首页> 美国卫生研究院文献>The Journal of Physiology >Subcellular properties of triggered Ca2+ waves in isolated citrate-loaded guinea-pig atrial myocytes characterized by ratiometric confocal microscopy.
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Subcellular properties of triggered Ca2+ waves in isolated citrate-loaded guinea-pig atrial myocytes characterized by ratiometric confocal microscopy.

机译:通过比例共聚焦显微镜表征分离的柠檬酸盐负载的豚鼠心房肌细胞中触发的Ca2 +波的亚细胞特性。

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摘要

1. Spatiotemporal aspects of subcellular Ca2+ signalling were studied in cultured adult guinea-pig atrial myocytes. A mixture of the Ca2+ indicators fluo-3 and Fura Red in combination with laser-scanning confocal microscopy was used for [Ca2+]i measurements while membrane currents were recorded simultaneously. 2. In citrate-loaded atrial myocytes not every Ca2+ current (ICa) could trigger Ca2+ release from the sarcoplasmic reticulum (SR). Two types of Ca2+ signals could be observed: Ca2+ transients resulting from (i) Ca2+ influx alone and (ii) additional Ca2+ release. 3. Ca2+ release elicited by voltage steps of 100-150 ms duration was either apparently homogeneous or propagated as Ca2+ waves through the entire cell. With brief ICa (50-75 ms), Ca2+ waves with limited subcellular propagation were observed frequently. These waves always originated from either end of the myocyte. 4. The time course of changes in Na(+)-Ca2+ exchange current (INaCa) depended on the subcellular properties of the underlying Ca2+ transient and on the particular cell geometry. Apparently homogeneous Ca2+ release was accompanied by an inward change of INaCa the onset phase of which was fused with ICa. Changes in INaCa caused by a Ca2+ wave propagating through the entire cell showed a W shape, which could be attributed to differences of the fractional surface-to-volume ratio in different cell segments during propagation of the Ca2+ wavefront. Those waves with limited spreading only activated a small component of INaCa. 5. The different subcellular patterns of Ca2+ release signals can be explained by spatial inhomogeneities in the positive feedback of the SR. This depends on the local SR Ca2+ loading state under the control of the local Ca2+ influx during activation of ICa. Due to the higher surface-to-volume ratio at the two ends of the myocyte, SR loading and therefore the positive feedback in Ca(2+)-induced Ca2+ release may be higher at the ends, locations where Ca2+ waves are preferentially triggered. 6. We conclude that the individual cell geometry may be an important determinant of subcellular Ca2+ signalling not only in cardiac muscle cells but presumably also in other types of cells that depend on Ca2+ signalling. In addition, the cell geometry in combination with varying subcellular Ca2+ release patterns can greatly affect the time course of Ca(2+)-activated membrane currents.
机译:1.在培养的成年豚鼠心房肌细胞中研究了亚细胞Ca2 +信号的时空分布。 Ca2 +指示剂fluo-3和Fura Red的混合物与激光扫描共聚焦显微镜结合使用进行[Ca2 +] i测量,同时记录膜电流。 2.在加载柠檬酸盐的心房肌细胞中,并非每个Ca2 +电流(ICa)都可以触发Ca2 +从肌浆网(SR)释放。可以观察到两种类型的Ca2 +信号:(i)仅Ca2 +流入和(ii)额外的Ca2 +释放导致的Ca2 +瞬变。 3.由100-150 ms持续时间的电压阶跃引起的Ca2 +释放明显均匀或以Ca2 +波的形式传播通过整个细胞。短暂的ICa(50-75 ms),经常观察到亚细胞传播受限的Ca2 +波。这些波总是起源于肌细胞的任一端。 4. Na(+)-Ca2 +交换电流(INaCa)变化的时间过程取决于基础Ca2 +瞬态的亚细胞特性以及特定的细胞几何形状。显然,均匀的Ca2 +释放伴随着INaCa的向内变化,其开始阶段与ICa融合。由Ca2 +波在整个细胞中传播引起的INaCa变化呈W形,这可能归因于Ca2 +波前传播过程中不同细胞片段中表面体积分数的差异。那些传播受限的波只激活了INaCa的一小部分。 5. Ca2 +释放信号的不同亚细胞模式可以通过SR的正反馈中的空间不均匀性来解释。这取决于在激活ICa期间在局部Ca2 +流入量控制下的局部SR Ca2 +负载状态。由于在心肌细胞的两端具有更高的表面积与体积之比,SR负载以及因此Ca(2+)诱导的Ca2 +释放的正反馈可能在两端(触发Ca2 +波的位置)较高。 6.我们得出的结论是,不仅在心肌细胞中,而且大概在依赖Ca2 +信号传导的其他类型的细胞中,单个细胞的几何形状也可能是亚细胞Ca2 +信号传导的重要决定因素。此外,与不同的亚细胞Ca2 +释放模式相结合的细胞几何形状可以极大地影响Ca(2+)激活膜电流的时间过程。

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