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Using chlorophyll fluorescence, photosynthetic enzymes and pigment composition to discriminate drought-tolerant ecotypes of Argania spinosa

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References

  • Arkus KAJ, Cahoon EB, Jez JM. 2005. Mechanistic analysis of wheat chlorophyllase. Arch Biochem Biophys 438: 146–155.10.1016/j.abb.2005.04.019
  • Baker NR, Rosenqvist E. 2004. Applications of chlorophyll fluorescence can improve crop production strategies: An examination of future possibilities. J Exp Bot 55: 1607–1621.10.1093/jxb/erh196
  • Borrmann D, Junqueira RM, Sinnecker P, Gomes MSO, Castro IA, Marquez UML. 2009. Chemical and biochemical characterization of soybean produced under drought stress. Ciênc Tecnol Aliment 29: 676–681.10.1590/S0101-20612009000300034
  • Bowler CL, Slooten S, Vandenbranden R, De Rycke J, Botterman C, Sybesma M, et al. 1991. Manganese superoxide dismutase can reduce cellular damage mediated by oxygen radicals in transgenic plants. EMBO J 10: 1723–1732.
  • Bradford MM. 1976. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Anal Biochem 72: 248–254.10.1016/0003-2697(76)90527-3
  • Brestic M, Cornic G, Fryer MJ, Baker NB. 1995. Does photorespiration protect the photosynthetic apparatus in French bean leaves from photoinhibition during drought stress? Planta 196: 450–457.
  • Castellarin SD, Pfeiffer A, Sivilotti P, Degan M, Peterlunger E, DiGaspero G. 2007. Transcriptional regulation of anthocyanin biosynthesis in ripening fruits of grapevine under seasonal water deficit. Plant Cell Environ 30: 1381–1399.10.1111/pce.2007.30.issue-11
  • Chakhchar A, Ferradous A, Lamaoui M, Wahbi S, El Modafar C. 2011. Changes in antioxidant enzymes activity and oxidative damage in four Argania spinosa ecotypes under water stress conditions. Nat Precedings. http://dx.doi.org/10.1038/npre.2011.6189.1
  • Chakhchar A, Lamaoui M, Wahbi S, Ferradous A, El Mousadik A, Ibnsouda-Koraichi S, et al. 2015. Leaf water status, osmoregulation and secondary metabolism as a model for depicting drought tolerance in Argania spinosa. Acta Physiol Plant 37: 1–16.
  • Chakhchar A, Lamaoui M, Aissam S, Ferradous A, Wahbi S, El Mousadik A, et al. 2016. Differential physiological and antioxidative responses to drought stress and recovery among four contrasting Argania spinosa ecotypes. J Plant Interact 11: 30–40.10.1080/17429145.2016.1148204
  • Chalker-Scott L. 2002. Do anthocyanins function as osmoregulators in leaf tissues? Adv Bot Res 37: 103–127.10.1016/S0065-2296(02)37046-0
  • Chalker-Scott L. 1999. Environmental significance of anthocyanins in plant stress responses. Photochem Photobiol 70: 1–9.10.1111/php.1999.70.issue-1
  • Díaz-Barradas MC, Zunzunegui M, Ain-Lhout F, Jáuregui J, Boutaleb S, Álvarez-Cansino L, et al. 2010. Seasonal physiological responses of Argania spinosa tree from Mediterranean to semi-arid climate. Plant Soil 337: 217–231.10.1007/s11104-010-0518-8
  • El-Tayeb AM. 2006. Differential responses of pigments, lipid peroxidation, organic solutes, catalase and peroxidase activity in the leaves of two Vicia faba L. cultivars to drought. Int J Agric Biol 8: 116–122.
  • Epron D, Dreyer E. 1992. Effects of severe dehydration on leaf photosynthesis in Quercus petraea (Matt) Liebl.: Photosystem II efficiency, photochemical and nonphotochemical fluorescence quenching and electrolyte leakage. Tree Physiol 10: 273–284.10.1093/treephys/10.3.273
  • Fang Z, Bouwkamp JC, Solomos T. 1998. Chlorophyllase activities and chlorophyll degradation during leaf senescence in non-yellowing mutant and wild type of Phaseolus vulgaris L. J Exp Bot 49: 503–510.
  • Genty B, Harbinson J, Briantais JM, Baker NB. 1990. The relationship between non-photochemical quenching of chlorophyll fluorescence and the rate of photosystem 2 photochemistry in leaves. Photosynth Res 25: 249–257.10.1007/BF00033166
  • Gould KS, Mckelvie J, Markham KR. 2002. Do anthocyanins function as antioxidants in leaves? Imaging of H2O2 in red and Green leaves after mechanical injury. Plant Cell Environ 25: 1262–1269.
  • Higuchi-Takeuchi M, Ichikawa T, Kondou Y, Matsui K, Hasegawa Y, Kawashima M, et al. 2011. Functional analysis of two isoforms of leaf-type ferredoxin-NADP+ -oxidoreductase in rice using the heterologous expression system of arabidopsis. Plant Physiol 157: 96–108.10.1104/pp.111.181248
  • Jaleel CA, Manivannan P, Wahid A, Farooq M, Al-Juburi HJ, Somasundaram R, et al. 2009. Drought stress in plants a review on morphological characteristics and pigments composition. Int J Agric Biol 11: 100–105.
