Summer and winter sensitivity of leaves and xylem to minimum freezing temperatures: a comparison of co-occurring Mediterranean oaks that differ in leaf lifespan.
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S. Rambal | J. Cavender-Bares | R. Joffre | A. Rocheteau | B. Miles | J Cavender-Bares | P Cortes | S Rambal | R Joffre | B Miles | A Rocheteau | P. Cortés
[1] P. Quézel,et al. Ecologie et biogéographie des forêts du bassin méditerranéen , 2003 .
[2] J. Sperry,et al. Xylem embolism in response to freeze-thaw cycles and water stress in ring-porous, diffuse-porous, and conifer species. , 1992, Plant physiology.
[3] Professor Dr. Walter Larcher,et al. Frost Survival of Plants , 1987, Ecological Studies.
[4] S. Rambal,et al. Comparative water relations of four Mediterranean oak species , 1992, Vegetatio.
[5] A. Verhoeven,et al. 'Photoinhibition' During Winter Stress: Involvement of Sustained Xanthophyll Cycle-Dependent Energy Dissipation , 1995 .
[6] J. Cavender-Bares. Impacts of Freezing on Long Distance Transport in Woody Plants , 2005 .
[7] M. Ball,et al. Structural changes in acclimated and unacclimated leaves during freezing and thawing. , 2004, Functional plant biology : FPB.
[8] J. Sauter,et al. Seasonal changes of sucrose-phosphate synthase and sucrose synthase activities in poplar wood (Populus × canadensis Moench ‘ robusta ’) and their possible role in carbohydrate metabolism , 2002 .
[9] K. Arakawa,et al. Xylem Ray Parenchyma Cells in Boreal Hardwood Species Respond to Subfreezing Temperatures by Deep Supercooling That Is Accompanied by Incomplete Desiccation1 , 2003, Plant Physiology.
[10] J. Carrión,et al. Past distribution and ecology of the cork oak (Quercus suber) in the Iberian Peninsula: a pollen‐analytical approach , 2000 .
[11] M. Vandame,et al. Seasonal variation in xylem pressure of walnut trees: root and stem pressures. , 2001, Tree physiology.
[12] K. Mitrakos,et al. A theory for Mediterranean plant life [evergreen sclerophyllous shrubs, climatic stresses, Mediterranean climate] , 1980 .
[13] A. Granier,et al. Mechanism of freeze-induced embolism in Fagus sylvatica L. , 1999, Trees.
[14] T. Gauquelin,et al. Holocene climatic changes in the Western Mediterranean, from south-east France to south-east Spain , 2000 .
[15] J. Hansen,et al. Evidence for Ideal and Non-Ideal Equilibrium Freezing of Leaf Water in Frosthardy Ivy (Hedera helix) and Winter Barley (Hordeum vulgare) , 1988 .
[16] H. Cochard,et al. Winter embolism, mechanisms of xylem hydraulic conductivity recovery and springtime growth patterns in walnut and peach trees. , 2002, Tree physiology.
[17] Utsumi,et al. The Progression of Cavitation in Earlywood Vessels of Fraxinus mandshurica var japonica during Freezing and Thawing. , 1999, Plant physiology.
[18] M. Zimmermann. Xylem Structure and the Ascent of Sap , 1983, Springer Series in Wood Science.
[19] Serge Rambal,et al. Co-occurrence of trees with different leaf habit: A functional approach on Mediterranean oaks , 1998 .
[20] B. L. Wong,et al. Seasonal patterns of reserve and soluble carbohydrates in mature sugar maple (Acer saccharum) , 2003 .
[21] M. Tateno,et al. Hydraulic conductivity, photosynthesis and leaf water balance in six evergreen woody species from fall to winter. , 2005, Tree physiology.
[22] Baker,et al. The reliability of cryoSEM for the observation and quantification of xylem embolisms and quantitative analysis of xylem sap in situ , 2000, Journal of microscopy.
