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PMID: 24661229 Published · ppublish English Letter

Recent advances in tree hydraulics highlight the ecological significance of the hydraulic safety margin.

The New phytologist ·Vol. 203 ·No. 2 ·2014-07-00 ·Pages 355-358

Delzon S, Cochard H

Abstract

暂无摘要

Keywords
cavitation climate change drought hydraulic safety margin tree mortality xylem refilling
MeSH Terms
Climate Change Droughts Trees/physiology Xylem/physiology
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Delzon Sylvain
INRA, University of Bordeaux, UMR BIOGECO, F-33450, Talence, France.
Cochard Hervé
INRA, Clermont University, UMR547 PIAF, F-63100, Clermont-Ferrand, France.
References (46)
46 references, click to expand
  1. Alder N, Pockman W, Sperry J, Nuismer S. 1997. Use of centrifugal force in the study of xylem cavitation. Journal of Experimental Botany 48: 665-674.
  2. Allen CD, Macalady AK, Chenchouni H, Bachelet D, McDowell N, Vennetier M, Kitzberger T, Rigling A, Breshears DD, Hogg E. 2010. A global overview of drought and heat-induced tree mortality reveals emerging climate change risks for forests. Forest Ecology and Management 259: 660-684.
  3. Anderegg WR, Berry JA, Smith DD, Sperry JS, Anderegg LD, Field CB. 2012. The roles of hydraulic and carbon stress in a widespread climate-induced forest die-off. Proceedings of the National Academy of Sciences, USA 109: 233-237.
  4. Barigah TS, Charrier O, Douris M, Bonhomme M, Herbette S, Améglio T, Fichot R, Brignolas F, Cochard H. 2013. Water stress-induced xylem hydraulic failure is a causal factor of tree mortality in beech and poplar. Annals of Botany 112: 1431-1437.
  5. Brodersen CR, McElrone AJ, Choat B, Lee EF, Shackel KA, Matthews MA. 2013. In vivo visualizations of drought-induced embolism spread in Vitis vinifera. Plant Physiology 161: 1820-1829.
  6. Brodersen CR, McElrone AJ, Choat B, Matthews MA, Shackel KA. 2010. The dynamics of embolism repair in xylem: in vivo visualizations using high-resolution computed tomography. Plant Physiology 154: 1088-1095.
  7. Brodribb TJ, Bowman D, Nichols S, Delzon S, Burlett R. 2010. Xylem function and growth rate interact to determine recovery rates after exposure to extreme water deficit. New Phytologist 188: 533-542.
  8. Brodribb TJ, Cochard H. 2009. Hydraulic failure defines the recovery and point of death in water-stressed conifers. Plant Physiology 149: 575-584.
  9. Canny M. 1997. Vessel contents during transpiration: embolisms and refilling. American Journal of Botany 84: 1223-1230.
  10. Choat B. 2013. Predicting thresholds of drought-induced mortality in woody plant species. Tree Physiology 33: 669-671.
  11. Choat B, Jansen S, Brodribb TJ, Cochard H, Delzon S, Bhaskar R, Bucci SJ, Feild TS, Gleason SM, Hacke UG et al. 2012. Global convergence in the vulnerability of forests to drought. Nature 491: 752-755.
  12. Christman MA, Sperry JS, Smith DD. 2012. Rare pits, large vessels and extreme vulnerability to cavitation in a ring-porous tree species. New Phytologist 193: 713-720.
  13. Cochard H. 2002. A technique for measuring xylem hydraulic conductance under high negative pressures. Plant, Cell & Environment 25: 815-819.
  14. Cochard H, Badel E, Herbette S, Delzon S, Choat B, Jansen S. 2013. Methods for measuring plant vulnerability to cavitation: a critical review. Journal of Experimental Botany 64: 4779-4791.
