Artículo

Estamos trabajando para incorporar este artículo al repositorio
Consulte el artículo en la página del editor
Consulte la política de Acceso Abierto del editor

Abstract:

The presence of arsenic (As) in groundwater is a major problem in several parts of Latin America. In the present work, non-destructive approaches to monitor the effects of As on plants of Cichorium intybus, an herbaceous Asteraceae, were explored. In this sense, the effects of As at different levels of water and radiation were evaluated on these crops. Plants were grown in a greenhouse, watered daily with As solutions and exposed to different water and/or light conditions for four months, using a three-factor (As, water, radiation) and two-level resource (As vs non As, field capacity vs half-field capacity condition, light vs shade condition) factorial design. The parameters most affected by this treatment were the area under the first derivative of the reflectance spectrum in the blue region, chlorophyll concentration, the Fred/Ffar-red fluorescence ratio and the quantum yield for the photophysical decay. These changes indicated the ability of this plant species to be a biomonitor for the presence of arsenic in irrigation water. Interestingly, it was further proved in this work that the biomonitoring capacity was enhanced in the presence of sunlight. © 2018 Elsevier Ltd

Registro:

Documento: Artículo
Título:Arsenic effects on some photophysical parameters of Cichorium intybus under different radiation and water irrigation regimes
Autor:Cordon, G.; Iriel, A.; Cirelli, A.F.; Lagorio, M.G.
Filiación:CONICET - Universidad de Buenos Aires, Instituto de Investigaciones Fisiológicas y Ecológicas Vinculadas a la Agricultura (IFEVA)Buenos Aires, Argentina
CONICET - Universidad de Buenos Aires, Instituto de Investigaciones en Producción Animal (INPA)Buenos Aires, Argentina
CONICET - Universidad de Buenos Aires, Instituto de Química Física de los Materiales, Medio Ambiente y Energía (INQUIMAE)Buenos Aires, Argentina
Universidad de Buenos Aires, Facultad de Ciencias Exactas y Naturales, Dpto. de Química Inorgánica, Analítica y Química FísicaBuenos Aires, Argentina
Palabras clave:Chlorophyll fluorescence; Cichorium intybus; First derivative reflectance; Reflectance spectra; Arsenic; Chlorophyll; Fluorescence; Groundwater; Irrigation; Radiation effects; Reflection; Chlorophyll concentration; Chlorophyll fluorescence; Cichorium intybus; First derivative; Fluorescence ratio; Irrigation regimes; Photophysical parameters; Reflectance spectrum; Plants (botany); arsenic; chlorophyll; ground water; arsenic; water; arsenic; biomonitoring; chlorophyll; concentration (composition); herb; irrigation; spectral reflectance; acclimatization; Article; biological monitoring; chicory; chlorophyll content; chlorophyll fluorescence; controlled study; greenhouse; illumination; irrigation (agriculture); light absorption; nonhuman; photochemical quenching; photochemistry; photosystem II; plant growth; plant leaf; plant stress; quantum yield; radiation; reflectometry; shade; sunlight; water analysis; water content; chemistry; chicory; drug effect; environmental monitoring; fluorescence; irrigation (agriculture); physiology; procedures; radiation response; Latin America; Asteraceae; Cichorium intybus; Agricultural Irrigation; Arsenic; Chicory; Chlorophyll; Environmental Monitoring; Fluorescence; Sunlight; Water
Año:2018
Volumen:204
Página de inicio:398
Página de fin:404
DOI: http://dx.doi.org/10.1016/j.chemosphere.2018.04.048
Título revista:Chemosphere
Título revista abreviado:Chemosphere
ISSN:00456535
CODEN:CMSHA
CAS:arsenic, 7440-38-2; chlorophyll, 1406-65-1, 15611-43-5; water, 7732-18-5; Arsenic; Chlorophyll; Water
Registro:https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_00456535_v204_n_p398_Cordon

Referencias:

