4.7 Article

Spatially and temporally distinct Ca2+ changes in Lotus japonicus roots orient fungal-triggered signalling pathways towards symbiosis or immunity

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JOURNAL OF EXPERIMENTAL BOTANY
卷 -, 期 -, 页码 -

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OXFORD UNIV PRESS
DOI: 10.1093/jxb/erad360

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Aequorin; arbuscular mycorrhizal symbiosis; calcium; cameleon; chitin oligomers; fungal signals; Lotus japonicus; plant immunity; root-microbe interactions

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This study reveals that plants activate immune or symbiotic responses depending on the signals detected from root-interacting microbes. Ca2+ plays a central role as a mediator in the early signal transduction cascades. The research shows that plants exhibit dual Ca2+ responses to chitin-derived fungal elicitors, depending on the genetic backgrounds. The expression of immunity marker genes is correlated with Ca2+ changes and elicitor concentration.
Plants activate an immune or symbiotic response depending on the detection of distinct signals from root-interacting microbes. Both signalling cascades involve Ca2+ as a central mediator of early signal transduction. In this study, we combined aequorin- and cameleon-based methods to dissect the changes in cytosolic and nuclear Ca2+ concentration caused by different chitin-derived fungal elicitors in Lotus japonicus roots. Our quantitative analyses highlighted the dual character of the evoked Ca2+ responses taking advantage of the comparison between different genetic backgrounds: an initial Ca2+ influx, dependent on the LysM receptor CERK6 and independent of the common symbiotic signalling pathway (CSSP), is followed by a second CSSP-dependent and CERK6-independent phase, that corresponds to the well-known perinuclear/nuclear Ca2+ spiking. We show that the expression of immunity marker genes correlates with the amplitude of the first Ca2+ change, depends on elicitor concentration, and is controlled by Ca2+ storage in the vacuole. Our findings provide an insight into the Ca2+-mediated signalling mechanisms discriminating plant immunity- and symbiosis-related pathways in the context of their simultaneous activation by single fungal elicitors.

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