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Concurrent measurements of change in the bark and xylem diameters of trees reveal a phloem‐generated turgor signal
Author(s) -
Mencuccini Maurizio,
Hölttä Teemu,
Sevanto Sanna,
Nikinmaa Eero
Publication year - 2013
Publication title -
new phytologist
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 3.742
H-Index - 244
eISSN - 1469-8137
pISSN - 0028-646X
DOI - 10.1111/nph.12224
Subject(s) - phloem , turgor pressure , xylem , bark (sound) , botany , photosynthesis , hydraulic conductivity , stomatal conductance , biology , ecology , soil water
Summary Currently, phloem transport in plants under field conditions is not well understood. This is largely the result of the lack of techniques suitable for the measurement of the physiological properties of phloem. We present a model that interprets the changes in xylem diameter and live bark thickness and separates the components responsible for such changes. We test the predictions from this model on data from three mature Scots pine trees in Finland. The model separates the live bark thickness variations caused by bark water capacitance from a residual signal interpreted to indicate the turgor changes in the bark. The predictions from the model are consistent with processes related to phloem transport. At the diurnal scale, this signal is related to patterns of photosynthetic activity and phloem loading. At the seasonal scale, bark turgor showed rapid changes during two droughts and after two rainfall events, consistent with physiological predictions. Daily cumulative totals of this turgor term were related to daily cumulative totals of canopy photosynthesis. Finally, the model parameter representing radial hydraulic conductance between phloem and xylem showed a temperature dependence consistent with the temperature‐driven changes in water viscosity. We propose that this model has potential for the continuous field monitoring of tree phloem function.

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