4.7 Article

Plasma-Activated Water Triggers Rapid and Sustained Cytosolic Ca2+ Elevations in Arabidopsis thaliana

期刊

PLANTS-BASEL
卷 10, 期 11, 页码 -

出版社

MDPI
DOI: 10.3390/plants10112516

关键词

aequorin; Arabidopsis thaliana; calcium signalling; cytosolic Ca2+ changes; plasma-activated water; plasma torch; reactive oxygen species; reactive nitrogen species

资金

  1. University of Padova, Italy, PRID 2018 [BIRD180317]
  2. University of Padova, Italy, DOR 2018-2021
  3. P-DiSC [02BIRD2019-UNIPD]
  4. Department of Biology, University of Padova, Italy (MIUR Excellence Department Project 2018)

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This study analyzed the signaling mechanisms underlying plant response to plasma-activated water (PAW), revealing that PAW can induce rapid and sustained elevations of cytosolic Ca2+ in Arabidopsis seedlings, with the dynamics of the changes depending on various parameters. The unique mixture of reactive chemical species in PAW was found to be responsible for the specific Ca2+ signatures, as separate administration of nitrate, nitrite, and hydrogen peroxide did not trigger detectable Ca2+ changes. Understanding the plant perception of PAW may enable fine-tuning for agricultural applications, potentially leading to more sustainable agriculture.
Increasing evidence indicates that water activated by plasma discharge, termed as plasma-activated water (PAW), can promote plant growth and enhance plant defence responses. Nevertheless, the signalling pathways activated in plants in response to PAW are still largely unknown. In this work, we analysed the potential involvement of calcium as an intracellular messenger in the transduction of PAW by plants. To this aim, Arabidopsis thaliana (Arabidopsis) seedlings stably expressing the bioluminescent Ca2+ reporter aequorin in the cytosol were challenged with PAW generated by a plasma torch. Ca2+ measurement assays demonstrated the induction by PAW of rapid and sustained cytosolic Ca2+ elevations in Arabidopsis seedlings. The dynamics of the recorded Ca2+ signals were found to depend upon different parameters, such as the operational conditions of the torch, PAW storage, and dilution. The separate administration of nitrate, nitrite, and hydrogen peroxide at the same doses as those measured in the PAW did not trigger any detectable Ca2+ changes, suggesting that the unique mixture of different reactive chemical species contained in the PAW is responsible for the specific Ca2+ signatures. Unveiling the signalling mechanisms underlying plant perception of PAW may allow to finely tune its generation for applications in agriculture, with potential advantages in the perspective of a more sustainable agriculture.

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