Stocktake Sale on now: wide range of books at up to 70% off!
Register      Login
Functional Plant Biology Functional Plant Biology Society
Plant function and evolutionary biology

Articles citing this paper

Heat acclimation of grapevine leaf photosynthesis: mezo- and macroclimatic aspects

Zsolt Zsófi A E , Gyula Váradi B , Borbála Bálo A , Marianna Marschall C , Zoltán Nagy D and Sándor Dulai C
+ Author Affiliations
- Author Affiliations

A Research Institute of Károly Róbert College for Viticulture and Enology, Eger 3301-Eger Kőlyuktető PO Box 83, Hungary.

B Research Institute of Corvinus University for Viticulture and Enology, 6000-Kecskemét Úrihegy 5/A, Hungary.

C Eszterházy Károly College, Eger, Department of Plant Physiology, 3300-Eger Leányka Street 6, Hungary.

D Szent István University, Department of Botany and Plant Physiology, 2100-Gödöllő Páter Károly Street 1, Hungary.

E Corresponding author. Email: zszs@szbki-eger.hu

Functional Plant Biology 36(4) 310-322 https://doi.org/10.1071/FP08200
Submitted: 17 July 2008  Accepted: 29 January 2009   Published: 1 April 2009



30 articles found in Crossref database.

High-temperature tolerance of a tropical tree, Ficus insipida: methodological reassessment and climate change considerations
Krause G. Heinrich, Winter Klaus, Krause Barbara, Jahns Peter, García Milton, Aranda Jorge, Virgo Aurelio
Functional Plant Biology. 2010 37(9). p.890
Stomatal and non-stomatal limitations at different leaf temperatures to the photosynthetic process during the post-harvest period forVitis viniferacv. Chardonnay vines.
Greer Dennis H.
New Zealand Journal of Crop and Horticultural Science. 2020 48(1). p.1
Does water stress exacerbate the impacts of heat stress on berry development of Vitis vinifera cv. Semillon vines grown in controlled environment conditions?
Greer Dennis H., Weedon Mark M.
New Zealand Journal of Crop and Horticultural Science. 2023 51(2). p.156
Leaf temperature and CO
Greer Dennis H., Allakhverdiev Suleyman
Functional Plant Biology. 2022 49(7). p.659
Weak phylogenetic and climatic signals in plant heat tolerance
Perez Timothy M., Feeley Kenneth J.
Journal of Biogeography. 2021 48(1). p.91
Heat shock transcriptional factor genes (VfHSFs) of Vitis flexuosa respond differentially to high temperature in grapevines
Lee Ju Hyoung, Kim Seon Ae, Ahn Soon Young, Yun Hae Keun
Horticulture, Environment, and Biotechnology. 2021 62(1). p.87
Minority grapevine varieties as climate change adaptation strategy: Exploring heat tolerance plasticity
Espinosa-Roldán Francisco Emmanuel, Organero Gregorio Muñoz, Fernández Mercedes Uscola, de Santa María Félix Cabello Sáenz, De Toda Fernando Martínez, Roca P.
BIO Web of Conferences. 2023 56 p.01029
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
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
Changes in the temperature-dependency of the photosynthetic response to chloroplast CO2 concentrations of outdoor-grown Vitis vinifera cv. Shiraz vines with a mid-season crop removal
Greer Dennis H.
Environmental and Experimental Botany. 2020 169 p.103914
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
The Science of Grapevines (2020)
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
Simulating the impact of climate change (elevated CO2 and temperature, and water deficit) on the growth of red and white Tempranillo grapevine in three consecutive growing seasons (2013–2015)
Kizildeniz T., Irigoyen J.J, Pascual I., Morales F.
Agricultural Water Management. 2018 202 p.220
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
Interactive effects of high irradiance and moderate heat on photosynthesis, pigments, and tocopherol in the tree-fern Dicksonia antarctica
Volkova Liubov, Tausz Michael, Bennett Lauren T., Dreyer Erwin
Functional Plant Biology. 2009 36(12). p.1046
Grapevine under deficit irrigation: hints from physiological and molecular data
Chaves M. M., Zarrouk O., Francisco R., Costa J. M., Santos T., Regalado A. P., Rodrigues M. L., Lopes C. M.
Annals of Botany. 2010 105(5). p.661
Managing Grapevines through Severe Heat: A Survey of Growers after the 2009 Summer Heatwave in South-eastern Australia
Webb L., Whiting J., Watt A., Hill T., Wigg F., Dunn G., Needs S., Barlow E. W.R.
Journal of Wine Research. 2010 21(2-3). p.147
Net carbon exchange in grapevine canopies responds rapidly to timing and extent of regulated deficit irrigation
Tarara Julie M., Peña Jorge E. Perez, Keller Markus, Schreiner R. Paul, Smithyman Russell P.
Functional Plant Biology. 2011 38(5). p.386
Aroma Composition of Wines Produced from Grapes Treated with Organic Amendments
Palenzuela María del Valle, López de Lerma Nieves, Sánchez-Suárez Fernando, Martínez-García Rafael, Peinado Rafael Andrés, Rosal Antonio
Applied Sciences. 2023 13(14). p.8001
Wheat-Aegilops biuncialis amphiploids have efficient photosynthesis and biomass production during osmotic stress
Dulai Sándor, Molnár István, Szopkó Dóra, Darkó Éva, Vojtkó András, Sass-Gyarmati Andrea, Molnár-Láng Márta
Journal of Plant Physiology. 2014 171(7). p.509
Using UAV‐based remote sensing to assess grapevine canopy damage due to fire smoke
Brunori Elena, Maesano Mauro, Moresi Federico V, Antolini Adriano, Bellincontro Andrea, Forniti Roberto, Biasi Rita, Mencarelli Fabio
Journal of the Science of Food and Agriculture. 2020 100(12). p.4531
Encyclopedia of Agriculture and Food Systems (2014)
Webb L., Darbyshire R., Goodwin I.
Photosynthetic response of Tempranillo grapevine to climate change scenarios
Salazar‐Parra C., Aguirreolea J., Sánchez‐Díaz M., Irigoyen J.J., Morales F.
Annals of Applied Biology. 2012 161(3). p.277
Acclimation effects of heat waves and elevated [CO2] on gas exchange and chlorophyll fluorescence of northern red oak (Quercus rubra L.) seedlings
Bauweraerts Ingvar, Ameye Maarten, Wertin Timothy M., McGuire Mary Anne, Teskey Robert O., Steppe Kathy
Plant Ecology. 2014 215(7). p.733
The Science of Grapevines (2020)
Keller Markus
The Science of Grapevines (2015)
Horticultural Reviews (2018)
Greer Dennis H.
Physiological and biochemical responses of Semillon and Muscat Blanc à Petits Grains winegrapes grown under Mediterranean climate
Dinis L.-T., Correia C.M., Ferreira H.F., Gonçalves B., Gonçalves I., Coutinho J.F., Ferreira M.I., Malheiro A.C., Moutinho-Pereira J.
Scientia Horticulturae. 2014 175 p.128
Terroir aspects of grape quality in a cool climate wine region: Relationship between water deficit, vegetative growth and berry sugar concentration
Zsófi Zs., Tóth E., Rusjan D., Bálo B.
Scientia Horticulturae. 2011 127(4). p.494

Committee on Publication Ethics


Abstract Export Citation Get Permission