Differential Responses of Stomata and Photosynthesis to Elevated Temperature in Two Co-occurring Subtropical Forest Tree Species
暂无分享,去创建一个
Qing Ye | Yixue Lin | Juxiu Liu | Pengcheng He | Hui Liu | Lei Hua | Lei Hua | Juxiu Liu | Guilin Wu | Qi Luo | Shiwei Feng | Q. Ye | Pengcheng He | Hui Liu | Q. Luo | Guilin Wu | Yixue Lin | Shi-xian Feng
[1] D. Southworth,et al. Morphology and Stomatal Function of Douglas Fir Needles Exposed to Climate Change: Elevated CO2 and Temperature1 , 2000, International Journal of Plant Sciences.
[2] R. Dunn,et al. Stomatal acclimation to vapour pressure deficit doubles transpiration of small tree seedlings with warming. , 2016, Plant, cell & environment.
[3] K. Mott,et al. Stomatal responses to humidity and temperature in darkness. , 2010, Plant, cell & environment.
[4] Jordi Martínez-Vilalta,et al. Water potential regulation, stomatal behaviour and hydraulic transport under drought: deconstructing the iso/anisohydric concept. , 2017, Plant, cell & environment.
[5] K. Winter,et al. High tolerance of tropical sapling growth and gas exchange to moderate warming , 2018 .
[6] Daniel M. Johnson,et al. Does homeostasis or disturbance of homeostasis in minimum leaf water potential explain the isohydric versus anisohydric behavior of Vitis vinifera L. cultivars? , 2012, Tree physiology.
[7] C. Peng,et al. A climate change‐induced threat to the ecological resilience of a subtropical monsoon evergreen broad‐leaved forest in Southern China , 2013, Global change biology.
[8] Rongzhi Li,et al. Plant hydraulics and photosynthesis of 34 woody species from different successional stages of subtropical forests. , 2013, Plant, cell & environment.
[9] P. Reich,et al. Strong thermal acclimation of photosynthesis in tropical and temperate wet‐forest tree species: the importance of altered Rubisco content , 2017, Global change biology.
[10] Peter A. Troch,et al. Temperature sensitivity of drought-induced tree mortality portends increased regional die-off under global-change-type drought , 2009, Proceedings of the National Academy of Sciences.
[11] N. McDowell,et al. Mechanisms of plant survival and mortality during drought: why do some plants survive while others succumb to drought? , 2008, The New phytologist.
[12] R. Oren,et al. Stomatal sensitivity to vapor pressure deficit and its relationship to hydraulic conductance in Pinus palustris. , 2004, Tree physiology.
[13] T. Brodribb,et al. Differential leaf expansion can enable hydraulic acclimation to sun and shade. , 2012, Plant, cell & environment.
[14] Graham D. Farquhar,et al. The Mechanical Diversity of Stomata and Its Significance in Gas-Exchange Control[OA] , 2006, Plant Physiology.
[15] D. Way,et al. Thermal acclimation of photosynthesis: on the importance of adjusting our definitions and accounting for thermal acclimation of respiration , 2013, Photosynthesis Research.
[16] Guangsheng Zhou,et al. Responses of leaf stomatal density to water status and its relationship with photosynthesis in a grass , 2008, Journal of experimental botany.
[17] Michael J. Aspinwall,et al. Trees tolerate an extreme heatwave via sustained transpirational cooling and increased leaf thermal tolerance , 2018, Global change biology.
[18] U. Pathre,et al. SlERF36, an EAR-motif-containing ERF gene from tomato, alters stomatal density and modulates photosynthesis and growth , 2013, Journal of experimental botany.
[19] P. Sharpe,et al. Water stress effects on guard cell anatomy and the mechanical advantage of the epidermal cells , 1986 .
[20] S. Kellomäki,et al. Stomatal density, anatomy and nutrient concentrations of Scots pine needles are affected by elevated CO2 and temperature , 2005 .
[21] C. Mikona,et al. Photosynthetic induction and leaf carbon gain in the tropical understorey epiphyte, Aspasia principissa. , 2003, Annals of botany.
[22] Maggi Kelly,et al. Twentieth-century shifts in forest structure in California: Denser forests, smaller trees, and increased dominance of oaks , 2015, Proceedings of the National Academy of Sciences.
[23] J. Riikonen,et al. Warming and elevated ozone differently modify needle anatomy of Norway spruce (Picea abies) and Scots pine (Pinus sylvestris) , 2017 .
[24] Robert John,et al. Are functional traits a good predictor of global change impacts on tree species abundance dynamics in a subtropical forest? , 2015, Ecology letters.
[25] D. F. Parkhurst,et al. Diffusion of CO2 and other gases inside leaves. , 1994, The New phytologist.
