Low-Cost Chlorophyll Fluorescence Imaging for Stress Detection
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[1] A. Ruban. Evolution under the sun: optimizing light harvesting in photosynthesis. , 2015, Journal of experimental botany.
[2] Hartmut K. Lichtenthaler,et al. Principles and characteristics of multi-colour fluorescence imaging of plants , 1998 .
[3] A. Oukarroum,et al. Early Identification of Herbicide Modes of Action by the Use of Chlorophyll Fluorescence Measurements , 2020, Plants.
[4] N. Baker,et al. Rapid, Noninvasive Screening for Perturbations of Metabolism and Plant Growth Using Chlorophyll Fluorescence Imaging1 , 2003, Plant Physiology.
[5] G. Percival. The Use Of Chlorophyll Fluorescence To Identify Chemical And Environmental Stress In Leaf Tissue Of Three Oak (Quercus) Species , 2005, Arboriculture & Urban Forestry.
[6] M. Lagorio,et al. Atrazine and Methyl Viologen Effects on Chlorophyll‐a Fluorescence Revisited—Implications in Photosystems Emission and Ecotoxicity Assessment , 2014, Photochemistry and photobiology.
[7] M. Peet,et al. Measurement of Chlorophyll Fluorescence as a Heat Stress Indicator in Tomato: Laboratory and Greenhouse Comparisons , 2001 .
[8] Onno Muller,et al. Modulation of photosynthetic energy conversion efficiency in nature: from seconds to seasons , 2012, Photosynthesis Research.
[9] Ladislav Nedbal,et al. Chlorophyll Fluorescence Imaging of Leaves and Fruits , 2004 .
[10] Julie C. Naumann,et al. Leaf chlorophyll fluorescence, reflectance, and physiological response to freshwater and saltwater flooding in the evergreen shrub, Myrica cerifera , 2008 .
[11] A. Trebst. Chapter 8 – The Mode of Action of Triazine Herbicides in Plants , 2008 .
[12] Walter Kühbauch,et al. Distinguishing nitrogen deficiency and fungal infection of winter wheat by laser-induced fluorescence , 2006, Precision Agriculture.
[13] L. Nedbal,et al. Plant response to destruxins visualized by imaging of chlorophyll fluorescence , 2003 .
[14] E. Fuerst,et al. Interactions of Herbicides with Photosynthetic Electron Transport , 1991, Weed Science.
[15] Xiaoxu Fan,et al. Proteomic analysis of the response of Funnelifor mismosseae/Medicago sativa to atrazine stress , 2018, BMC Plant Biology.
[16] Lee A. Vierling,et al. A simple filtered photodiode instrument for continuous measurement of narrowband NDVI and PRI over vegetated canopies , 2010 .
[17] V. Hurry,et al. Photosynthesis, photoinhibition and low temperature acclimation in cold tolerant plants , 1993, Photosynthesis Research.
[18] J. Briantais,et al. The relationship between the quantum yield of photosynthetic electron transport and quenching of chlorophyll fluorescence , 1989 .
[19] R. H. Shimabukuro,et al. Atrazine metabolism, selectivity, and mode of action , 1969 .
[20] W. Bilger,et al. Chlorophyll fluorescence as an indicator of heat induced limitation of photosynthesis in Arbutus unedo L. , 1987 .
[21] R. Strasser,et al. Characterization and early detection of grapevine (Vitis vinifera) stress responses to esca disease by in situ chlorophyll fluorescence and comparison with drought stress , 2007 .
[22] F. Araniti,et al. Imaging of Chlorophyll a Fluorescence in Natural Compound-Induced Stress Detection , 2020, Frontiers in Plant Science.
[23] Haiyan Cen,et al. Chlorophyll Fluorescence Imaging Uncovers Photosynthetic Fingerprint of Citrus Huanglongbing , 2017, Front. Plant Sci..
[24] A. Cobb,et al. The Inhibition of Amino Acid Biosynthesis , 2010 .
[25] C. Field,et al. A narrow-waveband spectral index that tracks diurnal changes in photosynthetic efficiency , 1992 .
[26] Francine Heisel,et al. Detection of Nutrient Deficiencies of Maize by Laser Induced Fluorescence Imaging , 1996 .
[27] H. Kautsky,et al. Neue Versuche zur Kohlensäureassimilation , 1931, Naturwissenschaften.
[28] P. Juneau,et al. Applications of Chlorophyll Fluorescence in Ecotoxicology: Heavy Metals, Herbicides, and Air Pollutants , 2003 .
[29] E. Stoller,et al. Chlorophyll Fluorescence Assay for the Determination of Triazine Resistance , 1981, Weed Science.
[30] W. Bilger,et al. Chlorophyll fluorescence as a nonintrusive indicator for rapid assessment of in vivo photosynthesis , 1994 .
[31] U. Rosyara,et al. The effect of spot blotch and heat stress on variation of canopy temperature depression, chlorophyll fluorescence and chlorophyll content of hexaploid wheat genotypes , 2010, Euphytica.
[32] R. Conrad,et al. Changes in yield ofin-vivo fluorescence of chlorophyll a as a tool for selective herbicide monitoring , 1993, Journal of Applied Phycology.
[33] H. Jones,et al. Monitoring and screening plant populations with combined thermal and chlorophyll fluorescence imaging. , 2007, Journal of experimental botany.
[34] David Baker,et al. Using chlorophyll fluorescence to assess the fraction of absorbed light allocated to thermal dissipa , 2008 .
[35] M. Strand,et al. Inhibition of photosynthesis by freezing temperatures and high light Levels in cold‐acclimated seedlings of Scots pine (Pinus sylvestris). ‐ I. Effects on the light‐limited and light‐saturated rates of CO2 assimilation , 1985 .
