Register      Login
Functional Plant Biology Functional Plant Biology Society
Plant function and evolutionary biology

Articles citing this paper

Extension of a Farquhar model for limitations of leaf photosynthesis induced by light environment, phenology and leaf age in grapevines (Vitis vinifera L. cvv. White Riesling and Zinfandel)

Hans R. Schultz
30(6) pp.673 - 687


43 articles found in Crossref database.

Drought-induced changes in development and function of grapevine (Vitis spp.) organs and in their hydraulic and non-hydraulic interactions at the whole-plant level: a physiological and molecular update
Lovisolo Claudio, Perrone Irene, Carra Andrea, Ferrandino Alessandra, Flexas Jaume, Medrano Hipolito, Schubert Andrea
Functional Plant Biology. 2010 37(2). p.98
Leaf photosynthesis and respiration of three bioenergy crops in relation to temperature and leaf nitrogen: how conserved are biochemical model parameters among crop species?
Archontoulis S. V., Yin X., Vos J., Danalatos N. G., Struik P. C.
Journal of Experimental Botany. 2012 63(2). p.895
An empirical model that uses light attenuation and plant nitrogen status to predict within-canopy nitrogen distribution and upscale photosynthesis from leaf to whole canopy
Louarn Gaëtan, Frak Ela, Zaka Serge, Prieto Jorge, Lebon Eric
AoB Plants. 2015 7 p.plv116
Modelling seasonal and diurnal dynamics of stomatal conductance of plants in a semiarid environment
Gao Qiong, Yu Mei, Zhang Xinshi, Xu Hongmei, Huang Yongmei
Functional Plant Biology. 2005 32(7). p.583
The short-term temperature-dependency of CO2 photosynthetic responses of two Vitis vinifera cultivars grown in a hot climate
Greer Dennis H.
Environmental and Experimental Botany. 2018 147 p.125
Some critical issues in environmental physiology of grapevines: future challenges and current limitations
SCHULTZ H.R., STOLL M.
Australian Journal of Grape and Wine Research. 2010 16 p.4
Plant acclimation to temperature: Developments in the Pasture Simulation model
Sándor R., Picon-Cochard C., Martin R., Louault F., Klumpp K., Borras D., Bellocchi G.
Field Crops Research. 2018 222 p.238
Annual carbon balance of a managed wetland meadow in the Somerset Levels, UK
Lloyd C.R.
Agricultural and Forest Meteorology. 2006 138(1-4). p.168
Improving water use efficiency in grapevines: potential physiological targets for biotechnological improvement
FLEXAS J., GALMÉS J., GALLÉ A., GULÍAS J., POU A., RIBAS-CARBO M., TOMÀS M., MEDRANO H.
Australian Journal of Grape and Wine Research. 2010 16 p.106
Modelling Approach for Predicting the Impact of Changing Temperature Conditions on Grapevine Canopy Architectures
Schmidt Dominik, Bahr Christopher, Friedel Matthias, Kahlen Katrin
Agronomy. 2019 9(8). p.426
What Is the Impact of Heatwaves on European Viticulture? A Modelling Assessment
Fraga Helder, Molitor Daniel, Leolini Luisa, Santos João A.
Applied Sciences. 2020 10(9). p.3030
Sugarcane leaf photosynthetic light responses and their difference between varieties under high temperature stress
LIU Y.Y., LI J., LIU S.C., YU Q., TONG X.J., ZHU T.T., GAO X.X., YU L.X.
Photosynthetica. 2020 58(4). p.1009
Mechanisms underlying photosynthetic acclimation to high temperature are different between Vitis vinifera cv. Syrah and Grenache
Gallo Agustina E., Perez Peña Jorge E., Prieto Jorge A.
Functional Plant Biology. 2021 48(3). p.342
Methodologies and Results in Grapevine Research (2010)
Gallé Alexander, Flexas Jaume
A leaf gas exchange model that accounts for intra‐canopy variability by considering leaf nitrogen content and local acclimation to radiation in grapevine (Vitis vinifera L.)
PRIETO JORGE A., LOUARN GAËTAN, PEREZ PEÑA JORGE, OJEDA HERNÁN, SIMONNEAU THIERRY, LEBON ERIC
Plant, Cell & Environment. 2012 35(7). p.1313
Horticultural Reviews, Volume 37 (2010)
Holzapfel Bruno P., Smith Jason P., Field Stewart K., Hardie W. James
Leaf temperature and CO
Greer Dennis H., Allakhverdiev Suleyman
Functional Plant Biology. 2022 49(7). p.659
Optimizing the statistical estimation of the parameters of the Farquhar–von Caemmerer–Berry model of photosynthesis
Dubois Jean‐Jacques B., Fiscus Edwin L., Booker Fitzgerald L., Flowers Michael D., Reid Chantal D.
New Phytologist. 2007 176(2). p.402
Effects of growth irradiance on photosynthesis and photorespiration of Phoebe bournei leaves
Tang Xinglin, Liu Guangzheng, Jiang Jiang, Lei Changju, Zhang Yunxing, Wang Liyan, Liu Xinliang
Functional Plant Biology. 2020 47(12). p.1053
Processes contributing to photoprotection of grapevine leaves illuminated at low temperature
Hendrickson Luke, Förster Britta, Furbank Robert T., Chow Wah Soon
Physiologia Plantarum. 2004 121(2). p.272
Heat stress affects flowering, berry growth, sugar accumulation and photosynthesis of Vitis vinifera cv. Semillon grapevines grown in a controlled environment
Greer Dennis H., Weston Chris
Functional Plant Biology. 2010 37(3). p.206
