Cuticular conductance of adaxial and abaxial leaf surfaces and its relation to minimum leaf surface conductance.
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Florian A. Busch | G. Farquhar | F. Busch | H. Stuart-Williams | Diego A Márquez | Diego A. Márquez | D. A. Márquez
[1] G. Farquhar,et al. An improved theory for calculating leaf gas exchange more precisely accounting for small fluxes , 2021, Nature Plants.
[2] H. Cochard,et al. Where do leaf water leaks come from? Trade-offs underlying the variability in minimum conductance across tropical savanna species with contrasting growth strategies. , 2020, The New phytologist.
[3] S. Jansen,et al. A Permeable Cuticle, Not Open Stomata, Is the Primary Source of Water Loss From Expanding Leaves , 2020, Frontiers in Plant Science.
[4] Weijiang Sun,et al. A Proposed Method for Simultaneous Measurement of Cuticular Transpiration From Different Leaf Surfaces in Camellia sinensis , 2020, Frontiers in Plant Science.
[5] Florian A. Busch,et al. Revisiting carbon isotope discrimination in C3 plants shows respiration rules when photosynthesis is low , 2020, Nature Plants.
[6] Lixin Wang,et al. The importance of cuticular permeance in assessing plant water use strategies. , 2020, Tree physiology.
[7] Yungui Li,et al. Adsorption of Strontium onto Adaxial and Abaxial Cuticle of Photinia serrulata Leaf , 2020, International journal of environmental research and public health.
[8] Florian A. Busch,et al. Estimating stomatal and biochemical limitations during photosynthetic induction. , 2019, Plant, cell & environment.
[9] D. Tissue,et al. Assessing the potential functions of nocturnal stomatal conductance in C3 and C4 plants. , 2019, The New phytologist.
[10] Florian A. Busch,et al. Plant water-use strategy mediates stomatal effects on the light induction of photosynthesis. , 2018, The New phytologist.
[11] B. Medlyn,et al. On the minimum leaf conductance: its role in models of plant water use, and ecological and environmental controls. , 2018, The New phytologist.
[12] Y. Kawamitsu,et al. Direct measurement of intercellular CO2 concentration in a gas-exchange system resolves overestimation using the standard method , 2018, Journal of experimental botany.
[13] M. Riederer,et al. The ecophysiology of leaf cuticular transpiration: are cuticular water permeabilities adapted to ecological conditions? , 2017, Journal of experimental botany.
[14] P. Langridge,et al. The impact of drought on wheat leaf cuticle properties , 2017, BMC Plant Biology.
[15] Florian A. Busch,et al. The sensitivity of photosynthesis to O2 and CO2 concentration identifies strong Rubisco control above the thermal optimum. , 2017, The New phytologist.
[16] J. Galmés,et al. Rubisco Catalytic Properties and Temperature Response in Crops1 , 2016, Plant Physiology.
[17] R. Hedrich,et al. Effectiveness of cuticular transpiration barriers in a desert plant at controlling water loss at high temperatures , 2016, AoB PLANTS.
[18] E. Almeida,et al. Influence of color shading nets on ornamental sunflower development , 2016 .
[19] J. Boyer,et al. Why small fluxes matter: the case and approaches for improving measurements of photosynthesis and (photo)respiration. , 2016, Journal of experimental botany.
[20] J. Schroeder,et al. Mechanisms of abscisic acid-mediated control of stomatal aperture. , 2015, Current opinion in plant biology.
[21] Y. Kawamitsu,et al. Cuticle Affects Calculations of Internal CO2 in Leaves Closing Their Stomata. , 2015, Plant & cell physiology.
[22] J. Boyer. Impact of cuticle on calculations of the CO2 concentration inside leaves , 2015, Planta.
[23] J. Boyer. Turgor and the transport of CO2 and water across the cuticle (epidermis) of leaves , 2015, Journal of experimental botany.
[24] K. Noguchi,et al. Mesophyll conductance decreases in the wild type but not in an ABA-deficient mutant (aba1) of Nicotiana plumbaginifolia under drought conditions. , 2015, Plant, cell & environment.
[25] J. Rose,et al. The Formation and Function of Plant Cuticles1 , 2013, Plant Physiology.