  • Jung S. 2004. Variation in antioxidant metabolism of young and mature leaves of Arabidopsis thaliana subjected to drought. Plant Sci 166: 459–466.10.1016/j.plantsci.2003.10.012
  • Kalaji HM, Schansker G, Ladle RJ, Goltsev V, Bosa K, Allakhverdiev SI, et al. 2014. Frequently asked questions about in vivo chlorophyll fluorescence: practical issues. Photosynth Res 122: 121–158.10.1007/s11120-014-0024-6
  • Krause GH, Weis E. 1991. Chlorophyll fluorescence and photosynthesis: The basics. Annu Rev Plant Physiol Plant Mol Biol 42: 313–349.10.1146/annurev.pp.42.060191.001525
  • Lichtenthaler HK. 1987. Chlorophylls and carotenoids, the pigments of photosynthetic biomembranes. Methods Enzymol 148: 350–382.10.1016/0076-6879(87)48036-1
  • Lu C, Zhang J. 1998. Effects of water stress on photosynthesis, chlorophyll fluorescence and photoinhibition in wheat plants. Aust J Plant Physiol 25: 883–892.10.1071/PP98129
  • Majumdar SS, Ghosh B, Glick R, Dumbroff EB. 1991. Activities of chlorophyllase, phosphoenolpyruvate carboxylase and ribulose-1, 5-bisphosphate carboxylase in the primary leaves of soybean during senescence and drought. Physiol Plant 81: 473–480.10.1111/ppl.1991.81.issue-4
  • Maxwell K, Johnson GN. 2000. Chlorophyll fluorescence – A practical guide. J Exp Bot 51: 659–668.
  • Mihailović N, Lazarević M, Dželetović Z, Vučković M, Đurđević M. 1997. Chlorophyllase activity in wheat Triticum aestivum L. leaves during drought and its dependence on the nitrogen ion form applied. Plant Sci 129: 141–146.10.1016/S0168-9452(97)00189-1
  • Mobin M, Khan NA. 2007. Photosynthetic activity, pigment composition and antioxidative response of two mustard (Brassica juncea) cultivars differing in photosynthetic capacity subjected to cadmium stress. J Plant Physiol 164: 601–610.10.1016/j.jplph.2006.03.003
  • Msanda F, El Aboudi A, Peltier JP. 2005. Biodiversity and biogeography of Moroccan argan tree communities. Cah Agric 14: 357–364.
  • Neill SO, Gould KS, Kilmartin PA, Mitchell KA, Markham KR. 2002. Antioxidant activities of red versus green leaves in Elatostema rugosum. Plant Cell Environ 25: 539–547.10.1046/j.1365-3040.2002.00837.x
  • Nikolaeva MK, Maevskaya SN, Shugaev AG, Bukhov NG. 2010. Effect of drought on chlorophyll content and antioxidant enzyme activities in leaves of three wheat cultivars varying in productivity. Russian J Plant Physiol 57: 87–95.10.1134/S1021443710010127
  • Nogués S, Baker NR. 2000. Effects of drought on photosynthesis in Mediterranean plants grown under enhanced UV-B radiation. J Exp Bot 51: 1309–1317.
  • Pádua GP, Carvalho MLM, França-Neto JB, Guerreiro MC, Guimarães RM. 2009. Response of soybean genotypes to the expression of green seed under temperature and water stresses. Rev Bras Sementes 31: 140–149.10.1590/S0101-31222009000300016
  • Parida AK, Dagaonkar VS, Phalak MS, Umalkar GV, Aurangabadkar LP. 2007. Alterations in photosynthetic pigments, protein and osmotic components in cotton genotypes subjected to short-term drought stress followed by recovery. Plant Biotechnol Rep 1: 37–48.10.1007/s11816-006-0004-1
  • Pita P, Cañas I, Soria F, Ruiz F, Toval G. 2005. Use of physiological traits in tree breeding for improved yield in drought-prone environments. The case of Eucalyptus globulus. Invest Agrar: Sist Recur For 14: 383–393.
  • Sims DA, Gamon JA. 2002. Relationships between leaf pigment content and spectral reflectance across a wide range of species, leaf structures and developmental stages. Remote Sens Environ 81: 337–354.10.1016/S0034-4257(02)00010-X
  • Smirnoff N. 1993. The role of active oxygen in the response of plants to water deficit and desiccation. New Phytol 125: 27–58.10.1111/nph.1993.125.issue-1
  • Swenson U, Anderberg AA. 2005. Phylogeny, character evolution, and classification of Sapotaceae (Ericales). Cladistics 21: 101–130.10.1111/cla.2005.21.issue-2
  • Taulavuori E, Tahkokorpi M, Laine K, Taulavuori K. 2010. Drought tolerance of juvenile and mature leaves of a deciduous dwarf shrub Vaccinium myrtillus L. in a boreal environment. Protoplasma 241: 19–27.10.1007/s00709-009-0096-x
  • Tezara W, Mitchell VJ, Driscoll SD, Lawlor DW. 1999. Water stress inhibits plant photosynthesis by decreasing coupling factor and ATP. Nature 401: 914–917.
  • Wang ZX, Chen L, Ai J, Qin HY, Liu YX, Xu PL, et al. 2012. Photosynthesis and activity of photosystem II in response to drought stress in Amur Grape (Vitis amurensis Rupr.). Photosynthetica 50: 189–196.10.1007/s11099-012-0023-9
  • Zlatev ZS, Yordanov IT. 2004. Effects of soil drought on photosynthesis and chlorophyll fluorescence in beanplants. Bulg J Plant Physiol 30: 3–18.

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