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Vinet, P.

Publications and source records attributed to Vinet, P..

2 recordsLinked to original sources

Spatiotemporal Analysis Reveals Mechanisms Controlling Reactive Oxygen Species and Calcium Interplay Following Root Compression

Mechanical stimulation of the root triggers signal transduction involving Reactive Oxygen Species (ROS) and calcium, but their relationships are unclear. This study aims to clarify the temporal and spatial interrelations between calcium and ROS following a localized lateral compression of the root. We combined a microfluidic valve rootchip to apply controlled compression, with fluorescent probes and wide-field or confocal microscopy to monitor H2O2 and calcium dynamics in root tissues simultaneously. Pharmacological inhibitors were used to investigate the causal links between H2O2 and calcium responses. In response to compression, we observed transient H2O2 accumulation, with characteristics similar to the calcium response observed previously in the same microfluidic system. H2O2 and calcium response occurred in 3 kinetic phases: a fast calcium increase relying on mechanosensitive channels and external calcium entry, followed by a long-lasting H2O2 accumulation and a slow calcium increase depending on NADPH oxidase activity. H2O2 accumulated in all root tissues while calcium increases were confined to the root center. These results suggest that two mechanotransduction mechanisms are involved in root response to compression. One mechanism relies on plasma membrane mechanosensitive channels, triggering a fast calcium increase. Another independent mechanism, relying on FERONIA, induces H2O2 accumulation, which drives the slower secondary calcium increase.

plant biology↗

Local compression of the root in a microfluidic device triggers a calcium signal

Throughout their life, plant root are submitted to mechanical stresses due to pressure exerted by the soil. So far, few studies addressed root cell deformation and calcium signaling elicited by soil compression. In this study, we designed a microchip inspired by pneumatic microvalve concept in order to deliver a lateral pressure to the root of a plant expressing the RGECO1-mTurquoise calcium reporter. Lateral pressure applied on the root induced a moderate elastic deformation of root cortical cells and elicited a multicomponent calcium signal at the onset of the pressure pulse, followed by a second one at the release of the pressure. This indicates that straining rather than stressing of tissues is relevant to trigger the calcium signal. The calcium elevation was restricted to the tissue under pressure and did not propagate. Additionally, the calcium signals exhibited a remarkable attenuation upon repetitive stimulations. Highlights- A microvalve concept mimicking lateral soil pressure was developed. - Non-damaging lateral compression of the root induces an elastic deformation of cortical cells. - A multicomponent calcium signal is elicited at the onset of a pressure pulse and upon release of the pressure. - Straining rather than stressing of tissues is relevant to trigger the calcium signal. - The calcium signal is localized at the tissue under pressure and does not propagate. - Calcium signals exhibit a remarkable attenuation upon repetitive stimulations.

plant biology↗