An inconvenient truth about xylem resistance to embolism in the model species for refilling Laurus nobilis L.
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Kathy Steppe | Sylvain Delzon | Hervé Cochard | Brendan Choat | Guillaume Charrier | Nicolas Martin-StPaul | Steven Jansen | Eric Badel | José M. Torres-Ruiz | Jan Bulcke | Régis Burlett | Timothy J. Brodribb | S. Jansen | B. Choat | T. Brodribb | K. Steppe | H. Cochard | N. Martin-StPaul | É. Badel | G. Gambetta | N. Lenoir | S. Delzon | Déborah Corso | L. Lamarque | J. Bulcke | R. Burlett | Gregory A. Gambetta | G. Charrier | Nicolas Lenoir | Ya Zhang | Laurent J. Lamarque | Déborah Corso | Andrew King | A. King | Ya Zhang | J. Torres‐Ruiz
[1] M. Peltoniemi,et al. Quantifying in situ phenotypic variability in the hydraulic properties of four tree species across their distribution range in Europe , 2018, PloS one.
[2] J. Wigneron,et al. The legacy of water deficit on populations having experienced negative hydraulic safety margin , 2018 .
[3] R. Tognetti,et al. Variation in xylem vulnerability to embolism in European beech from geographically marginal populations , 2018, Tree physiology.
[4] C. van Leeuwen,et al. Drought will not leave your glass empty: Low risk of hydraulic failure revealed by long-term drought observations in world’s top wine regions , 2018, Science Advances.
[5] Storage Compartments for Capillary Water Rarely Refill in an Intact Woody Plant1[OPEN] , 2017, Plant Physiology.
[6] S. Jansen,et al. Bordered pits in xylem of vesselless angiosperms and their possible misinterpretation as perforation plates. , 2017, Plant, cell & environment.
[7] J. Domec,et al. Leaf mortality and a dynamic hydraulic safety margin prevent significant stem embolism in the world's top wine regions during drought. , 2017 .
[8] H. Cochard,et al. Plant resistance to drought depends on timely stomatal closure. , 2017, Ecology letters.
[9] Sylvain Delzon,et al. Aridity drove the evolution of extreme embolism resistance and the radiation of conifer genus Callitris. , 2017, The New phytologist.
[10] Sylvain Delzon,et al. Xylem resistance to embolism: presenting a simple diagnostic test for the open vessel artefact. , 2017, The New phytologist.
[11] B. Choat,et al. Visualization of xylem embolism by X-ray microtomography: a direct test against hydraulic measurements. , 2017, The New phytologist.
[12] B. Choat,et al. Casting light on xylem vulnerability in an herbaceous species reveals a lack of segmentation. , 2017, The New phytologist.
[13] Michael Dorman,et al. A synthesis of radial growth patterns preceding tree mortality , 2017, Global change biology.
[14] N. Holbrook,et al. Stomatal Closure, Basal Leaf Embolism, and Shedding Protect the Hydraulic Integrity of Grape Stems1[OPEN] , 2017, Plant Physiology.
[15] A. Nardini,et al. X-ray microtomography observations of xylem embolism in stems of Laurus nobilis are consistent with hydraulic measurements of percentage loss of conductance. , 2017, The New phytologist.
[16] L. Sack,et al. Leaf vein xylem conduit diameter influences susceptibility to embolism and hydraulic decline. , 2017, The New phytologist.
[17] Maurizio Mencuccini,et al. Direct observation and modelling of embolism spread between xylem conduits: a case study in Scots pine. , 2016, Plant, cell & environment.
[18] V. Lieffers,et al. Drought-induced xylem pit membrane damage in aspen and balsam poplar. , 2016, Plant, cell & environment.
[19] A. King,et al. Tomography and imaging at the PSICHE beam line of the SOLEIL synchrotron. , 2016, The Review of scientific instruments.
[20] Sylvain Delzon,et al. Evidence for Hydraulic Vulnerability Segmentation and Lack of Xylem Refilling under Tension1[OPEN] , 2016, Plant Physiology.
[21] C. Windt,et al. Grapevine petioles are more sensitive to drought induced embolism than stems: evidence from in vivo MRI and microcomputed tomography observations of hydraulic vulnerability segmentation. , 2016, Plant, cell & environment.
[22] S. Jansen,et al. INTERVESSEL PIT MEMBRANE THICKNESS AS A KEY DETERMINANT OF EMBOLISM RESISTANCE IN ANGIOSPERM XYLEM , 2016 .