Carbon balance in grapevines (Vitis viniferaL.): effect of environment, cultivar and phenology on carbon gain, losses and allocation
Hernández‐Montes E., Escalona J.M., Tomás M., Martorell S., Bota J., Tortosa I., Medrano H.
Australian Journal of Grape and Wine Research. 2022 28(4). p.534
2D approximation of realistic 3D vineyard row canopy representation for light interception (fIPAR) and light intensity distribution on leaves (LIDIL)
López-Lozano R., Baret F., Atauri I. García de Cortázar, Lebon E., Tisseyre B.
European Journal of Agronomy. 2011 35(3). p.171
Transcriptome Analysis of ‘Kyoho’ Grapevine Leaves Identifies Heat Response Genes Involved in the Transcriptional Regulation of Photosynthesis and Abscisic Acid
Guo Rongrong, Lin Ling, Huang Guiyuan, Shi Xiaofang, Wei Rongfu, Han Jiayu, Zhou Sihong, Zhang Ying, Xie Taili, Bai Xianjin, Cao Xiongjun
Agronomy. 2022 12(10). p.2591
A quantitative comparison of Calvin–Benson cycle models
Arnold Anne, Nikoloski Zoran
Trends in Plant Science. 2011 16(12). p.676
Modelling photosynthetic responses to temperature of grapevine (Vitis vinifera cv. Semillon) leaves on vines grown in a hot climate
GREER DENNIS H., WEEDON MARK M.
Plant, Cell & Environment. 2012 35(6). p.1050
Novel mannose‐sequestration technique reveals variation in subcellular orthophosphate pools do not explain the effects of phosphorus nutrition on photosynthesis in Eucalyptus globulus seedlings
Turnbull Tarryn L., Warren Charles R., Adams Mark A.
New Phytologist. 2007 176(4). p.849
Interactions between light and growing season temperatures on, growth and development and gas exchange of Semillon (Vitis vinifera L.) vines grown in an irrigated vineyard
Greer Dennis H., Weedon Mark M.
Plant Physiology and Biochemistry. 2012 54 p.59
In search for an accurate model of the photosynthetic carbon metabolism
Arnold Anne, Nikoloski Zoran
Mathematics and Computers in Simulation. 2014 96 p.171
Interaction effects of temperature and light on shoot architecture, growth dynamics and gas exchange of young
Abeysinghe Subhashini K., Greer Dennis H., Rogiers Suzy Y., Ghannoum Oula
Functional Plant Biology. 2021 49(1). p.54
Climate change increases net CO 2 assimilation in the leaves of strawberry, but not yield
Menzel Christopher Michael
The Journal of Horticultural Science and Biotechnology. 2024 99(3). p.233
Analysis of a Farquhar-von Caemmerer-Berry leaf-level photosynthetic rate model for Populus tremuloides in the context of modeling and measurement limitations
Lenz Kathryn E., Host George E., Roskoski Kyle, Noormets Asko, Sôber Anu, Karnosky David F.
Environmental Pollution. 2010 158(4). p.1015
Limitations to photosynthesis of leaves of apple (Malus domestica) trees across the growing season prior to and after harvest
GREER D.H.
Photosynthetica. 2019 57(2). p.483
Short-term temperature dependency of the photosynthetic and PSII photochemical responses to photon flux density of leaves of Vitis vinifera cv. Shiraz vines grown in field conditions with and without fruit
Greer Dennis H.
Functional Plant Biology. 2019 46(7). p.634
Simulating three-dimensional grapevine canopies and modelling their light interception characteristics
Iandolino A.B., Pearcy R.W., Williams L.E.
Australian Journal of Grape and Wine Research. 2013  p.n/a
Modelling the seasonal changes in the gas exchange response to CO2 in relation to short-term leaf temperature changes in Vitis vinifera cv. Shiraz grapevines grown in outdoor conditions
Greer Dennis H.
Plant Physiology and Biochemistry. 2019 142 p.372
Leaf Photosynthetic Capacity of Sunlit and Shaded Mature Leaves in a Deciduous Forest
Song Guangman, Wang Quan, Jin Jia
Forests. 2020 11(3). p.318
Sugars and flowering in the grapevine (Vitis vinifera L.)
Lebon G., Wojnarowiez G., Holzapfel B., Fontaine F., Vaillant-Gaveau N., Clement C.
Journal of Experimental Botany. 2008 59(10). p.2565
Comprehensive classification and perspective for modelling photorespiratory metabolism
Arnold A., Nikoloski Z., Weber A.
Plant Biology. 2013 15(4). p.667
First detection of the presence of naturally occurring grapevine downy mildew in the field by a fluorescence-based method
Latouche Gwendal, Debord Christian, Raynal Marc, Milhade Charlotte, Cerovic Zoran G.
Photochemical & Photobiological Sciences. 2015 14(10). p.1807
A process-based coupled model of stomatal conductance–photosynthesis–transpiration during leaf ontogeny for water-saving irrigated rice
Lv Yuping, Xu Junzeng, Liu Xiaoyin
Photosynthesis Research. 2021 147(2). p.145
Estimation of daytime ecosystem respiration to determine gross primary production of a mountain meadow
Wohlfahrt Georg, Bahn Michael, Haslwanter Alois, Newesely Christian, Cernusca Alexander
Agricultural and Forest Meteorology. 2005 130(1-2). p.13
Modelling seasonal changes in the temperature-dependency of CO2 photosynthetic responses in two Vitis vinifera cultivars
Greer Dennis H.
Functional Plant Biology. 2018 45(3). p.315

Committee on Publication Ethics


Abstract Export Citation Get Permission