[23] T. Améglio,et al. Temperature effects on xylem sap osmolarity in walnut trees: evidence for a vitalistic model of winter embolism repair. , 2004, Tree physiology.
[24] M. Gullo,et al. Different vulnerabilities of Quercus ilex L. to freeze- and summer drought-induced xylem embolism: an ecological interpretation , 1993 .
[25] Silvia B. Kikuta,et al. Ultrasound acoustic emissions from freezing xylem , 2003 .
[26] M. Lechowicz,et al. Why Do Temperate Deciduous Trees Leaf Out at Different Times? Adaptation and Ecology of Forest Communities , 1984, The American Naturalist.
[27] W. Bilger,et al. Chlorophyll fluorescence as a nonintrusive indicator for rapid assessment of in vivo photosynthesis , 1994 .
[28] C. Guy. Freezing tolerance of plants: current understanding and selected emerging concepts , 2003 .
[29] M. Burke,et al. Freezing and Injury in Plants , 1976 .
[30] R. Loisel,et al. LE CHÊNE VERT EN RÉGION MÉDITERRANÉENNE , 1980 .
[31] J. Lepart,et al. Évolution du potentiel hydrique foliaire et de la conductance stomatique de quatre chênes méditerranéens lors d'une période de dessèchement , 1991 .
[32] P. V. Soest,et al. Analysis of forages and fibrous foods , 1985 .
[33] M. Tyree,et al. A theoretical model of hydraulic conductivity recovery from embolism with comparison to experimental data on Acer saccharum , 1992 .
[34] A. Raschi,et al. Vulnerability of xylem to embolism in relation to plant hydraulic resistance in Quercus pubescens and Quercus ilex co‐occurring in a Mediterranean coppice stand in central Italy , 1998 .
[35] W. Larcher. Low Temperature Effects on Mediterranean Sclerophylls: An Unconventional Viewpoint , 1981 .
[36] J. Sperry,et al. The relationship between xylem conduit diameter and cavitation caused by freezing. , 1999, American journal of botany.
[37] Hervé Cochard,et al. Drought‐induced leaf shedding in walnut: evidence for vulnerability segmentation , 1993 .
[38] M. Wisniewski,et al. Mediation of deep supercooling of peach and dogwood by enzymatic modifications in cell-wall structure , 1991, Planta.
[39] Pilar Castro-Díez,et al. Stem xylem features in three Quercus (Fagaceae) species along a climatic gradient in NE Spain , 1997, Trees.
[40] A. Granier,et al. Mechanisms of xylem recovery from winter embolism in Fagus sylvatica. , 2001, Tree physiology.
[41] A. Nicotra,et al. Space and time dependence of temperature and freezing in evergreen leaves. , 2002, Functional plant biology : FPB.
[42] Jeannine M Cavender-Bares,et al. Hydraulic properties and freezing‐induced cavitation in sympatric evergreen and deciduous oaks with contrasting habitats , 2001 .
[43] F. Ewers,et al. Stem diameter variations and cold hardiness in walnut trees. , 2001, Journal of experimental botany.
[44] J. Sperry. Limitations on Stem Water Transport and Their Consequences , 1995 .
[45] A. Sakai. Freezing Resistance in Willows from Different Climates , 1970 .
[46] F. Ewers,et al. Response of chaparral shrubs to below-freezing temperatures: acclimation, ecotypes, seedlings vs. adults. , 1998, American journal of botany.
[47] K. Kikuzawa. The basis for variation in leaf longevity of plants , 2004, Vegetatio.
[48] Pedro Villar-Salvador,et al. Stem xylem features in three , 1997 .
[49] I. H. Rorison,et al. Chemical Analysis of Ecological Materials. , 1974 .
[50] P. Reich,et al. Generality of leaf trait relationships: a test across six biomes: Ecology , 1999 .
[51] P. Dardenne,et al. The Use of NIR in Predicting Nutritive Value of Mediterranean Tree and Shrub Foliage , 1993 .