[23] H. Cochard,et al. Indirect Evidence for Genetic Differentiation in Vulnerability to Embolism in Pinus halepensis , 2016, Front. Plant Sci..
[24] Low intra-tree variability in resistance to embolism in four Pinaceae species , 2016, Annals of Forest Science.
[25] Cho‐ying Huang,et al. When a Tree Dies in the Forest: Scaling Climate-Driven Tree Mortality to Ecosystem Water and Carbon Fluxes , 2016, Ecosystems.
[26] A. McElrone,et al. In Situ Visualization of the Dynamics in Xylem Embolism Formation and Removal in the Absence of Root Pressure: A Study on Excised Grapevine Stems1[OPEN] , 2016, Plant Physiology.
[27] T. Brodribb,et al. Revealing catastrophic failure of leaf networks under stress , 2016, Proceedings of the National Academy of Sciences.
[28] Sylvain Delzon,et al. Are needles of Pinus pinaster more vulnerable to xylem embolism than branches? New insights from X-ray computed tomography. , 2016, Plant, cell & environment.
[29] S. Jansen,et al. How adaptable is the hydraulic system of European beech in the face of climate change-related precipitation reduction? , 2016, The New phytologist.
[30] T. Brodribb,et al. Visual quantification of embolism reveals leaf vulnerability to hydraulic failure. , 2016, The New phytologist.
[31] Sylvain Delzon,et al. Noninvasive Measurement of Vulnerability to Drought-Induced Embolism by X-Ray Microtomography1 , 2015, Plant Physiology.
[32] Nate G. McDowell,et al. On underestimation of global vulnerability to tree mortality and forest die-off from hotter drought in the Anthropocene , 2015 .
[33] F. Biondi,et al. Pervasive drought legacies in forest ecosystems and their implications for carbon cycle models , 2015, Science.
[34] T. Brodribb,et al. Extreme Aridity Pushes Trees to Their Physical Limits1 , 2015, Plant Physiology.
[35] A. Jacobsen,et al. Excising stem samples underwater at native tension does not induce xylem cavitation. , 2015, Plant, cell & environment.
[36] N. Diffenbaugh,et al. Anthropogenic warming has increased drought risk in California , 2015, Proceedings of the National Academy of Sciences.
[37] S. Jansen,et al. Current controversies and challenges in applying plant hydraulic techniques: International Workshop on Plant Hydraulic Techniques, Ulm University, Germany, September 2014. , 2015, The New phytologist.
[38] E Badel,et al. X-ray microtomography (micro-CT): a reference technology for high-resolution quantification of xylem embolism in trees. , 2015, Plant, cell & environment.
[39] J. Sperry,et al. The standard centrifuge method accurately measures vulnerability curves of long-vesselled olive stems. , 2015, The New phytologist.
[40] J. Lamy,et al. The high vulnerability of Quercus robur to drought at its southern margin paves the way for Quercus ilex , 2015, Plant Ecology.
[41] M. Tyree,et al. Water relations of Robinia pseudoacacia L.: do vessels cavitate and refill diurnally or are R-shaped curves invalid in Robinia? , 2014, Plant, cell & environment.
[42] Sylvain Delzon,et al. Direct X-Ray Microtomography Observation Confirms the Induction of Embolism upon Xylem Cutting under Tension1 , 2014, Plant Physiology.
[43] A. Nardini,et al. Relax and refill: xylem rehydration prior to hydraulic measurements favours embolism repair in stems and generates artificially low PLC values. , 2014, Plant, cell & environment.
[44] Hervé Cochard,et al. Vulnerability to cavitation in Olea europaea current-year shoots: further evidence of an open-vessel artifact associated with centrifuge and air-injection techniques. , 2014, Physiologia plantarum.
[45] S. Rambal,et al. How reliable are methods to assess xylem vulnerability to cavitation? The issue of 'open vessel' artifact in oaks. , 2014, Tree physiology.
[46] Sylvain Delzon,et al. Recent advances in tree hydraulics highlight the ecological significance of the hydraulic safety margin. , 2014, The New phytologist.
[47] N. Holbrook,et al. Cavitation and Its Discontents: Opportunities for Resolving Current Controversies1[C] , 2014, Plant Physiology.
[48] Sylvain Delzon,et al. Limited genetic variability and phenotypic plasticity detected for cavitation resistance in a Mediterranean pine. , 2014, The New phytologist.
