Masi E, Ciszak M, Stefano G, Renna L, Azzarello E, Pandolfi C, Mugnai S, Baluska F, Arecchi F T, Mancuso S
Department of Horticulture, International Laboratory of Plant Neurobiology, University of Florence, Viale delle idee 30, 50019 Sesto Fiorentino (FI), Italy.
Proc Natl Acad Sci U S A. 2009 Mar 10;106(10):4048-53. doi: 10.1073/pnas.0804640106. Epub 2009 Feb 20.
The study of electrical network systems, integrated with chemical signaling networks, is becoming a common trend in contemporary biology. Classical techniques are limited to the assessment of signals from doublets or triplets of cells at a fixed temporal bin width. At present, full characteristics of the electrical network distribution and dynamics in plant cells and tissues has not been established. Here, a 60-channels multielectrode array (MEA) is applied to study spatiotemporal characteristics of the electrical network activity of the root apex. Both intense spontaneous electrical activities and stimulation-elicited bursts of locally propagating electrical signals have been observed. Propagation of the spikes indicates the existence of excitable traveling waves in plants, similar to those observed in non-nerve electrogenic tissues of animals. Obtained data reveal synchronous electric activities of root cells emerging in a specific root apex region. The dynamic electrochemical activity of root apex cells is proposed to continuously integrate internal and external signaling for developmental adaptations in a changing environment.
将电网系统与化学信号网络相结合进行研究,正成为当代生物学的一种普遍趋势。传统技术仅限于在固定的时间间隔宽度下评估来自双细胞或三细胞信号。目前,尚未确定植物细胞和组织中电网分布及动态的完整特征。在此,应用60通道多电极阵列(MEA)来研究根尖电网活动的时空特征。观察到了强烈的自发电活动以及刺激引发的局部传播电信号爆发。尖峰的传播表明植物中存在可兴奋行波,类似于在动物的非神经电生组织中观察到的行波。获得的数据揭示了在特定根尖区域出现的根细胞同步电活动。根尖细胞的动态电化学活动被认为可在不断变化的环境中持续整合内部和外部信号,以实现发育适应。