Light-dependent leaf trait variation in 43 tropical dry forest tree species.
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[1] F. Valladares,et al. Performance of seedlings of Mediterranean woody species under experimental gradients of irradiance and water availability: trade-offs and evidence for niche differentiation. , 2006, The New phytologist.
[2] R. Zamora,et al. Interactions of drought and shade effects on seedlings of four Quercus species: physiological and structural leaf responses. , 2006, The New phytologist.
[3] Frans Bongers,et al. Architecture of 54 moist-forest tree species: traits, trade-offs, and functional groups. , 2006, Ecology.
[4] L. Poorter,et al. Plasticity in leaf traits of 38 tropical tree species in response to light; relationships with light demand and adult stature. , 2006 .
[5] N. Holbrook,et al. Leaf hydraulic architecture correlates with regeneration irradiance in tropical rainforest trees. , 2005, The New phytologist.
[6] G. Parker,et al. Seasonal balance and vertical pattern of photosynthetically active radiation within canopies of a tropical dry deciduous forest ecosystem in Mexico , 2005, Journal of Tropical Ecology.
[7] F. Bongers,et al. Beyond the regeneration phase: differentiation of height–light trajectories among tropical tree species , 2005 .
[8] George W. Koch,et al. The limits to tree height , 2004, Nature.
[9] David D. Ackerly,et al. FUNCTIONAL STRATEGIES OF CHAPARRAL SHRUBS IN RELATION TO SEASONAL WATER DEFICIT AND DISTURBANCE , 2004 .
[10] L. Sack,et al. The functional morphology of juvenile plants tolerant of strong summer drought in shaded forest understories in southern Spain , 2003, Plant Ecology.
[11] K. Kitajima. Relative importance of photosynthetic traits and allocation patterns as correlates of seedling shade tolerance of 13 tropical trees , 1994, Oecologia.
[12] P. Coley,et al. Photosynthetic induction times in shade-tolerant species with long and short-lived leaves , 1993, Oecologia.
[13] F. Bazzaz,et al. Plasticity and acclimation to light in tropical Moraceae of different sucessional positions , 1991, Oecologia.
[14] L. Gratani,et al. Leaf key traits of Erica arborea L., Erica multiflora L. and Rosmarinus officinalis L. co-occurring , 2004 .
[15] F. H. Vale,et al. The influence of light intensity on anatomical structure and pigment contents of Tradescantia pallida (Rose) Hunt. cv. purpurea Boom (Commelinaceae) leaves , 2003 .
[16] L. Sack,et al. Crossovers in seedling relative growth rates between low and high irradiance: analyses and ecological potential , 2003 .
[17] M. Ashton,et al. Leaf structure of Syzygium spp. (Myrtaceae) in relation to site affinity within a tropical rain forest , 2003 .
[18] M. Westoby,et al. Nutrient concentration, resorption and lifespan: leaf traits of Australian sclerophyll species , 2003 .
[19] Yanhong Tang,et al. Effects of light and soil water availability on leaf photosynthesis and growth of Arisaema heterophyllum, a riparian forest understorey plant , 2002, Journal of Plant Research.
[20] M. Westoby,et al. Leaves at low versus high rainfall: coordination of structure, lifespan and physiology. , 2002, The New phytologist.
[21] E. Garnier,et al. A standardized protocol for the determination of specific leaf area and leaf dry matter content , 2001 .
[22] N. Holbrook,et al. Acclimation of Leaf Anatomy, Photosynthetic Light Use, and Xylem Hydraulics to Light in Amborella trichopoda (Amborellaceae) , 2001, International Journal of Plant Sciences.
[23] John R. Evans,et al. Photosynthetic acclimation of plants to growth irradiance: the relative importance of specific leaf area and nitrogen partitioning in maximizing carbon gain , 2001 .
[24] P. Reich,et al. Strategy shifts in leaf physiology, structure and nutrient content between species of high‐ and low‐rainfall and high‐ and low‐nutrient habitats , 2001 .
[25] Klich. Leaf variations in Elaeagnus angustifolia related to environmental heterogeneity. , 2000, Environmental and experimental botany.