[49] A. Nardini,et al. Coping with drought-induced xylem cavitation: coordination of embolism repair and ionic effects in three Mediterranean evergreens. , 2014, Tree physiology.
[50] D. Bowman,et al. Conservative water management in the widespread conifer genus Callitris , 2013, AoB Plants.
[51] Stéphane Herbette,et al. Water stress-induced xylem hydraulic failure is a causal factor of tree mortality in beech and poplar. , 2013, Annals of botany.
[52] N. Holbrook,et al. Cutting xylem under tension or supersaturated with gas can generate PLC and the appearance of rapid recovery from embolism. , 2013, Plant, cell & environment.
[53] Veerle Cnudde,et al. HECTOR: A 240kV micro-CT setup optimized for research , 2013 .
[54] Sylvain Delzon,et al. Hydraulic failure and repair are not routine in trees , 2013, Annals of Forest Science.
[55] H. Cochard,et al. Xylem embolism threshold for catastrophic hydraulic failure in angiosperm trees. , 2013, Tree physiology.
[56] Emmanuel Brun,et al. PyHST2: an hybrid distributed code for high speed tomographic reconstruction with iterative reconstruction and a priori knowledge capabilities , 2013, ArXiv.
[57] A. Jacobsen,et al. Xylem vulnerability to cavitation can be accurately characterised in species with long vessels using a centrifuge method. , 2013, Plant biology.
[58] Dilworth Y Parkinson,et al. Using high resolution computed tomography to visualize the three dimensional structure and function of plant vasculature. , 2013, Journal of visualized experiments : JoVE.
[59] A. Dai. Increasing drought under global warming in observations and models , 2013 .
[60] D. Lindenmayer,et al. Global Decline in Large Old Trees , 2012, Science.
[61] A. Nardini,et al. Global convergence in the vulnerability of forests to drought , 2012, Nature.
[62] P. Campanello,et al. Hydraulic differences along the water transport system of South American Nothofagus species: do leaves protect the stem functionality? , 2012, Tree physiology.
[63] J. Sperry,et al. Vulnerability curves by centrifugation: is there an open vessel artefact, and are 'r' shaped curves necessarily invalid? , 2012, Plant, cell & environment.
[64] R. Sánchez‐Salguero,et al. Selective drought-induced decline of pine species in southeastern Spain , 2012, Climatic Change.
[65] T. Stocker,et al. Managing the Risks of Extreme Events and Disasters to Advance Climate Change Adaptation. A Special Report of Working Groups I and II of IPCC Intergovernmental Panel on Climate Change , 2012 .
[66] W. McGuire. Managing the risks of extreme events and disasters , 2011 .
[67] H. Cochard,et al. Uniform Selection as a Primary Force Reducing Population Genetic Differentiation of Cavitation Resistance across a Species Range , 2011, PloS one.
[68] R. Hall,et al. Massive mortality of aspen following severe drought along the southern edge of the Canadian boreal forest , 2011, Global Change Biology.
[69] Rahul Vallabh,et al. Modeling tortuosity in fibrous porous media using computational fluid dynamics , 2011 .
[70] D. Bowman,et al. Xylem function and growth rate interact to determine recovery rates after exposure to extreme water deficit. , 2010, The New phytologist.
[71] Brendan Choat,et al. The Dynamics of Embolism Repair in Xylem: In Vivo Visualizations Using High-Resolution Computed Tomography1[C][W][OA] , 2010, Plant Physiology.
[72] Hervé Cochard,et al. Does sample length influence the shape of xylem embolism vulnerability curves? A test with the Cavitron spinning technique. , 2010, Plant, cell & environment.
[73] Brendan Choat,et al. Measurement of vulnerability to water stress-induced cavitation in grapevine: a comparison of four techniques applied to a long-vesseled species. , 2010, Plant, cell & environment.
[74] N. McDowell,et al. A global overview of drought and heat-induced tree mortality reveals emerging climate change risks for forests , 2010 .
[75] A. Nardini,et al. Starch-to-sugar conversion in wood parenchyma of field-growing Laurus nobilis plants: a component of the signal pathway for embolism repair? , 2009, Functional plant biology : FPB.
[76] F. Rodríguez‐Sánchez,et al. Late Neogene history of the laurel tree (Laurus L., Lauraceae) based on phylogeographical analyses of Mediterranean and Macaronesian populations , 2009 .
