark microdomain). The time course of STOC decay is approximated by a single exponential that is independent of the magnitude of signal mass and has a time constant close to the value of the mean open time of the BK channels, suggesting that STOC decay reflects BK channel kinetics, rather than the time course of [Ca2+] decline at the membrane. Computer simulations were carried out to determine the spatiotemporal distribution of the Ca2+ concentration resulting from the measured range of ICa(spark). At the onset of a spark, the Ca2+ concentration within 200 nm of the release site reaches a plateau or exceeds the [Ca2+]EC50 for the BK channels rapidly in comparison to the rate of rise of STOCs. These findings suggest a model in which the BK channels lie close to the release site and are exposed to a saturating [Ca2+] with the rise and fall of the STOCs determined by BK channel kinetics. The mechanism of signaling between RyRs and BK channels may provide a model for Ca2+ action on a variety of molecular targets within cellular microdomains.
机译:Ca 2 + 火花是高度局部化的胞质Ca 2 + 瞬变,是由肌浆网上的ryanodine受体(RyRs)释放Ca 2 + 引起的);它们是骨骼肌和心肌中Ca 2 + 整体变化的基本事件。在平滑肌和某些神经元中,Ca 2 + 火花激活电导中的大电导Ca 2 + 激活的K + 通道(BK通道)微域,引起自发的瞬态外向电流(STOC),该电流调节膜电位,从而调节电压门控通道。使用荧光Ca 2 + 指示剂fluo-3和高速宽视场数字成像系统,可以捕获在平滑肌细胞中产生火花期间荧光的总增加量(即信号质量)。 ,这是在任何系统中首次使用这种直接方法。信号质量与释放到细胞质中的Ca 2 + 总量成正比,其上升速率与流过RyRs的Ca 2 + 电流成正比。火花(ICa(火花))。因此,可以在生理条件下监测细胞内部通过RyRs的Ca 2 + 电流。由于不同火花中ICa(火花)的大小变化超过五倍,因此Ca 2 + 火花似乎是由许多RyR的一致打开引起的。具有相同的基本Ca 2 + 电流的火花会导致STOC,其幅度变化超过三倍,这一发现最好用耦合比的可变性来解释(即,火花中RyRs与BK通道之比)微域)。 STOC衰减的时间过程由单个指数来近似,该指数与信号质量的大小无关,并且其时间常数接近BK通道的平均打开时间的值,这表明STOC衰减反映了BK通道动力学,而不是比膜上[Ca 2 + ]下降的时间过程要长。进行了计算机模拟以确定由ICa(火花)的测量范围引起的Ca 2 + 浓度的时空分布。发生火花时,释放位点200 nm内的Ca 2 + 浓度迅速达到平稳或超过BK通道的[Ca 2 + ] EC50与STOC的增长率相比。这些发现提示了一个模型,其中BK通道位于释放位点附近,并暴露于饱和的[Ca 2 + ],其中STOC的上升和下降取决于BK通道动力学。 RyRs和BK通道之间的信号传导机制可能为Ca 2 + 作用于细胞微域内各种分子靶标提供模型。

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