[26] W. Bauerle,et al. The implications of minimum stomatal conductance on modeling water flux in forest canopies , 2013 .
[27] M. Westoby,et al. The importance of leaf cuticle for carbon economy and mechanical strength. , 2012, The New phytologist.
[28] L. Schreiber,et al. Differences between water permeability of astomatous and stomatous cuticular membranes: effects of air humidity in two species of contrasting drought-resistance strategy , 2008, Journal of experimental botany.
[29] S. Assmann,et al. Light regulation of stomatal movement. , 2007, Annual review of plant biology.
[30] G. Kerstiens. Water transport in plant cuticles: an update. , 2006, Journal of experimental botany.
[31] M. Teece,et al. Increased Accumulation of Cuticular Wax and Expression of Lipid Transfer Protein in Response to Periodic Drying Events in Leaves of Tree Tobacco1[W] , 2005, Plant Physiology.
[32] L. Schreiber,et al. Size selectivity of aqueous pores in stomatous cuticles of Vicia faba leaves , 2005, Planta.
[33] H. Kaiser,et al. In situ observations of stomatal movements in different light-dark regimes: the influence of endogenous rhythmicity and long-term adjustments , 1997 .
[34] G. Farquhar,et al. CO2 and Water Vapor Exchange across Leaf Cuticle (Epidermis) at Various Water Potentials , 1997, Plant physiology.
[35] G. Kerstiens. Cuticular water permeability and its physiological significance , 1996 .
[36] G. Farquhar,et al. On the relationship between leaf anatomy and CO2 diffusion through the mesophyll of hypostomatous leaves , 1995 .
[37] D. F. Parkhurst,et al. Diffusion of CO2 and other gases inside leaves. , 1994, The New phytologist.
[38] A. Furukawa. Ontogenetic changes in stomatal size and conductance of sunflowers , 1992, Ecological Research.
[39] G. Farquhar,et al. Characterisation of Non-Uniform Photosynthesis Induced by Abscisic Acid in Leaves Having Different Mesophyll Anatomies , 1988 .
[40] I. R. Cowan,et al. Gradients of Intercellular CO(2) Levels Across the Leaf Mesophyll. , 1988, Plant physiology.
[41] Holmes Mg,et al. Photocontrol of Dark Circadian Rhythms in Stomata of Phaseolus vulgaris L , 1986 .
[42] J. Berry,et al. Regulation of ribulose bisphosphate carboxylase activity in vivo by a light-modulated inhibitor of catalysis. , 1985, Proceedings of the National Academy of Sciences of the United States of America.
[43] I. R. Cowan,et al. Leaf Conductance in Relation to Rate of CO(2) Assimilation: I. Influence of Nitrogen Nutrition, Phosphorus Nutrition, Photon Flux Density, and Ambient Partial Pressure of CO(2) during Ontogeny. , 1985, Plant physiology.
[44] H. Jones. Partitioning stomatal and non‐stomatal limitations to photosynthesis , 1985 .
[45] D. W. Sheriff. Epidermal transpiration and stomatal responses to humidity: Some hypotheses explored , 1984 .
[46] G. Farquhar,et al. Some relationships between the biochemistry of photosynthesis and the gas exchange of leaves , 1981, Planta.
[47] J. Berry,et al. A biochemical model of photosynthetic CO2 assimilation in leaves of C3 species , 1980, Planta.
[48] I. R. Cowan,et al. Leaf Conductance in Relation to Assimilation in Eucalyptus pauciflora Sieb. ex Spreng: Influence of Irradiance and Partial Pressure of Carbon Dioxide. , 1978, Plant physiology.
[49] G. Farquhar,et al. On the Resistance to Transpiration of the Sites of Evaporation within the Leaf. , 1978, Plant physiology.
[50] Cathryn J. Mittelheuser,et al. Stomatal Closure and Inhibition of Transpiration induced by (RS)-Abscisic Acid , 1969, Nature.
[51] K. Raschke. Simultaneous requirement of carbon dioxide and abscisic acid for stomatal closing in Xanthium strumarium L. , 2004, Planta.
[52] K. Mott,et al. Stomatal Behavior and CO(2) Exchange Characteristics in Amphistomatous Leaves. , 1984, Plant physiology.