[36] Hartmut K. Lichtenthaler,et al. Detection of photosynthetic activity and water stressby imaging the red chlorophyll fluorescence , 2000 .
[37] A. Das,et al. Salt tolerance and salinity effects on plants: a review. , 2005, Ecotoxicology and environmental safety.
[38] K. Hasenstein,et al. Effects of Salinity on Endogenous Aba, Iaa, Ja, and Sa in Iris hexagona , 2001, Journal of Chemical Ecology.
[39] M. Tevini. Plant Responses to Ultraviolet Radiation Stress , 2004 .
[40] Paul F. Daley,et al. Chlorophyll fluorescence analysis and imaging in plant stress and disease , 1994 .
[41] J. Palta,et al. Responses to abiotic stresses. , 1998 .
[42] C. Arntzen,et al. Effects of Atrazine, Cyanazine, and Procyazine on the Photochemical Reactions of Isolated Chloroplasts , 1979, Weed Science.
[43] M. Marietta,et al. Electron‐dependent competition between plastoquinone and inhibitors for binding to photosystem II , 1981 .
[44] G. C. Gibbons,et al. Chlorophyll fluorescence photography to detect mutants, chilling injury and heat stress , 1980 .
[45] James E. Specht,et al. Soybean response to water : A QTL analysis of drought tolerance , 2001 .
[46] Á. Calatayud,et al. Spatial-temporal variations in rose leaves under water stress conditions studied by chlorophyll fluorescence imaging. , 2006, Plant physiology and biochemistry : PPB.
[47] H. Nishina,et al. Chlorophyll Fluorescence Imaging at 77 K for Assessing the Heterogeneously Distributed Light Stress Over a Leaf Surface , 2007 .
[48] D. Campbell,et al. Contrasting nonphotochemical quenching patterns under high light and darkness aligns with light niche occupancy in Arctic diatoms , 2020, Limnology and Oceanography.
[49] Dominique Van Der Straeten,et al. Chlorophyll fluorescence imaging for disease-resistance screening of sugar beet , 2007, Plant Cell Tissue and Organ Culture.
[50] H. Lichtenthaler,et al. Chlorophyll Fluorescence Spectra of Leaves as Induced by Blue Light and Red Laser Light , 1988 .
[51] J. Harbinson,et al. Insights on the development, kinetics, and variation of photoinhibition using chlorophyll fluorescence imaging of a chilled, variegated leaf. , 2006, Journal of experimental botany.
[52] Yaping Gao,et al. The impact of the herbicide atrazine on growth and photosynthesis of seagrass, Zostera marina (L.), seedlings. , 2011, Marine pollution bulletin.
[53] M. Polissiou,et al. THE EFFECT OF WATER DEFICIT STRESS ON THE GROWTH, YIELD AND COMPOSITION OF ESSENTIAL OILS OF PARSLEY , 2008 .
[54] Hartmut K. Lichtenthaler,et al. The Role of Chlorophyll Fluorescence in The Detection of Stress Conditions in Plants , 1988 .
[55] Diana Marais,et al. The effect of drought stress on yield, leaf gaseous exchange and chlorophyll fluorescence of dry beans (Phaseolus vulgaris L.) , 2017 .
[56] Roland Gerhards,et al. Utilization of Chlorophyll Fluorescence Imaging Technology to Detect Plant Injury by Herbicides in Sugar Beet and Soybean , 2017, Weed Technology.
[57] Xiaoxu Fan,et al. Responses of photosynthesis-related parameters and chloroplast ultrastructure to atrazine in alfalfa (Medicago sativa L.) inoculated with arbuscular mycorrhizal fungi. , 2018, Ecotoxicology and environmental safety.
[58] G. Krause,et al. Chlorophyll Fluorescence and Photosynthesis: The Basics , 1991 .
[59] M. Sowinska,et al. Multicolour Fluorescence Imaging of Sugar Beet Leaves with Different Nitrogen Status by Flash Lamp UV-Excitation , 2000, Photosynthetica.
[60] A. Ruban. Nonphotochemical Chlorophyll Fluorescence Quenching: Mechanism and Effectiveness in Protecting Plants from Photodamage1 , 2016, Plant Physiology.
[61] P. Tranel,et al. Survey of Glyphosate-, Atrazine- and Lactofenresistance Mechanisms in Ohio Waterhemp (Amaranthus tuberculatus) Populations , 2019, Weed Science.
[62] S. Nematov,et al. Response of the photosynthetic apparatus of cotton (Gossypium hirsutum) to the onset of drought stress under field conditions studied by gas-exchange analysis and chlorophyll fluorescence imaging. , 2008, Plant physiology and biochemistry : PPB.
[63] J. J. Rensen. Action of some herbicides in photosynthesis of Scenedesmus as studied by their effects on oxygen evolution and cyclic photophosphorylation , 1971 .
[64] Hui Li,et al. Early Identification of Herbicide Stress in Soybean (Glycine max (L.) Merr.) Using Chlorophyll Fluorescence Imaging Technology , 2017, Sensors.
[65] Peter M.A. Toivonen,et al. Practical Applications of Chlorophyll Fluorescence in Plant Biology , 2003, Springer US.
[66] M. V. van Iersel,et al. Supplemental Far-Red Light Stimulates Lettuce Growth: Disentangling Morphological and Physiological Effects , 2021, Plants.
[67] D. Hagenbeek,et al. Thermal and chlorophyll-fluorescence imaging distinguish plant-pathogen interactions at an early stage. , 2004, Plant & cell physiology.