Ecological differentiation in xylem cavitation resistance is associated with stem and leaf structural traits.
暂无分享,去创建一个
Frans Bongers | Lars Markesteijn | Lawren Sack | Lourens Poorter | F. Bongers | L. Poorter | L. Sack | Lars Markesteijn | H. Paz | Horacio Paz
[1] T. Maeda,et al. Seasonal variations of gas exchange and water relations in deciduous and evergreen trees in monsoonal dry forests of Thailand. , 2010, Tree physiology.
[2] F. Bongers,et al. Seasonal variation in soil and plant water potentials in a Bolivian tropical moist and dry forest , 2010, Journal of Tropical Ecology.
[3] A. Rebelo,et al. Ecophysiological significance of leaf size variation in Proteaceae from the Cape Floristic Region. , 2010 .
[4] Kaoru Kitajima,et al. Tissue-level leaf toughness, but not lamina thickness, predicts sapling leaf lifespan and shade tolerance of tropical tree species. , 2010, The New phytologist.
[5] Lars Markesteijn. Drought-tolerance of tropical tree species: Functional traits, trade-offs and species distribution , 2010 .
[6] T. Maeda,et al. Seasonal variations in hydraulic properties of deciduous and evergreen trees in monsoonal dry forests of Thailand , 2010 .
[7] B. Mostacedo,et al. Silvicultural treatments enhance growth rates of future crop trees in a tropical dry forest. , 2009 .
[8] L. Poorter,et al. Causes and consequences of variation in leaf mass per area (LMA): a meta-analysis. , 2009, The New phytologist.
[9] J. Sperry,et al. Testing the 'rare pit' hypothesis for xylem cavitation resistance in three species of Acer. , 2009, The New phytologist.
[10] J. Chave,et al. Towards a Worldwide Wood Economics Spectrum 2 . L E a D I N G D I M E N S I O N S I N W O O D F U N C T I O N , 2022 .
[11] K. Cao,et al. Hydraulic properties and photosynthetic rates in co-occurring lianas and trees in a seasonal tropical rainforest in southwestern China , 2009, Plant Ecology.
[12] L. Poorter,et al. Seedling root morphology and biomass allocation of 62 tropical tree species in relation to drought‐ and shade‐tolerance , 2009 .
[13] Bettina M. J. Engelbrecht,et al. Tolerance to low leaf water status of tropical tree seedlings is related to drought performance and distribution. , 2009 .
[14] S. Jansen,et al. Morphological variation of intervessel pit membranes and implications to xylem function in angiosperms. , 2009, American journal of botany.
[15] L. Poorter. The relationships of wood-, gas- and water fractions of tree stems to performance and life history variation in tropical trees. , 2008, Annals of botany.
[16] Lars Markesteijn,et al. Seedling Traits Determine Drought Tolerance of Tropical Tree Species , 2008 .
[17] Frederick C Meinzer,et al. Safety and efficiency conflicts in hydraulic architecture: scaling from tissues to trees. , 2008, Plant, cell & environment.
[18] Brendan Choat,et al. Structure and function of bordered pits: new discoveries and impacts on whole-plant hydraulic function. , 2008, The New phytologist.
[19] K. Cao,et al. Inter-species variation of photosynthetic and xylem hydraulic traits in the deciduous and evergreen Euphorbiaceae tree species from a seasonally tropical forest in south-western China , 2008, Ecological Research.
[20] P. Baker,et al. Deciduousness in a seasonal tropical forest in western Thailand: interannual and intraspecific variation in timing, duration and environmental cues , 2008, Oecologia.
[21] K. Kitajima,et al. Physical defence traits enhance seedling survival of neotropical tree species , 2007 .
[22] D. Ackerly,et al. Evolution of hydraulic traits in closely related species pairs from Mediterranean and nonMediterranean environments of North America. , 2007, The New phytologist.
[23] N. Holbrook,et al. Diversity of hydraulic traits in nine Cordia species growing in tropical forests with contrasting precipitation. , 2007, The New phytologist.
[24] L. Poorter,et al. Carbohydrate storage and light requirements of tropical moist and dry forest tree species. , 2007, Ecology.
[25] F. Ewers,et al. CAVITATION RESISTANCE AMONG 26 CHAPARRAL SPECIES OF SOUTHERN CALIFORNIA , 2007 .
