Department of Biology, University of Padova, Via U. Bassi 58/B, 35131 Padova, Italy.
National Research Council, Institute of Condensed Matter Chemistry and Technologies for Energy (CNR-ICMATE), Corso Stati Uniti 4, 35127 Padova, Italy.
Int J Mol Sci. 2022 Sep 15;23(18):10752. doi: 10.3390/ijms231810752.
Non-thermal plasma technology is increasingly being applied in the plant biology field. Despite the variety of beneficial effects of plasma-activated water (PAW) on plants, information about the mechanisms of PAW sensing by plants is still limited. In this study, in order to link PAW perception to the positive downstream responses of plants, transgenic seedlings expressing the Ca-sensitive photoprotein aequorin in the cytosol were challenged with water activated by low-power non-thermal plasma generated by a dielectric barrier discharge (DBD) source. PAW sensing by plants resulted in the occurrence of cytosolic Ca signals, whose kinetic parameters were found to strictly depend on the operational conditions of the plasma device and thus on the corresponding mixture of chemical species contained in the PAW. In particular, we highlighted the effect on the intracellular Ca signals of low doses of DBD-PAW chemicals and also presented the effects of consecutive plant treatments. The results were discussed in terms of the possibility of using PAW-triggered Ca signatures as benchmarks to accurately modulate the chemical composition of PAW in order to induce environmental stress resilience in plants, thus paving the way for further applications in agriculture.
非热等离子体技术在植物生物学领域的应用日益广泛。尽管等离子体激活水(PAW)对植物有多种有益影响,但关于植物感知 PAW 的机制的信息仍然有限。在这项研究中,为了将 PAW 的感知与植物的正向下游反应联系起来,用在细胞质中表达钙敏感发光蛋白水母素的转基因 幼苗来挑战由介质阻挡放电(DBD)源产生的低功率非热等离子体激活的水。植物对 PAW 的感知导致了细胞质 Ca 信号的发生,其动力学参数被发现严格依赖于等离子体设备的操作条件,因此也依赖于 PAW 中所含化学物质的相应混合物。特别是,我们强调了 DBD-PAW 化学物质的低剂量对细胞内 Ca 信号的影响,还介绍了连续植物处理的影响。结果从使用 PAW 触发的 Ca 特征作为基准的可能性方面进行了讨论,以便准确调节 PAW 的化学成分,从而诱导植物对环境胁迫的恢复力,为在农业中的进一步应用铺平道路。