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

Articles citing this paper

Effect of elevated [CO2] on photosynthesis and growth of snow gum (Eucalyptus pauciflora) seedlings during winter and spring

John S. Roden, John J. G. Egerton and Marilyn C. Ball
26(1) pp.37 - 46


36 articles found in Crossref database.

Growth in elevated CO2 protects photosynthesis against high‐temperature damage
Taub Daniel R., Seemann Jeffrey R., Coleman James S.
Plant, Cell & Environment. 2000 23(6). p.649
Seasonal changes in vegetative growth and photosynthesis of Arabica coffee trees
Silva Emerson A, DaMatta Fábio M, Ducatti Carlos, Regazzi Adair J, Barros Raimundo S
Field Crops Research. 2004 89(2-3). p.349
Time to chill: effects of simulated global change on leaf ice nucleation temperatures of subarctic vegetation
Beerling D. J., Terry A. C., Mitchell P. L., Callaghan T. V., Gwynn‐Jones D., Lee J. A.
American Journal of Botany. 2001 88(4). p.628
The temperature response of leaf dark respiration in 15 provenances of Eucalyptus grandis grown in ambient and elevated CO2
Aspinwall Michael J., Jacob Vinod K., Blackman Chris J., Smith Renee A., Tjoelker Mark G., Tissue David T.
Functional Plant Biology. 2017 44(11). p.1075
Photosynthesis of Overwintering Evergreen Plants
Öquist Gunnar, Huner Norman P.A.
Annual Review of Plant Biology. 2003 54(1). p.329
Practical Applications of Chlorophyll Fluorescence in Plant Biology (2003)
Mohammed Gina H., Zarco-Tejada Pablo, Miller John R.
The impacts of rising CO2 concentrations on Australian terrestrial species and ecosystems
HOVENDEN MARK J., WILLIAMS AMITY L.
Austral Ecology. 2010 35(6). p.665
CO2 enrichment and development of freezing tolerance in Norway spruce
Dalen Lars Sandved, Johnsen Øystein, Ogner Gunnar
Physiologia Plantarum. 2001 113(4). p.533
A meta‐analysis of responses of C3 plants to atmospheric CO2: dose–response curves for 85 traits ranging from the molecular to the whole‐plant level
Poorter Hendrik, Knopf Oliver, Wright Ian J., Temme Andries A., Hogewoning Sander W., Graf Alexander, Cernusak Lucas A., Pons Thijs L.
New Phytologist. 2022 233(4). p.1560
FACILITATION OF SEEDLING ESTABLISHMENT: REDUCTION IN IRRADIANCE ENHANCES WINTER GROWTH OFEUCALYPTUS PAUCIFLORA
Egerton John J. G., Banks John C. G., Gibson Ann, Cunningham Ross B., Ball Marilyn C.
Ecology. 2000 81(5). p.1437
Assessment of photosynthetic potential of indoor plants under cold stress
Gupta S. M., Agarwal A., Dev B., Kumar K., Prakash O., Arya M. C., Nasim M.
Photosynthetica. 2016 54(1). p.138
Spatial patterning of pigmentation in evergreen leaves in response to freezing stress
NICOTRA A. B., HOFMANN M., SIEBKE K., BALL M. C.
Plant, Cell & Environment. 2003 26(11). p.1893
Photoprotection, Photoinhibition, Gene Regulation, and Environment (2008)
Adams III William W., Zarter C. Ryan, Mueh Kristine E., Amiard V’eronique, Demmig-Adams Barbara
In situ photosynthetic freezing tolerance for plants exposed to a global warming manipulation in the Rocky Mountains, Colorado, USA
Loik Michael E., Still Christopher J., Huxman Travis E., Harte John
New Phytologist. 2004 162(2). p.331
Feeling the cold: atmospheric CO2 enrichment and the frost sensitivity of terrestrial plant foliage
Beerling D.J, Terry A.C, Hopwood C, Osborne C.P
Palaeogeography, Palaeoclimatology, Palaeoecology. 2002 182(1-2). p.3
Diurnal and Seasonal Changes in Photosynthesis and Photosystem 2 Photochemical Efficiency in Prosopis juliflora Leaves Subjected to Natural Environmental Stress
Shirke P.A., Pathre U.V.
Photosynthetica. 2003 41(1). p.83
Frost in a future climate: modelling interactive effects of warmer temperatures and rising atmospheric [CO2] on the incidence and severity of frost damage in a temperate evergreen (Eucalyptus pauciflora)
WOLDENDORP GEMMA, HILL MICHAEL J., DORAN RUTH, BALL MARILYN C.
Global Change Biology. 2008 14(2). p.294
Higher daytime leaf temperatures contribute to lower freeze tolerance under elevated CO2