[26] H. G. Baker,et al. SOIL AND STEM WATER STORAGE DETERMINE PHENOLOGY AND DISTRIBUTION OF TROPICAL DRY FOREST TREES ' , 2007 .
[27] C. Schlichting,et al. Leaf shape linked to photosynthetic rates and temperature optima in South African Pelargonium species , 2007, Oecologia.
[28] Campbell O. Webb,et al. Regional and phylogenetic variation of wood density across 2456 Neotropical tree species. , 2006, Ecological applications : a publication of the Ecological Society of America.
[29] Frans Bongers,et al. Leaf traits are good predictors of plant performance across 53 rain forest species. , 2006, Ecology.
[30] L. Poorter,et al. Wood mechanics, allometry, and life-history variation in a tropical rain forest tree community. , 2006, The New phytologist.
[31] N. Holbrook,et al. Direct measurements of intervessel pit membrane hydraulic resistance in two angiosperm tree species. , 2006, American journal of botany.
[32] J. Sperry,et al. Scaling of angiosperm xylem structure with safety and efficiency. , 2006, Tree physiology.
[33] L. Puangchit,et al. Contrasting seasonal leaf habits of canopy trees between tropical dry-deciduous and evergreen forests in Thailand. , 2006, Tree physiology.
[34] H. Muller‐Landau,et al. Life history trade-offs in tropical trees and lianas. , 2006, Ecology.
[35] A. Zanne,et al. Patterns and consequences of differential vascular sectoriality in 18 temperate tree and shrub species , 2006 .
[36] J. Sperry,et al. Inter‐vessel pitting and cavitation in woody Rosaceae and other vesselled plants: a basis for a safety versus efficiency trade‐off in xylem transport , 2005 .
[37] J. Sperry,et al. Comparative analysis of end wall resistivity in xylem conduits , 2005 .
[38] B. Choat,et al. Hydraulic architecture of deciduous and evergreen dry rainforest tree species from north-eastern Australia , 2005, Trees.
[39] Robert B. Jackson,et al. ADAPTIVE VARIATION IN THE VULNERABILITY OF WOODY PLANTS TO XYLEM CAVITATION , 2004 .
[40] G. Goldstein,et al. Leaf photosynthetic traits scale with hydraulic conductivity and wood density in Panamanian forest canopy trees , 2004, Oecologia.
[41] H. Muller‐Landau. Interspecific and Inter‐site Variation in Wood Specific Gravity of Tropical Trees , 2004 .
[42] K. Kitajima. Relative importance of photosynthetic traits and allocation patterns as correlates of seedling shade tolerance of 13 tropical trees , 1994, Oecologia.
[43] M. Sobrado. Trade-off between water transport efficiency and leaf life-span in a tropical dry forest , 1993, Oecologia.
[44] S. Hubbell,et al. GAP‐DEPENDENT RECRUITMENT, REALIZED VITAL RATES, AND SIZE DISTRIBUTIONS OF TROPICAL TREES , 2003 .
[45] Stephan G. Beck. Geografía ecológica de Bolivia. Vegetación y Ambientes Acuáticos - Gonzalo Navarro y Mabel Maldonado , 2003 .
[46] H. Paz. Root/Shoot Allocation and Root Architecture in Seedlings: Variation among Forest Sites, Microhabitats, and Ecological Groups1 , 2003 .
[47] Bettina M. J. Engelbrecht,et al. Desiccation Tolerance of Five Tropical Seedlings in Panama. Relationship to a Field Assessment of Drought Performance1 , 2003, Plant Physiology.
[48] Bettina M. J. Engelbrecht,et al. Comparative drought-resistance of seedlings of 28 species of co-occurring tropical woody plants , 2003, Oecologia.
[49] N. Holbrook,et al. Relations between stomatal closure, leaf turgor and xylem vulnerability in eight tropical dry forest trees , 2003 .
[50] M. Westoby,et al. Leaf-size divergence along rainfall and soil-nutrient gradients: Is the method of size reduction common among clades? , 2003 .
[51] I. Oliveras,et al. Xylem hydraulic properties of roots and stems of nine Mediterranean woody species , 2002, Oecologia.
[52] Derek Eamus,et al. Ecophysiology of trees of seasonally dry tropics: Comparisons among phenologies , 2001 .