[26] K. Cao. Leaf anatomy and chlorophyll content of 12 woody species in contrasting light conditions in a Bornean heath forest , 2000 .
[27] Robert W. Pearcy,et al. Plastic Phenotypic Response to Light of 16 Congeneric Shrubs From a Panamanian Rainforest , 2000 .
[28] Lourens Poorter,et al. Leaf optical properties in Venezuelan cloud forest trees. , 2000, Tree physiology.
[29] L. Kammesheidt. Some autecological characteristics of early to late successional tree species in Venezuela. , 2000 .
[30] Contrasting modes of light acclimation in two species of the rainforest understory , 1999, Oecologia.
[31] John R. Evans,et al. Leaf anatomy enables more equal access to light and CO2 between chloroplasts , 1999 .
[32] Lourens Poorter,et al. Growth responses of 15 rain‐forest tree species to a light gradient: the relative importance of morphological and physiological traits , 1999 .
[33] 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.
[34] Stuart J. Davies,et al. Comparative ecology of 11 sympatric species of Macaranga in Borneo: tree distribution in relation to horizontal and vertical resource heterogeneity , 1998 .
[35] P. Grubb. A reassessment of the strategies of plants which cope with shortages of resources , 1998 .
[36] Harold A. Mooney,et al. Seasonally Dry Tropical Forests. , 1997 .
[37] D. Oosterhuis,et al. Effect of water stress on the epicuticular wax composition and ultrastructure of cotton (Gossypium hirsutum L.) leaf, bract, and boll , 1996 .
[38] S. Thomas. Asymptotic height as a predictor of growth and allometric characteristics in malaysian rain forest trees , 1996 .
[39] Carlos M. Duarte,et al. Light harvesting among photosynthetic organisms , 1994 .
[40] F. Bazzaz,et al. 13 – Coping with Environmental Heterogeneity: The Physiological Ecology of Tree Seedling Regeneration across the Gap—Understory Continuum , 1994 .
[41] Paul M. Rich,et al. Comparative analysis of microhabitat utilization by saplings of nine tree species in Neotropical rain forest , 1993 .
[42] David W. Lee,et al. The developmental responses of papaya leaves to simulated canopy shade , 1993 .
[43] R. Chazdon,et al. Plasticity of leaf anatomy of two rain forest shrubs in relation to photosynthetic light acclimation , 1993 .
[44] D. Sims,et al. Response of leaf anatomy and photosynthetic capacity in Alocasia macrorrhiza (Araceae) to a transfer from low to high light. , 1992 .
[45] M. Werger,et al. Gap-dependence and leaf characteristics of trees in a tropical lowland rain forest in Mexico. , 1992 .
[46] H. Mooney,et al. Stratification of tropical forests as seen in leaf structure , 1984, Tasks for vegetation science.
[47] Thomas J. Givnish,et al. Adaptation to Sun and Shade: a Whole-Plant Perspective , 1988 .
[48] R. Chazdon,et al. Light Environments of Tropical Forests , 1984 .
[49] T. Givnish. Leaf and Canopy Adaptations in Tropical Forests , 1984 .
[50] N. Chiariello. Leaf Energy Balance in the Wet Lowland Tropics , 1984 .
[51] M. Zimmermann. Xylem Structure and the Ascent of Sap , 1983, Springer Series in Wood Science.
[52] O. Björkman. Responses to Different Quantum Flux Densities , 1981 .
[53] F. S. Chapin,et al. The Mineral Nutrition of Wild Plants , 1980 .
[54] F. Bazzaz. The Physiological Ecology of Plant Succession , 1979 .
[55] W. Smith. Temperatures of Desert Plants: Another Perspective on the Adaptability of Leaf Size , 1978, Science.
[56] R. Bunce,et al. A Long-term Surveillance System for British Woodland Vegetation , 1978 .
[57] O. Loucks,et al. Optimal leaf size in relation to environment , 1972 .
[58] R. Archibald,et al. Nitrogen by the Kjeldahl Method , 1958 .