  • Aksoy, A., Chicory (Cichorium intybus L.): a possible biomonitor of metal pollution (2008) Pak. J. Bot, 40, pp. 791-797
  • Ancelet, T., Davy, P.K., Mitchell, T., Trompetter, W.J., Markwitz, A., Weatherburn, D.C., Identification of particulate matter sources on an hourly time-scale in a wood burning community (2012) Environ. Sci. Technol., 46, pp. 4767-4774
  • Azizur Rahman, M., Hasegawa, H., Mahfuzur Rahman, M., Nazrul Islam, M., Majid Miah, M.A., Tasmen, A., Effect of arsenic on photosynthesis, growth and yield of five widely cultivated rice (Oryza sativca L.) varieties in Bangladesh (2007) Chemosphere, 67, pp. 1072-1079
  • Chakraborti, D., Arsenic: Occurrence in Groundwater. Encyclopedia of Environmental Health (2011), pp. 165-180. , Elsevier Burlington; Chakraborti, D., Singh, S.K., Rashid, H.M., Rahman, M.M., (2017) Arsenic: Occurrence in Groundwater. Encyclopedia of Environmental Health, 2, pp. 1-17. , Elsevier Burlington
  • Cordon, G., Gismondi, S., Nievas, A., Lagorio, M.G., Non-destructive assessment of water and pigments in leaves from the remission function using the Kubelka-Munk theory (2010) AIC 2010 Color and Food, Interim Meeting of the International Color Association, pp. 397-400
  • Cordon, G., Lagorio, M.G., Re-absorption of chlorophyll fluorescence in leaves revisited. A comparison of correction models (2006) Photochem. Photobiol. Sci., 5, p. 735
  • Cordon, G.B., Lagorio, M.G., Absorption and scattering coefficients: a biophysical-chemistry experiment using reflectance spectroscopy (2007) J. Chem. Educ., 84 (7), pp. 1167-1170
  • Di Rienzo, J.A., Casanoves, F., Balzarini, M.G., Gonzalez, L., Tablada, M., Robledo, C.W., InfoStat Versión (2010), http://www.infostat.com.ar/, Grupo InfoStat, FCA, Universidad Nacional de Córdoba Córdoba, Argentina; Fletcher, R.A., Nath, V., Triadimefon reduces transpiration and increases yield in water stressed plants (1984) Physiol. Plantarum, 62, pp. 422-426
  • Gitelson, A.A., Gritz, Y., Merzlyak, M.N., Relationships between leaf chlorophyll content and spectral reflectance and algorithms for non-destructive chlorophyll assessment in higher plant leaves (2003) J. Plant Physiol., 3, pp. 271-282
  • Goetz, S.J., Gardiner, N., Viers, J.H., Monitoring freshwater, estuarine and near-shore benthic ecosystems with multisensory remote sensing: an introduction to the special issue (2008) Remote Sens. Environ., 112, pp. 3993-3995
  • Guadagno, C.R., De Santo, A.V., D'Ambrosio, N., A revised energy partitioning approach to assess the yields of non-photochemical quenching components (2010) Biochim. Biophys. Acta, 1797, pp. 525-530
  • Hatfield, J.L., Gitelson, A.A., Schepers, J.S., Walthall, C.L., Application of spectral remote sensing for agronomic decisions (2008) Agron. J., 100, pp. S117-S131
  • Iriel, A., Dundas, G., Fernández Cirelli, A., Lagorio, M.G., Effect of arsenic on reflectance spectra and chlorophyll fluorescence of aquatic plants (2015) Chemosphere, 119, pp. 697-703
  • Iriel, A., Lagorio, M.G., Biospectroscopy of Rhododendron indicum flowers. Non-destructive assessment of anthocyanins in petals using a reflectance-based method (2009) Photochem. Photobiol. Sci., 8, pp. 337-344
  • Iriel, A., Lagorio, M.G., Fernández Cirelli, A., Biosorption of arsenic from groundwater using Vallisneria gigantea plants. Kinetics, equilibrium and photophysical considerations (2015) Chemosphere, 138, pp. 383-389
