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植物生物学中的微传感器:对无机分析物进行具有高空间和/或时间分辨率的体内可视化。

Microsensors in plant biology: in vivo visualization of inorganic analytes with high spatial and/or temporal resolution.

作者信息

Pedersen Ole, Revsbech Niels Peter, Shabala Sergey

机构信息

Department of Biology, University of Copenhagen, Denmark.

School of Agriculture and Environment, The University of Western Australia, Australia.

出版信息

J Exp Bot. 2020 Jul 6;71(14):3941-3954. doi: 10.1093/jxb/eraa175.

Abstract

This Expert View provides an update on the recent development of new microsensors, and briefly summarizes some novel applications of existing microsensors, in plant biology research. Two major topics are covered: (i) sensors for gaseous analytes (O2, CO2, and H2S); and (ii) those for measuring concentrations and fluxes of ions (macro- and micronutrients and environmental pollutants such as heavy metals). We show that application of such microsensors may significantly advance understanding of mechanisms of plant-environmental interaction and regulation of plant developmental and adaptive responses under adverse environmental conditions via non-destructive visualization of key analytes with high spatial and/or temporal resolution. Examples included cover a broad range of environmental situations including hypoxia, salinity, and heavy metal toxicity. We highlight the power of combining microsensor technology with other advanced biophysical (patch-clamp, voltage-clamp, and single-cell pressure probe), imaging (MRI and fluorescent dyes), and genetic techniques and approaches. We conclude that future progress in the field may be achieved by applying existing microsensors for important signalling molecules such as NO and H2O2, by improving selectivity of existing microsensors for some key analytes (e.g. Na, Mg, and Zn), and by developing new microsensors for P.

摘要

本专家观点介绍了新型微传感器的最新进展,并简要总结了现有微传感器在植物生物学研究中的一些新应用。涵盖两个主要主题:(i)用于气态分析物(氧气、二氧化碳和硫化氢)的传感器;(ii)用于测量离子(大量和微量营养素以及重金属等环境污染物)浓度和通量的传感器。我们表明,此类微传感器的应用可通过对关键分析物进行高空间和/或时间分辨率的无损可视化,显著推进对植物与环境相互作用机制以及植物在不利环境条件下发育和适应性反应调控的理解。所涵盖的示例包括广泛的环境情况,如缺氧、盐度和重金属毒性。我们强调了将微传感器技术与其他先进的生物物理技术(膜片钳、电压钳和单细胞压力探针)、成像技术(磁共振成像和荧光染料)以及遗传技术和方法相结合的作用。我们得出结论,该领域未来的进展可通过将现有微传感器应用于诸如一氧化氮和过氧化氢等重要信号分子、提高现有微传感器对某些关键分析物(如钠、镁和锌)的选择性以及开发用于磷的新型微传感器来实现。

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