  15. Cochard H, Bodet C, Améglio T, Cruiziat P. 2000. Cryo-scanning electron microscopy observations of vessel content during transpiration in walnut petioles. Facts or artifacts? Plant Physiology 124: 1191-1202.
  16. Cochard H, Cruiziat P, Tyree MT. 1992. Use of positive pressures to establish vulnerability curves. Further support for the air-seeding hypothesis and implications for pressure-volume analysis. Plant Physiology 100: 205-209.
  17. Cochard H, Delzon S. 2013. Hydraulic failure and repair are not routine in trees. Annals of Forest Science 70: 659-661.
  18. Cochard H, Herbette S, Barigah T, Badel E, Ennajeh M, Vilagrosa A. 2010. Does sample length influence the shape of xylem embolism vulnerability curves? A test with the Cavitron spinning technique. Plant, Cell & Environment 33: 1543-1552.
  19. Delzon S, Douthe C, Sala A, Cochard H. 2010. Mechanism of water-stress induced cavitation in conifers: bordered pit structure and function support the hypothesis of seal capillary-seeding. Plant, Cell & Environment 33: 2101-2111.
  20. Engelbrecht BM. 2012. Plant ecology: forests on the brink. Nature 491: 675-677.
  21. Ennajeh M, Simões F, Khemira H, Cochard H. 2011. How reliable is the double-ended pressure sleeve technique for assessing xylem vulnerability to cavitation in woody angiosperms? Physiologia Plantarum 142: 205-210.
  22. Holbrook NM, Zwieniecki MA. 1999. Embolism repair and xylem tension: do we need a miracle? Plant Physiology 120: 7-10.
  23. Klein T, Yakir D, Buchmann N, Grünzweig JM. 2014. Towards an advanced assessment of the hydrological vulnerability of forests to climate change-induced drought. New Phytologist 201: 712-716.
  24. Kursar TA, Engelbrecht BM, Burke A, Tyree MT, Omari EI, B, Giraldo JP. 2009. Tolerance to low leaf water status of tropical tree seedlings is related to drought performance and distribution. Functional Ecology 23: 93-102.
  25. Lamy J-B, Bouffier L, Burlett R, Plomion C, Cochard H, Delzon S. 2011. Uniform selection as a primary force reducing population genetic differentiation of cavitation resistance across a species range. PLoS ONE 6: e23476.
  26. Lamy JB, Delzon S, Bouche PS, Alia R, Vendramin GG, Cochard H, Plomion C. 2013. Limited genetic variability and phenotypic plasticity detected for cavitation resistance in a Mediterranean pine. New Phytologist 201: 874-886.
  27. Maherali H, Pockman WT, Jackson RB. 2004. Adaptive variation in the vulnerability of woody plants to xylem cavitation. Ecology 85: 2184-2199.
  28. Martínez-Vilalta J, Cochard H, Mencuccini M, Sterck F, Herrero A, Korhonen J, Llorens P, Nikinmaa E, Nolè A, Poyatos R. 2009. Hydraulic adjustment of Scots pine across Europe. New Phytologist 184: 353-364.
  29. Martin-St Paul NK, Longepierre D, Huc R, Delzon S, Burlett R, Joffre R, Rambal S, Cochard H. 2014. How reliable are methods to assess xylem vulnerability to cavitation? The issue of “open vessel” artifact in oak. Tree Physiology, in press.
  30. McDowell NG. 2011. Mechanisms linking drought, hydraulics, carbon metabolism, and vegetation mortality. Plant Physiology 155: 1051-1059.
  31. McElrone A, Brodersen C, Alsina M, Drayton W, Matthews M, Shackel K, Wada H, Zufferey V, Choat B. 2012. Centrifuge technique consistently overestimates vulnerability to water stress-induced cavitation in grapevines as confirmed with high-resolution computed tomography. New Phytologist 196: 661-665.