  • Iriel, A., Novo, J.M., Cordon, G.B., Lagorio, M.G., Atrazine and methyl viologen effects on chlorophyll-a fluorescence revisited—implications in photosystems emission and ecotoxicity assessment (2014) Photochem. Photobiol., 90, pp. 107-112
  • Keeling, S.M., Stewart, R.B., Anderson, C.W.N., Robinson, B.H., Nickel and cobalt phytoextraction by the hyperaccumulator Berkheya coddii: implications for polymetallic phytomining and phytoremediation (2003) Int. J. Phytoremediation, 5, pp. 235-244
  • Kocar, B.D., Garrott, R.A., Inskeep, W.P., Elk exposure to arsenic in geothermal watersheds of Yellowstone National Park, USA (2004) Environ. Toxicol. Chem., 23, pp. 982-989
  • Kochubey, S.M., Kazantsev, T.A., Changes in the first derivatives of leaf reflectance spectra of various plants induced by variations of chlorophyll content (2007) J. Plant Physiol., 164, pp. 1648-1655
  • Kumar, K.S., Dahms, H.U., Lee, J.S., Kim, H.C., Lee, W.C., Shin, K.H., Algal photosynthetic responses to toxic metals and herbicides assessed by chlorophyll a fluorescence (2014) Ecotoxicol. Environ. Saf., 104, pp. 51-71
  • Lagorio, M.G., Chlorophyll fluorescence emission spectra in photosynthetic organisms (2011) Chlorophyll: Structure, Production and Medicinal Uses, pp. 115-150. , H. Le E. Salcedo Nova publisher Hauppauge NY ch. 4
  • Lagorio, M.G., Dicelio, L.E., Litter, M.I., San Román, E., Modeling of fluorescence quantum yields of supported dyes. Aluminum carboxyphthalocyanine on cellulose (1998) J. Chem. Soc., Faraday Trans., 94, pp. 419-425
  • Ma, L.Q., Komar, K.M., Tu, C., Zhang, W., Cai, Y., Kennelley, E.D., A fern that hyperaccumulates arsenic (2001) Nature, 409, p. 579
  • Mallick, N., Mohn, F.H., Use of chlorophyll fluorescence in metal-stress research: a case study with the green microalga Scenedesmus (2003) Ecotoxicol. Environ. Saf., 55, pp. 64-69
  • Maruthi Sridhar, B.B., Han, F.X., Diehl, S.V., Monts, D.L., Su, Y., Monitoring the effects of arsenic and chromium accumulation in Chinese brake fern (Pteris vittata) (2007) Int. J. Rem. Sens., 28, pp. 1055-1067
  • Mendes Novo, J., Iriel, A., Lagorio, M.G., Modelling chlorophyll fluorescence of kiwi fruit (Actinidia deliciosa) (2012) Photochem. Photobiol. Sci., 11, p. 724
  • Milivojevic, D.B., Nikolic, B.R., Drinic, G., Effects of arsenic on phosphorous content in different organs and chlorophyll fluorescence in primary leaves of soybean (2006) Biol. Plant. (Prague), 50, pp. 149-151
  • Mohan, D., Pittman, C.U., Arsenic removal from water/wastewater using adsorbents—a critical review (2007) J. Hazard Mater., 142, pp. 1-53
  • Murcott, S., Arsenic Contamination in the World (2012), IWA publishing; Neill, S.O., Gould, K.S., Anthocyanins in leaves: light attenuators or antioxidants? (2003) Funct. Plant Biol., 30, pp. 865-873
  • Ohno, K., Yanase, T., Matsuo, Y., Kimura, T., Rahman, M.H., Magara, Y., Matsui, Y., Arsenic intake via water and food by a population living in an arsenic-affected area of Bangladesh (2007) Sci. Total Environ., 381, pp. 68-76
  • Ospina Calvo, B., Parapugna, T.L., Lagorio, M.G., Variability in chlorophyll fluorescence spectra of eggplant fruit grown under different light environments: a case study (2017) Photochem. Photobiol. Sci., 16, pp. 710-711
