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首页> 外文期刊>Plant physiology >Imaging of the Yellow Cameleon 3.6 indicator reveals that elevations in cytosolic Ca2+ follow oscillating increases in growth in root hairs of arabidopsis
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Imaging of the Yellow Cameleon 3.6 indicator reveals that elevations in cytosolic Ca2+ follow oscillating increases in growth in root hairs of arabidopsis

机译:黄色Cameleon 3.6指示剂的成像显示,拟南芥根毛生长的振荡增加后,胞质Ca2 +的升高

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In tip-growing cells, the tip-high Ca2+ gradient is thought to regulate the activity of components of the growth machinery, including the cytoskeleton, Ca2+-dependent regulatory proteins, and the secretory apparatus. In pollen tubes, both the Ca2+ gradient and cell elongation show oscillatory behavior, reinforcing the link between the two. We report that in growing root hairs of Arabidopsis ( Arabidopsis thaliana), an oscillating tip-focused Ca2+ gradient can be resolved through imaging of a cytosolically expressed Yellow Cameleon 3.6 fluorescence resonance energy transfer-based Ca2+ sensor. Both elongation of the root hairs and the associated tip-focused Ca2+ gradient show a similar dynamic character, oscillating with a frequency of 2 to 4 min(-1). Cross-correlation analysis indicates that the Ca2+ oscillations lag the growth oscillations by 5.3 +/- 0.3 s. However, growth never completely stops, even during the slow cycle of an oscillation, and the concomitant tip Ca2+ level is always slightly elevated compared with the resting Ca2+ concentration along the distal shaft, behind the growing tip. Artificially increasing Ca2+ using the Ca2+ ionophore A23187 leads to immediate cessation of elongation and thickening of the apical cell wall. In contrast, dissipating the Ca2+ gradient using either the Ca2+ channel blocker La3+ or the Ca2+ chelator EGTA is accompanied by an increase in the rate of cell expansion and eventual bursting of the root hair tip. These observations are consistent with a model in which the maximal oscillatory increase in cytosolic Ca2+ is triggered by cell expansion associated with tip growth and plays a role in the subsequent restriction of growth.
机译:在顶端生长的细胞中,顶端高的Ca2 +梯度被认为可调节生长机制各部分的活性,包括细胞骨架,Ca2 +依赖性调节蛋白和分泌装置。在花粉管中,Ca2 +梯度和细胞伸长均显示出振荡行为,从而加强了两者之间的联系。我们报告说,在生长的拟南芥(拟南芥)根毛中,可以通过细胞质表达的黄色喀麦隆3.6荧光共振能量转移基Ca 2+传感器的成像来解决振荡的尖端聚焦Ca 2+梯度。根毛的伸长和相关的尖端集中的Ca2 +梯度均显示出相似的动态特征,其振荡频率为2至4 min(-1)。互相关分析表明,Ca2 +振荡比生长振荡滞后5.3 +/- 0.3 s。但是,即使在缓慢的振荡周期中,生长也永远不会完全停止,与之相比,伴随着尖端的Ca2 +水平始终要比生长尖端后面的沿远端轴的静止Ca2 +浓度高。使用Ca2 +离子载体A23187人工增加Ca2 +会导致根细胞壁的伸长和增厚立即停止。相比之下,使用Ca2 +通道阻滞剂La3 +或Ca2 +螯合剂EGTA消散Ca2 +梯度会伴随细胞膨胀速率的增加和最终根尖的爆发。这些观察结果与一个模型一致,在该模型中,胞浆Ca2 +的最大振荡增加是由与尖端生长相关的细胞膨胀触发的,并且在随后的生长限制中起作用。

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