[77] S. Jansen,et al. Morphological variation of intervessel pit membranes and implications to xylem function in angiosperms. , 2009, American journal of botany.
[78] T. Brodribb,et al. Hydraulic Failure Defines the Recovery and Point of Death in Water-Stressed Conifers[OA] , 2008, Plant Physiology.
[79] A. Nardini,et al. Vein recovery from embolism occurs under negative pressure in leaves of sunflower (Helianthus annuus). , 2008, Physiologia plantarum.
[80] Hervé Cochard,et al. Is xylem cavitation resistance a relevant criterion for screening drought resistance among Prunus species? , 2008, Journal of plant physiology.
[81] E. Hogg,et al. Impacts of a regional drought on the productivity, dieback, and biomass of western Canadian aspen forests , 2008 .
[82] V. Cnudde,et al. Software tools for quantification of X-ray microtomography at the UGCT , 2007 .
[83] C. Beierkuhnlein,et al. A new generation of climate‐change experiments: events, not trends , 2007 .
[84] N. Holbrook,et al. The spatial pattern of air seeding thresholds in mature sugar maple trees , 2005 .
[85] Hervé Cochard,et al. Evaluation of a new centrifuge technique for rapid generation of xylem vulnerability curves , 2005 .
[86] G. Meehl,et al. More Intense, More Frequent, and Longer Lasting Heat Waves in the 21st Century , 2004, Science.
[87] A. Nardini,et al. New evidence for a role of vessel‐associated cells and phloem in the rapid xylem refilling of cavitated stems of Laurus nobilis L. , 2004 .
[88] Robert B. Jackson,et al. ADAPTIVE VARIATION IN THE VULNERABILITY OF WOODY PLANTS TO XYLEM CAVITATION , 2004 .
[89] Manuel Dierick,et al. Octopus, a fast and user-friendly tomographic reconstruction package developed in LabView® , 2004 .
[90] J. Martínez-Zapater,et al. AFLP evaluation of genetic similarity among laurel populations (Laurus L.) , 2001, Euphytica.
[91] J. Sperry,et al. Root and stem xylem embolism, stomatal conductance, and leaf turgor in Acer grandidentatum populations along a soil moisture gradient , 1996, Oecologia.
[92] M. Tyree,et al. Air method measurements of apple vessel length distributions with improved apparatus and theory. , 2003, Journal of experimental botany.
[93] J. Svenning,et al. Deterministic Plio‐Pleistocene extinctions in the European cool‐temperate tree flora , 2003 .
[94] Uwe G. Hacke,et al. Limits to xylem refilling under negative pressure in Laurus nobilis and Acer negundo , 2003 .
[95] Hervé Cochard,et al. A technique for measuring xylem hydraulic conductance under high negative pressures , 2002 .
[96] S. Wilkins,et al. Simultaneous phase and amplitude extraction from a single defocused image of a homogeneous object , 2002, Journal of microscopy.
[97] A. Nardini,et al. Vulnerability to cavitation of leaf minor veins: any impact on leaf gas exchange? , 2001 .
[98] Andrea Nardini,et al. Xylem cavitation and hydraulic control of stomatal conductance in Laurel (Laurus nobilis L.) , 2000 .
[99] A. Nardini,et al. Refilling of embolized vessels in young stems of laurel. Do We need a new paradigm? , 1999, Plant physiology.
[100] C. V. Willigen,et al. A mathematical and statistical analysis of the curves illustrating vulnerability of xylem to cavitation. , 1998, Tree physiology.
[101] J. Sperry,et al. Xylem cavitation in roots and stems of Douglas-fir and white fir. , 1997, Tree physiology.
[102] M. Gullo,et al. Xylem recovery from cavitation-induced embolism in young plants of Laurus nobilis: a possible mechanism. , 1996, The New phytologist.
[103] M. Gullo,et al. Water Transport in Plants under Climatic Stress: Drought resistance strategies and vulnerability to cavitation of some Mediterranean sclerophyllous trees , 1993 .
[104] William T. Pockman,et al. Limitation of transpiration by hydraulic conductance and xylem cavitation in Betula occidentalis , 1993 .
[105] S. Rhizopoulou,et al. Water Relations of Evergreen Sclerophylls. I. Seasonal Changes in the Water Relations of Eleven Species from the Same Environment , 1990 .
[106] M. Zimmermann. Xylem Structure and the Ascent of Sap , 1983, Springer Series in Wood Science.