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Pires, G. S.

Publications and source records attributed to Pires, G. S..

2 recordsLinked to original sources

Xylem sap residue in cut-open conduits can affect gas discharge in pneumatic experiments

O_LIConsiderable progress has been made in understanding the mechanisms of embolism formation based on the pneumatic method, which relies on gas discharge measurements. Here, we test the assumption that cut-open conduits are gas-filled when samples are cut at high water potentials. C_LIO_LIWe performed vulnerability curves (VC) with the Pneumatron and analysed sap extraction from cut-open vessels in Citrus branches, while the optical method was applied as a reference method. VCs of 11 additional angiosperms were analysed to generalise our findings. C_LIO_LIWe found an increase in gas discharge during early stages of dehydration, which affected the VC of Citrus. Xylem sap was not absorbed immediately by surrounding tissue in cut Citrus branches. The gas amount discharged increased until all sap residue was absorbed, which was near the turgor loss point. By analysing the slope of VCs, we could correct pneumatic VC, as evidenced by the strong agreement in embolism resistance between the pneumatic and the optical method. C_LIO_LISince residual sap in cut-open conduits of some species could slightly reduce embolism resistance in some species, we propose to apply an easy correction for this novel artefact. Automated measurements with a Pneumatron are also required because of its high time resolution. C_LI

plant biology↗

Dynamic changes in gas solubility of xylem sap reiterate the enigma of plant water transport under negative pressure

Despite a long research history, we do not fully understand why plants are able to transport xylem sap under negative pressure without constant failure. Microbubble formation via direct gas entry is assumed to cause hydraulic failure, while the concentration of gas dissolved in xylem sap is traditionally supposed to be constant, following Henrys law. Here, the concentration of soluble gas in xylem sap was estimated in vivo using well-watered Citrus plants under varying levels of air temperature and photoperiodic exposure, and compared to modelled data. The gas concentration in xylem sap showed non-equilibrium curves, with a minimum over- or undersaturation of 5% compared to gas solubility based on Henrys law. A similar diurnal pattern was obtained from the gas concentration in the cut-open conduits and discharge tube, and oversolubility was strongly associated with decreasing xylem water potentials during transpiration. Although our model did not explain the daily changes in gas solubility for an anisobaric situation, oversolubility characterises nanoconfined liquids, such as sap inside cell walls. Thus, plants are able to transport sap under negative pressure with relatively high amounts of dissolved gas, providing them with a buffering capacity to prevent hydraulic failure, despite diurnal changes in pressure and temperature.

plant biology↗