Liu Ke, Zhang Bing Lin, Zhang Wen Ying, Zhang Yun Bo, Tian Xiao Hai
Hubei Collaborative Innovation Center for Grain Industry, Yangtze University, Jingzhou 434025, Hubei, China.
College of Agriculture, Yangtze University, Jingzhou 434025, Hubei, China.
Ying Yong Sheng Tai Xue Bao. 2018 Feb;29(2):678-686. doi: 10.13287/j.1001-9332.201802.028.
Non-invasive microsensing technique has been widely used in evaluating the adaptive responses of plant cells and tissues to abiotic stresses. One of the representative techniques is the microelectrode ion flux estimation (MIFE), which allows concurrent quantification of net fluxes with high spatial and temporal resolution. More importantly, this technique permits simultaneous recording of ion concentration and mobility with less intervention to the in situ physiological status. With the availability of such advanced technique, the last three decades have seen a significant progress towards the role of ion signaling in a variety of abiotic stresses including salinity, extreme temperature, osmotic stress, hypoxia, and drought. In this review, we gave a brief introduction of the MIFE working principles and focused on its applications in detecting ion responses to various abiotic stresses.
非侵入式微传感技术已广泛应用于评估植物细胞和组织对非生物胁迫的适应性反应。其中一项具有代表性的技术是微电极离子通量估算(MIFE),它能够以高时空分辨率同时定量净通量。更重要的是,该技术允许在对原位生理状态干预较少的情况下同时记录离子浓度和迁移率。随着这种先进技术的出现,在过去三十年里,离子信号在包括盐度、极端温度、渗透胁迫、缺氧和干旱等各种非生物胁迫中的作用取得了显著进展。在这篇综述中,我们简要介绍了MIFE的工作原理,并重点阐述了其在检测离子对各种非生物胁迫反应中的应用。