Monshausen Gabriele B, Sievers Andreas
Botanisches Institut I, Universität Bonn, Venusbergweg 22, 53115 Bonn, Germany.
Planta. 2002 Oct;215(6):980-8. doi: 10.1007/s00425-002-0880-8. Epub 2002 Sep 5.
While there is ample evidence for a role of auxin in root gravitropism, the seeming rapidity of gravi-induced changes in electrical parameters has so far been an argument against auxin being a primary signal in gravitropic signal transmission. To address this problem, we re-investigated the effect of gravistimulation on membrane voltages of Lepidium sativum L. and Vigna mungo L. root cells. In our hands, gravistimulation did not induce changes in membrane voltage in cells of the root cap statenchyma, root meristem or apical elongation zone that can be correlated with the orientation of the cells relative to the gravity vector. While these results challenge a model of rapid electrically based signal transmission, there is evidence for a slower signal propagation along gravistimulated L. sativum roots. Using multiple proton-selective microelectrodes to simultaneously measure surface pH on opposite root flanks at different distances from the root tip, we observed gravi-induced asymmetric pH changes at the surface of all investigated root zones. Upon gravistimulation, the surface pH decreased on the physically upper root flank and increased on the lower flank. The pH asymmetry appeared first [2.1+/-0.4 min (mean +/- SD) after tilting] at the root cap and then - with incrementing lag times - at the meristem (after 2.5+/-0.3 min at 300 micro m from root tip; after 3.7+/-0.4 min at 700 micro m) and apical elongation zone (4.8+/-0.5 min at 1,000 micro m), suggesting a basipetal progression of differential surface acidification at a rate of 250-350 micro m min(-1), consistent with reported auxin transport rates.
虽然有充分证据表明生长素在根的向地性中起作用,但重力诱导的电参数变化似乎很快,这一现象一直被用作反对生长素是向地性信号传递中的主要信号的论据。为了解决这个问题,我们重新研究了重力刺激对独行菜和绿豆根细胞膜电压的影响。在我们的实验中,重力刺激并未在根冠平衡细胞、根分生组织或顶端伸长区的细胞中诱导出与细胞相对于重力矢量的方向相关的膜电压变化。虽然这些结果对基于电的快速信号传递模型提出了挑战,但有证据表明沿重力刺激的独行菜根存在较慢的信号传播。我们使用多个质子选择性微电极同时测量根尖不同距离处相对根侧的表面pH值,观察到在所有研究的根区表面都存在重力诱导的不对称pH变化。重力刺激后,物理上侧的根表面pH值下降,下侧的pH值上升。pH不对称首先出现在根冠(倾斜后[2.1±0.4分钟(平均值±标准差)]),然后在分生组织(距根尖300μm处为2.5±0.3分钟后;700μm处为3.7±0.4分钟后)和顶端伸长区(1000μm处为4.8±0.5分钟后)出现,且滞后时间逐渐增加,这表明表面酸化差异以250 - 350μm每分钟的速度向基部推进,与报道的生长素运输速率一致。