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Wasko, P.

Publications and source records attributed to Wasko, P..

2 recordsLinked to original sources

Rapid propagation of Ca2+ waves and electrical signals in a liverwort Marchantia polymorpha

In response to both biotic and abiotic stresses, vascular plants transmit long-distance Ca2+ and electrical signals from localized stress sites to distant tissues through their vasculature. Various models have been proposed for the mechanisms underlying the long-distance signaling, primarily centered around the presence of vascular bundles. We here demonstrate that the non-vascular liverwort Marchantia polymorpha possesses a mechanism for propagating Ca2+ waves and electrical signals in response to wounding. The propagation velocity of these signals was approximately 1-2 mm/s, equivalent to that observed in vascular plants. Both Ca2+ waves and electrical signals were inhibited by La3+ as well as tetraethylammonium chloride, suggesting crucial importance of both Ca2+ channel(s) and K+ channel(s) in wound-induced membrane depolarization as well as the subsequent long-distance signal propagation. Simultaneous recordings of Ca2+ and electrical signals indicated a tight coupling between the dynamics of these two signaling modalities. Furthermore, molecular genetic studies revealed that a GLUTAMATE RECEPTOR-LIKE (GLR) channel plays a central role in the propagation of both Ca2+ waves and electrical signals. Conversely, none of the three two-pore channels (TPCs) were implicated in either signal propagation. These findings shed light on the evolutionary conservation of rapid long-distance Ca2+ wave and electrical signal propagation involving GLRs in land plants, even in the absence of vascular tissue.

plant biology↗

Long-Distance Electrical and Calcium Signals Evoked by Hydrogen Peroxide in Physcomitrella

Electrical and calcium signals in plants are one of the basic carriers of information transmitted over a long distance. Together with reactive oxygen species (ROS) waves, electrical and calcium signals can participate in cell-to-cell signaling, conveying information about different stimuli, e.g. abiotic stress, pathogen infection, or mechanical injury. There is no information on the ability of ROS to evoke systemic electrical or calcium signals in the model moss Physcomitrella and on the relationships between these responses. Here, we show that external application of hydrogen peroxide evokes electrical signals in the form of long-distance changes in the membrane potential, which transmit through the plant instantly after stimulation. The responses were calcium dependent, since their generation was inhibited by lanthanum, a calcium channel inhibitor (2 mM) or EDTA, a calcium chelator (0.5 mM). The electrical signals were partially dependent on glutamate receptor ion channels (GLR), since the knockout of GLR genes only slightly reduced the amplitude of the responses. The basal part of the gametophyte, which is rich in protonema cells, was the most sensitive to hydrogen peroxide. The measurements carried out on the protonema expressing fluorescent calcium biosensor GCaMP3 proved that. We also demonstrate upregulation of a stress-related gene which appears in a distant section of the moss 8 minutes after H2O2 treatment. The results help to understand the importance of both types of signals in the transmission of information about the appearance of ROS in the plant cell apoplast.

plant biology↗