Institute of Biology, Biotechnology and Environmental Protection, Faculty of Natural Sciences, University of Silesia in Katowice, 28 Jagiellońska St, 40-032, Katowice, Poland.
BMC Plant Biol. 2022 Aug 3;22(1):389. doi: 10.1186/s12870-022-03778-4.
In this study, we investigated the effect of an electric field, with an intensity similar to that of the Earth's field, on plant cells growth. The molecular mechanism underlying this effect remains unclear.
It was found that the electric field, depending on the applied voltage, its duration and the polarization of the maize seedlings, stimulated or inhibited the growth of the seedling organs (root, mesocotyl and coleoptile). Moreover, it was also noticed that the gravitropic response of maize seedlings was inhibited at all voltages studied. Simultaneous measurements of growth and external medium pH show that auxin(IAA, indole-3-acetic acid)- and fusicoccin(FC)-induced elongation growth and proton extrusion of maize coleoptile segments were significantly inhibited at higher voltages. The ionic current flowing through the single coleoptile segment during voltage application was 1.7-fold lower in segments treated with cation channel blocker tetraethylammonium chloride (TEA-Cl) and 1.4-fold higher with IAA compared to the control. The electrophysiological experiments show that the electric field caused the depolarization of the membrane potential of parenchymal coleoptile cells, which was not reversible over 120 min.
It is suggested that a DC electric field inhibits the plasma membrane H pump activity and K uptake through voltage-dependent, inwardly rectifying ZMK1 channels (Zea mays K channel 1). The data presented here are discussed, taking into account the "acid growth hypothesis" of the auxin action and the mechanism of gravitropic response induction.
在这项研究中,我们研究了类似于地球磁场强度的电场对植物细胞生长的影响。其背后的分子机制尚不清楚。
研究发现,电场根据所施加的电压、持续时间和玉米幼苗的极化,刺激或抑制了幼苗器官(根、中胚轴和胚芽鞘)的生长。此外,还注意到,在所有研究的电压下,玉米幼苗的向重力性反应均受到抑制。生长和外部介质 pH 的同步测量表明,在较高的电压下,生长素(IAA,吲哚-3-乙酸)和肿柄菊素(FC)诱导的玉米胚芽鞘段伸长生长和质子外排明显受到抑制。与对照相比,在用阳离子通道阻断剂四乙铵(TEA-Cl)处理的片段中,在施加电压期间流过单个胚芽鞘片段的离子电流降低了 1.7 倍,而用 IAA 处理的片段则升高了 1.4 倍。电生理实验表明,电场导致薄壁玉米胚芽鞘细胞的膜电位去极化,在 120 分钟内不可逆转。
研究认为,直流电场通过电压依赖性、内向整流 ZMK1 通道(玉米 K 通道 1)抑制质膜 H+泵的活性和 K+的摄取。考虑到生长素作用的“酸生长假说”和向重力性反应诱导的机制,本文讨论了所提出的数据。