[53] Jacob McC. Overton,et al. Shifts in trait‐combinations along rainfall and phosphorus gradients , 2000 .
[54] T. Brodribb,et al. Stem hydraulic supply is linked to leaf photosynthetic capacity: evidence from New Caledonian and Tasmanian rainforests , 2000 .
[55] A. Nardini,et al. Limitation of stomatal conductance by hydraulic traits: sensing or preventing xylem cavitation? , 2000, Trees.
[56] M. Roderick. On the measurement of growth with applications to the modelling and analysis of plant growth , 2000 .
[57] J. Sperry,et al. Vulnerability to xylem cavitation and the distribution of Sonoran Desert vegetation. , 1996, American journal of botany.
[58] Mark Westoby,et al. EVOLUTIONARY DIVERGENCES IN LEAF STRUCTURE AND CHEMISTRY, COMPARING RAINFALL AND SOIL NUTRIENT GRADIENTS , 1999 .
[59] Eamus,et al. Ecophysiological traits of deciduous and evergreen woody species in the seasonally dry tropics. , 1999, Trends in ecology & evolution.
[60] T. Killeen,et al. Diversity, composition and structure of a tropical semideciduous forest in the Chiquitanía region of Santa Cruz, Bolivia , 1998, Journal of Tropical Ecology.
[61] C. V. Willigen,et al. A mathematical and statistical analysis of the curves illustrating vulnerability of xylem to cavitation. , 1998, Tree physiology.
[62] Frederick R. Adler,et al. Limitation of plant water use by rhizosphere and xylem conductance: results from a model , 1998 .
[63] Melvin T. Tyree,et al. The Cohesion-Tension theory of sap ascent: current controversies , 1997 .
[64] M. Sobrado. Embolism vulnerability in drought-deciduous and evergreen species of a tropical dry forest , 1997 .
[65] C. Skarpe. Plant functional types and climate in a southern African savanna , 1996 .
[66] J. A. Jarbeau,et al. The mechanism of water‐stress‐induced embolism in two species of chaparral shrubs , 1995 .
[67] F. Ewers,et al. Conduit diameter and drought‐induced embolism in Salvia mellifera Greene (Labiatae) , 1994 .
[68] S. Davis,et al. Biophysical Perspectives of Xylem Evolution: is there a Tradeoff of Hydraulic Efficiency for Vulnerability to Dysfunction? , 1994 .
[69] Hamlyn G. Jones,et al. Stomatal control of xylem embolism , 1991 .
[70] M. Sobrado. Cost-benefit relationships in deciduous and evergreen leaves of tropical dry forest species , 1991 .
[71] Frank W. Ewers,et al. TECHNIQUES FOR MEASURING VESSEL LENGTHS AND DIAMETERS IN STEMS OF WOODY PLANTS , 1989 .
[72] A. Tyree,et al. Vulnerability of Xylem to Cavitation and Embolism , 1989 .
[73] J. Sperry,et al. Mechanism of water stress-induced xylem embolism. , 1988, Plant physiology.
[74] J. Sperry,et al. Do woody plants operate near the point of catastrophic xylem dysfunction caused by dynamic water stress? : answers from a model. , 1988, Plant physiology.
[75] Melvin T. Tyree,et al. A method for measuring hydraulic conductivity and embolism in xylem , 1988 .
[76] Thomas J. Givnish,et al. On the economy of plant form and function. , 1988 .
[77] P. G. Murphy,et al. Ecology of Tropical Dry Forest , 1986 .
[78] S. W. Roberts,et al. Seasonal changes in tissue elasticity in chaparral shrubs , 1985 .
[79] Frank W. Ewers,et al. Xylem' Structure and Water Conduction in Conifer Trees, Dicot Trees, and Llanas , 1985 .
[80] M. Zimmermann. Xylem Structure and the Ascent of Sap , 1983, Springer Series in Wood Science.
[81] R. Monson,et al. Seasonal Water Potential Components of Sonoran Desert Plants , 1982 .
[82] U. Zimmermann. Physics of Turgor- and Osmoregulation , 1978 .
[83] M. Tyree,et al. Water relations parameters on single leaves obtained in a pressure bomb and some ecological interpretations , 1975 .
[84] BY D. F. PARKHURSTt. OPTIMAL LEAF SIZE IN RELATION TO ENVIRONMENT * , 2022 .