  32. Meinzer FC, Johnson DM, Lachenbruch B, McCulloh KA, Woodruff DR. 2009. Xylem hydraulic safety margins in woody plants: coordination of stomatal control of xylem tension with hydraulic capacitance. Functional Ecology 23: 922-930.
  33. Plaut JA, Yepez EA, Hill J, Pangle R, Sperry JS, Pockman WT, McDowell NG. 2012. Hydraulic limits preceding mortality in a piñon-juniper woodland under experimental drought. Plant, Cell & Environment 35: 1601-1617.
  34. Rockwell FE, Wheeler JK, Holbrook NM. 2014. Cavitation and its discontents: opportunities for resolving current controversies. Plant Physiology. doi: http://dx.doi.org/10.1104/pp.113.233817.
  35. Salleo S, Lo Gullo M, Paoli D, Zippo M. 1996. Xylem recovery from cavitation-induced embolism in young plants of Laurus nobilis: a possible mechanism. New Phytologist 132: 47-56.
  36. Salleo S, Lo Gullo M, Trifilo P, Nardini A. 2004. New evidence for a role of vessel-associated cells and phloem in the rapid xylem refilling of cavitated stems of Laurus nobilis L. Plant, Cell & Environment 27: 1065-1076.
  37. Sperry J. 2013. Cutting-edge research or cutting-edge artifact? An overdue control experiment complicates the xylem refilling story. Plant, Cell & Environment 36: 1916-1918.
  38. Sperry JS, Christman MA, Torres-Ruiz JM, Taneda H, Smith DD. 2012. Vulnerability curves by centrifugation: is there an open vessel artefact, and are ‘r'shaped curves necessarily invalid? Plant, Cell & Environment 35: 601-610.
  39. Tobin MF, Pratt RB, Jacobsen AL, De Guzman ME. 2013. Xylem vulnerability to cavitation can be accurately characterised in species with long vessels using a centrifuge method. Plant Biology (Stuttgart, Germany) 15: 496-504.
  40. Torres-Ruiz JM, Cochard H, Mayr S, Beikircher B, Diaz-Espejo A, Rodriguez-Dominguez CM, Badel E, Fernández JE. 2014. Vulnerability to cavitation in Olea europaea current-year shoots: further evidence of an open-vessel artefact associated with centrifuge and air-injection techniques. Physiologia Plantarum. doi: 10.1111/ppl.12185.
  41. Tyree MT, Salleo S, Nardini A, Gullo MAL, Mosca R. 1999. Refilling of embolized vessels in young stems of laurel. Do we need a new paradigm? Plant Physiology 120: 11-22.
  42. Urli M, Porté AJ, Cochard H, Guengant Y, Burlett R, Delzon S. 2013. Xylem embolism threshold for catastrophic hydraulic failure in angiosperm trees. Tree Physiology 33: 672-683.
  43. Wang R, Zhang L, Zhang S, Cai J, Tyree MT. 2014. Water relations of Robinia pseudoacacia L.: do vessels cavitate and refill diurnally or are R-shaped curves invalid in Robinia? Plant, Cell & Environment. doi: 10.1111/pce.12315.
  44. Wheeler JK, Huggett BA, Tofte AN, Rockwell FE, Holbrook NM. 2013. Cutting xylem under tension or supersaturated with gas can generate PLC and the appearance of rapid recovery from embolism. Plant, Cell & Environment 36: 1938-1949.
  45. Zufferey V, Cochard H, Ameglio T, Spring J-L, Viret O. 2011. Diurnal cycles of embolism formation and repair in petioles of grapevine (Vitis vinifera cv. Chasselas). Journal of Experimental Botany 62: 3885-3894.
  46. Zwieniecki M, Holbrook N. 1998. Diurnal variation in xylem hydraulic conductivity in white ash (Fraxinus americana L.), red maple (Acer rubrum L.) and red spruce (Picea rubens Sarg.). Plant, Cell & Environment 21: 1173-1180.
Article Info
Journal
The New phytologist
Abbr.
New Phytol
ISSN
1469-8137
Published
2014-07-00
Epub
2014-00-24
Pages
355-358
Language
English
Region
England
NLM ID
9882884
Subset
IM
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