LOVEYS BETH R., EGERTON JOHN J. G., BALL MARILYN C.
Plant, Cell & Environment. 2006 29(6). p.1077
Eucalypt plantations and climate change
Booth Trevor H.
Forest Ecology and Management. 2013 301 p.28
Does soil nitrogen influence growth, water transport and survival of snow gum (Eucalyptus pauciflora Sieber ex Sprengel.) under CO2 enrichment?
ATWELL BRIAN J., HENERY MARTIN L., BALL MARILYN C.
Plant, Cell & Environment. 2009 32(5). p.553
Relationships between climate of origin and photosynthetic responses to an episodic heatwave depend on growth CO2 concentration for Eucalyptus camaldulensis var. camaldulensis
Loik Michael E., Resco de Dios Víctor, Smith Renee, Tissue David T.
Functional Plant Biology. 2017 44(11). p.1053
CO2 enrichment predisposes foliage of a eucalypt to freezing injury and reduces spring growth
BARKER DAVID H., LOVEYS BETH R., EGERTON JOHN J. G., GORTON HOLLY, WILLIAMS WILLIAM E., BALL MARILYN C.
Plant, Cell & Environment. 2005 28(12). p.1506
Photosynthesis and Photoprotection in Overwintering Plants
Adams III W. W., Demmig‐Adams B., Rosenstiel T. N., Brightwell A. K., Ebbert V.
Plant Biology. 2002 4(5). p.545
Light Intensity: The Role Player in Cucumber Response to Cold Stress
Ashrostaghi Tahereh, Aliniaeifard Sasan, Shomali Aida, Azizinia Shiva, Abbasi Koohpalekani Jahangir, Moosavi-Nezhad Moein, Gruda Nazim S.
Agronomy. 2022 12(1). p.201
Photosynthetic downregulation in leaves of the Japanese white birch grown under elevated CO2 concentration does not change their temperature‐dependent susceptibility to photoinhibition
Komatsu Masabumi, Tobita Hiroyuki, Watanabe Makoto, Yazaki Kenichi, Koike Takayoshi, Kitao Mitsutoshi
Physiologia Plantarum. 2013 147(2). p.159
The Leaf: A Platform for Performing Photosynthesis (2018)
Adams William W., Stewart Jared J., Demmig-Adams Barbara
Does the growth response of woody plants to elevated CO2 increase with temperature? A model‐oriented meta‐analysis
Baig Sofia, Medlyn Belinda E., Mercado Lina M., Zaehle Sönke
Global Change Biology. 2015 21(12). p.4303
Differences in Microsite, Plant Form, and Low-Temperature Photoinhibition in Alpine Plants
Germino M. J., Smith W. K.
Arctic, Antarctic, and Alpine Research. 2000 32(4). p.388
Leaf structural responses to pre-industrial, current and elevated atmospheric [CO2] and temperature affect leaf function in Eucalyptus sideroxylon
Smith Renee A., Lewis James D., Ghannoum Oula, Tissue David T.
Functional Plant Biology. 2012 39(4). p.285
Interactive direct and plant‐mediated effects of elevated atmospheric [CO2] and temperature on a eucalypt‐feeding insect herbivore
Murray T. J., Ellsworth D. S., Tissue D. T., Riegler M.
Global Change Biology. 2013 19(5). p.1407
Early-growth results within a Eucalyptus globulus breeding population suggest limited scope for selection focused on CO2 responsiveness
Brookhouse Matthew Theodore, Bush David, Ivkovich Milos, Busch Florian, Farquhar Graham Douglas, Pinkard Elizabeth
Tree Genetics & Genomes. 2022 18(2).
Winter survival and deacclimation of perennials under warming climate: physiological perspectives
Pagter Majken, Arora Rajeev
Physiologia Plantarum. 2013 147(1). p.75
Convergence of tree water use and hydraulic architecture in water‐limited regions: a review and synthesis
Zeppel Melanie
Ecohydrology. 2013 6(5). p.889
Climate change and Australia: Trends, projections and impacts
Hughes Lesley
Austral Ecology. 2003 28(4). p.423
Root Damage by Insects Reverses the Effects of Elevated Atmospheric CO2 on Eucalypt Seedlings
Johnson Scott N., Riegler Markus, Bond-Lamberty Ben
PLoS ONE. 2013 8(11). p.e79479
Exposure to preindustrial, current and future atmospheric CO2 and temperature differentially affects growth and photosynthesis in Eucalyptus
GHANNOUM OULA, PHILLIPS NATHAN G., CONROY JANN P., SMITH RENEE A., ATTARD RENEE D., WOODFIELD ROSLYN, LOGAN BARRY A., LEWIS JAMES D., TISSUE DAVID T.
Global Change Biology. 2010 16(1). p.303

Committee on Publication Ethics


Abstract Export Citation Get Permission