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New Phytol. 2004 Mar;161(3):715-722. doi: 10.1111/j.1469-8137.2004.00985.x.
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Microwave radiation alters burn injury-evoked electric potential in Nicotiana benthamiana.微波辐射改变本氏烟草中烧伤诱发的电势。
Plant Signal Behav. 2018;13(6):e1486145. doi: 10.1080/15592324.2018.1486145. Epub 2018 Jun 26.
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Electrical Signaling, Photosynthesis and Systemic Acquired Acclimation.电信号传导、光合作用与系统获得性驯化
Front Physiol. 2017 Sep 14;8:684. doi: 10.3389/fphys.2017.00684. eCollection 2017.
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Long-distance plant signaling pathways in response to multiple stressors: the gap in knowledge.响应多种应激源的长距离植物信号传导途径:知识空白
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Plants as environmental biosensors.植物作为环境生物传感器。
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Oscillations of electrical potential along a root of a higher plant.高等植物根中的电位波动。
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System potentials, a novel electrical long-distance apoplastic signal in plants, induced by wounding.系统电位是植物中一种由创伤诱导产生的新型电远距离质外体信号。
Plant Physiol. 2009 Mar;149(3):1593-600. doi: 10.1104/pp.108.133884. Epub 2009 Jan 7.
8
Electrical signals and their physiological significance in plants.植物中的电信号及其生理意义。
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Plant neurobiology: an integrated view of plant signaling.植物神经生物学:植物信号传导的综合观点
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Decrement and amplification of slow wave potentials during their propagation in Helianthus annuus L. shoots.向日葵茎中慢波电位传播过程中的衰减与放大
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电极插入会在植物中产生缓慢传播的电势。

Electrode insertion generates slow propagating electric potentials in plants.

机构信息

Graduate School of Science and Engineering, Saitama University, Saitama City, Japan.

出版信息

Plant Signal Behav. 2020 Mar 3;15(3):1734332. doi: 10.1080/15592324.2020.1734332. Epub 2020 Feb 26.

DOI:10.1080/15592324.2020.1734332
PMID:32100609
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7194371/
Abstract

The insertion of microelectrodes into plants to record electric potentials can generate electric potential responses due to disturbance of plant tissues. Here, the electric potential triggered by Ag/AgCl glass microelectrode insertion into the stele of (parrot feather) plants was recorded. A system potential was triggered upon the electrode insertion and was propagated along the stele of the stem. The microelectrode detected this electric potential that was triggered by its own insertion and the electric potential was identical among the plants assessed. The temporal variation in electric potential registered two prominent peaks at 31.9 ± 1.8 and 17.1 ± 4.3 mV. The electric potential was repolarized after approximately 50-70 min and the stabilized electric potential was 6.5 ± 2.5 mV higher than the initial electric potential of plants. Control experiments conducted using a non-biological spongy rod wetted with distilled water or 1 M KCl confirmed that the peaks were solely due to the electric potential in the stem. These signals can be recognized as system potentials. The systematic EP could develop stimuli responses in distant locations, which is to be tested in further studies.

摘要

将微电极插入植物以记录电势会因植物组织的干扰而产生电势响应。在这里,记录了 Ag/AgCl 玻璃微电极插入 (鹦鹉羽毛)植物木质部时引发的电势。电极插入时会引发系统电势,并沿着茎的木质部传播。微电极检测到自身插入引发的这种电势,并且在评估的植物中,电势是相同的。记录的电势随时间的变化在 31.9±1.8 和 17.1±4.3 mV 处有两个明显的峰值。大约 50-70 分钟后,电势会复极化,稳定的电势比植物的初始电势高 6.5±2.5 mV。使用湿润有蒸馏水或 1 M KCl 的非生物海绵棒进行的对照实验证实,这些峰值仅归因于茎中的电势。这些信号可以被识别为系统电势。系统 EP 可以在远处的位置产生刺激反应,这将在进一步的研究中进行测试。