[52] A. Lafta,et al. Cell-Wall Changes and Cell Tension in Response to Cold Acclimation and Exogenous Abscisic Acid in Leaves and Cell Cultures , 1996, Plant physiology.
[53] J. Briantais,et al. Chilling-Induced Photoinhibition in Two Oak Species: Are Evergreen Leaves Inherently Better Protected Than Deciduous Leaves? , 1999, Photosynthetica.
[54] J. Sperry,et al. Freezing-induced xylem cavitation and the northern limit of Larrea tridentata , 1996, Oecologia.
[56] J. García-Plazaola,et al. Diurnal changes in antioxidant and carotenoid composition in the Mediterranean schlerophyll tree Quercus ilex (L) during winter , 1999 .
[57] A. Granier,et al. Mechanism of freeze-induced embolism in , 1999 .
[58] J. Sperry,et al. Tracheid diameter is the key trait determining the extent of freezing-induced embolism in conifers. , 2003, Tree physiology.
[59] N. Huner,et al. Photosynthesis of overwintering evergreen plants. , 2001, Annual review of plant biology.
[60] M. Vandame,et al. Winter stem xylem pressure in walnut trees: effects of carbohydrates, cooling and freezing. , 2001, Tree physiology.
[61] M. Tesche. BuchbesprechungA. Sakai, W. Larcher, Frost Survival of Plants. Responses and Adaptation to Freezing Stress., Springer-Verlag, Berlin-Heidelberg-New York-LondonParis-Tokyo (1987), Series Ecological Studies 62. 321 S . , 200 Abb., zahlr. Tab. , Preis : DM 198. , 1988 .
[62] A. Nardini,et al. Different responses to drought and freeze stress of Quercus ilex L. growing along a latitudinal gradient , 2000, Plant Ecology.
[63] A. Escudero,et al. Mature trees versus seedlings: differences in leaf traits and gas exchange patterns in three co-occurring Mediterranean oaks , 2003 .
[64] Melvin T. Tyree,et al. A method for measuring hydraulic conductivity and embolism in xylem , 1988 .
[65] M. Tyree,et al. Xylem dysfunction in Quercus: vessel sizes, tyloses, cavitation and seasonal changes in embolism. , 1990, Tree physiology.
[66] H. Mooney,et al. CONVERGENT EVOLUTION OF MEDITERRANEAN‐CLIMATE EVERGREEN SCLEROPHYLL SHRUBS , 1970, Evolution; international journal of organic evolution.
[67] S. Rambal,et al. Between-tree variations in leaf δ13C of Quercus pubescens and Quercus ilex among Mediterranean habitats with different water availability , 1997, Oecologia.
[68] John S. Sperry,et al. Xylem Embolism in Ring‐Porous, Diffuse‐Porous, and Coniferous Trees of Northern Utah and Interior Alaska , 1994 .
[69] S. Rambal,et al. Field study of leaf photosynthetic performance by a Mediterranean deciduous oak tree (Quercus pubescens) during a severe summer drought , 1995 .
[70] Z. Ristić,et al. Response of Woody Plant Cells to Dehydrative Stress , 1993, International Journal of Plant Sciences.
[71] P. Wardle,et al. FREEZING RESISTANCE OF TREES OF THE SOUTH TEMPERATE ZONE, ESPECIALLY SUBALPINE SPECIES OF AUSTRALASIA' , 1981 .
[72] David D. Ackerly,et al. Significance of leaf longevity in plants , 1999 .
[73] R. Biston,et al. The use of near-infrared reflectance spectroscopy in litter decomposition studies , 1992 .
[74] Frank W. Ewers,et al. Xylem' Structure and Water Conduction in Conifer Trees, Dicot Trees, and Llanas , 1985 .
[75] J. Abadía,et al. Seasonal changes in xanthophyll composition and photosynthesis of cork oak (Quercus suber L.) leaves under mediterranean climate , 1997 .