[26] J. Berry,et al. A biochemical model of photosynthetic CO2 assimilation in leaves of C3 species , 1980, Planta.
[27] Klaus Winter,et al. Photosynthetic acclimation to warming in tropical forest tree seedlings , 2017, Journal of experimental botany.
[28] K. Hikosaka,et al. Temperature response of photosynthesis in C3, C4, and CAM plants: temperature acclimation and temperature adaptation , 2013, Photosynthesis Research.
[29] R. Teskey,et al. Increase in leaf temperature opens stomata and decouples net photosynthesis from stomatal conductance in Pinus taeda and Populus deltoides x nigra , 2017, Journal of experimental botany.
[30] I. Impens,et al. Elevated CO2and Temperature have Different Effects on Leaf Anatomy of Perennial Ryegrass in Spring and Summer , 1996 .
[31] I. Hara-Nishimura,et al. Enhancement of leaf photosynthetic capacity through increased stomatal density in Arabidopsis. , 2013, The New phytologist.
[32] J. Gray,et al. Manipulating stomatal density enhances drought tolerance without deleterious effect on nutrient uptake , 2015, The New phytologist.
[33] Z. Shangguan,et al. Contrasting responses of leaf stomatal characteristics to climate change: a considerable challenge to predict carbon and water cycles , 2017, Global change biology.
[34] J. Ehleringer,et al. Intra- and interspecific variation for summer precipitation use in pinyon-juniper woodlands , 2000 .
[35] T. Klein. The variability of stomatal sensitivity to leaf water potential across tree species indicates a continuum between isohydric and anisohydric behaviours , 2014 .
[36] David J. Beerling,et al. Maximum leaf conductance driven by CO2 effects on stomatal size and density over geologic time , 2009, Proceedings of the National Academy of Sciences.
[37] L. Fraser,et al. Adaptive phenotypic plasticity of Pseudoroegneria spicata: response of stomatal density, leaf area and biomass to changes in water supply and increased temperature. , 2009, Annals of botany.
[38] Robbie Waugh,et al. Reducing Stomatal Density in Barley Improves Drought Tolerance without Impacting on Yield1[CC-BY] , 2017, Plant Physiology.
[39] R. Hill,et al. Temperature influences stomatal density and maximum potential water loss through stomata of Dodonaea viscosa subsp. angustissima along a latitude gradient in southern Australia , 2014 .
[40] R. Seager,et al. Temperature as a potent driver of regional forest drought stress and tree mortality , 2013 .
[41] Klaus Winter,et al. In situ temperature relationships of biochemical and stomatal controls of photosynthesis in four lowland tropical tree species. , 2017, Plant, cell & environment.
[42] A. Gosselin,et al. Persistent negative temperature response of mesophyll conductance in red raspberry (Rubus idaeus L.) leaves under both high and low vapour pressure deficits: a role for abscisic acid? , 2017, Plant, cell & environment.
[43] D. Beerling,et al. Fossil Plants and Global Warming at the Triassic-Jurassic Boundary. , 1999, Science.
[44] F. Woodward,et al. The role of stomata in sensing and driving environmental change , 2003, Nature.
[45] T. Buckley,et al. The control of stomata by water balance. , 2005, The New phytologist.
[46] R. B. Jackson,et al. Stomatal acclimation over a subambient to elevated CO2 gradient in a C3/C4 grassland , 2002 .
[47] G. Edwards,et al. Control of Photosynthesis and Stomatal Conductance in Ricinus communis L. (Castor Bean) by Leaf to Air Vapor Pressure Deficit. , 1992, Plant physiology.
[48] K. Miura,et al. The Arabidopsis GTL1 Transcription Factor Regulates Water Use Efficiency and Drought Tolerance by Modulating Stomatal Density via Transrepression of SDD1[W][OA] , 2010, Plant Cell.
[49] L. Anderegg,et al. Consequences of widespread tree mortality triggered by drought and temperature stress , 2013 .
[50] Ming Xu,et al. Effects of experimental warming on stomatal traits in leaves of maize (Zea may L.) , 2013, Ecology and evolution.
[51] D. Beerling,et al. The Impact of Atmospheric CO2 and Temperature Changes on Stomatal Density: Observation from Quercus robur Lammas Leaves , 1993 .
[52] Y. N. Chen,et al. Photosynthesis of Populus euphratica in relation to groundwater depths and high temperature in arid environment, northwest China , 2010, Photosynthetica.
[53] A. Fredeen,et al. Temperature and humidity effects on branchlet gas-exchange in white spruce: an explanation for the increase in transpiration with branchlet temperature , 1999, Trees.