4.8 Article

Reversible Deformation of Transfusion Tracheids in Taxus baccata Is Associated with a Reversible Decrease in Leaf Hydraulic Conductance

期刊

PLANT PHYSIOLOGY
卷 165, 期 4, 页码 1557-1565

出版社

AMER SOC PLANT BIOLOGISTS
DOI: 10.1104/pp.114.243105

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资金

  1. Air Force Office of Sponsored Research [FA9550-09-1-0188]
  2. National Science Foundation [DMR-0820484]
  3. Sustainability Science Program at the Kennedy School of Government, Harvard University

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Declines in leaf hydraulic conductance (K-leaf) with increasing water stress have been attributed to cavitation of the leaf xylem. However, in the leaves of conifers, the reversible collapse of transfusion tracheids may provide an alternative explanation. Using Taxus baccata, a conifer species without resin, we developed a modified rehydration technique that allows the separation of declines in K-leaf into two components: one reversible and one irreversible upon relaxation of water potential to -1 MPa. We surveyed leaves at a range of water potentials for evidence of cavitation using cryo-scanning electron microscopy and quantified dehydration-induced structural changes in transfusion tracheids by cryo-fluorescence microscopy. Irreversible declines in K-leaf did not occur until leaf water potentials were more negative than -3 MPa. Declines in K-leaf between -2 and -3 MPa were reversible and accompanied by the collapse of transfusion tracheids, as evidenced by cryo-fluorescence microscopy. Based on cryo-scanning electron microscopy, cavitation of either transfusion or xylem tracheids did not contribute to declines in K-leaf in the reversible range. Moreover, the deformation of transfusion tracheids was quickly reversible, thus acting as a circuit breaker regulating the flux of water through the leaf vasculature. As transfusion tissue is present in all gymnosperms, the reversible collapse of transfusion tracheids may be a general mechanism in this group for the protection of leaf xylem from excessive loads generated in the living leaf tissue.

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