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Inhibition of the Gravitropic Response of Snapdragon Spikes by the Calcium-Channel Blocker Lanthanum Chloride1

机译:抑制金鱼草尖峰的重力响应。 钙通道阻滞剂氯化镧1

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摘要

The putative Ca2+-channel blocker LaCl3 prevented the gravitropic bending of cut snapdragon (Antirrhinum majus L.) spikes (S. Philosoph-Hadas, S. Meir, I. Rosenberger, A.H. Halevy [1996] Plant Physiol 110: 301–310) and inhibited stem curvature to a greater extent than vertical and horizontal stem elongation at the bending zone. This might indicate that LaCl3, which modulates cytosolic Ca2+, does not influence general stem-growth processes but may specifically affect other gravity-associated processes occurring at the stem-bending zone. Two such specific gravity-dependent events were found to occur in the bending zone of snapdragon spikes: sedimentation of starch-containing chloroplasts at the bottom of stem cortex cells, as seen in cross-sections, and establishment of an ethylene gradient across the stem. Our results show that the lateral sedimentation of chloroplasts associated with gravity sensing was prevented in cross-sections taken from the bending zone of LaCl3-treated and subsequently gravistimulated spikes and that LaCl3 completely prevented the gravity-induced, asymmetric ethylene production established across the stem-bending zone. These data indicate that LaCl3 inhibits stem curvature of snapdragon spikes by preventing several gravity-dependent processes. Therefore, we propose that the gravitropic response of shoots could be mediated through a Ca2+-dependent pathway involving modulation of cytosolic Ca2+ at various stages.
机译:假定的Ca2 +通道阻滞剂LaCl3阻止了切成金鱼草(Antirrhinum majus L.)穗的重力弯曲(S. Philosoph-Hadas,S. Meir,I. Rosenberger,AH Halevy [1996] Plant Physiol 110:301-310)和与在弯曲区域垂直和水平延伸的茎相比,抑制茎弯曲的程度更大。这可能表明调节细胞质Ca2 +的LaCl3不会影响一般的茎生长过程,但可能会特别影响茎弯曲区发生的其他与重力相关的过程。发现在金鱼草尖峰的弯曲区域中发生了两个这样的比重相关事件:横截面中所见,茎皮层细胞底部的含淀粉叶绿体沉淀,并且在茎上建立了乙烯梯度。我们的结果表明,在从LaCl3处理的弯折区域(随后进行了重力重刺)的弯曲区域截取的横截面中,防止了与重力感应相关的叶绿体的侧向沉降,并且LaCl3完全防止了重力诱导的,贯穿茎杆的不对称乙烯生成。弯曲区。这些数据表明,LaCl3通过阻止几种依赖于重力的过程而抑制了金鱼草尖茎的曲率。因此,我们建议可以通过Ca 2+依赖性途径介导芽的重力反应,该途径涉及在各个阶段调节胞质Ca 2+。

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