  • Ramos, M.E., Lagorio, M.G., True fluorescence spectra of leaves (2004) Photochem. Photobiol. Sci., 3, p. 1063
  • Robinson, B.H., Lombi, E., Zhao, F.J., McGrath, S.P., Uptake and distribution of nickel and other metals in the hyperaccumulator Berkheya coddii (2003) New Phytol., 158, pp. 279-285
  • Rosas, I., Belmont, R., Armienta, A., Báez, A., Arsenic Concentrations in Water, Soil, Milk and Forage in Comarca Lagunera (1999), pp. 133-149. , Water Air Soil Pollut. Mexico; Sghaier, D.B., Duarte, B., Bankaji, I., Caçador, I., Sleimi, N., Growth, chlorophyll fluorescence and mineral nutrition in the halophyte Tamarix gallica cultivated in combined stress conditions: arsenic and NaCl (2015) J. Photochem. Photobiol., B, 149, pp. 204-214
  • Simon, L., Martin, H.W., Adriano, D.C., Chicory (Cichorium intybus L.) and dandelion (Taraxacum officinale Web.) as phytoindicators of cadmium contamination (1996) Water Air Soil Poll., 91, pp. 351-362
  • Singh, R., Singh, S., Parihar, P., Singh, V.P., Prasad, S.M., Arsenic contamination, consequences and remediation techniques: a review (2015) Ecotoxicol. Environ. Saf., 112, pp. 247-270
  • Slaton, M.R., Hunt, E.R., Smith, W.K., Estimating near-infrared leaf reflectance from leaf structural characteristics (2001) Am. J. Bot., 88, pp. 278-284
  • Slonecker, T., Haack, B., Price, S., Spectroscopic analysis of arsenic uptake in pteris ferns (2009) Rem. Sens., 1, pp. 644-675
  • Smedley, P.L., Kinniburgh, D.G., A review of the source, behaviour and distribution of arsenic in natural waters (2002) Appl. Geochem., 17, pp. 517-568
  • Smedley, P.L., Kinniburgh, D.G., Macdonald, D.M.J., Nicolli, H.B., Barros, A.J., Tullio, J.O., Pearce, J.M., Alonso, M.S., Arsenic associations in sediments from the loess aquifer of La Pampa, Argentina (2005) Appl. Geochem., 20, pp. 989-1016
  • Stoeva, N., Berova, M., Zlatev, Z., Physiological response of maize to arsenic contamination (2003) Biol. Plant. (Prague), 47, pp. 449-452
  • Stoeva, N., Bineva, T., Oxidative changes and photosynthesis in oat plants grown in As-contaminated soil (2003) Bulg. J. Plant Physiol., 29, pp. 87-95
  • Stoeva, N., Bineva, T., Zlatev, Z., Effect of arsenic on some physiological parameters in bean plants (2005) Biol. Plant. (Prague), 49, pp. 293-296
  • Sushant, S.K., Ghosh, A.K., Effect of arsenic on photosynthesis, growth and its accumulation in the tissues of Allium cepa (Onion) (2010) Int. J. Environ. Eng. Manag., 1, pp. 39-50
  • Theisen, A.F., Rock, B.N., Eckert, R.T., Detection of changes in steady-state chlorophyll fluorescence in Pinus strobus following short-term ozone exposure (1994) J. Plant Physiol., 144, pp. 410-419
  • Van Dijk, C., van Doorn, W., van Alfen, B., Long term plant biomonitoring in the vicinity of waste incinerators in The Netherlands (2015) Chemosphere, 122, pp. 45-51
  • Volpe, V., Silvestri, S., Marani, M., Remote sensing retrieval of suspended sediment concentration in shallow waters (2011) Remote Sens. Environ., 115, pp. 44-54
  • Wang, J., Zhao, F., Meharg, A.A., Raab, A., Feldmann, J., McGrath, S.P., Mechanisms of arsenic hyperaccumulation in Pteris vittata, uptake kinetics, interactions with phosphate, and arsenic speciation (2002) Plant Physiol., 30, pp. 1552-1561
  • Yakupoğlu, D., Güray, T., Sarica, D.Y., Kaya, Z., Determination of airborne lead contamination in Cichorium intybus L. in an urban environment (2008) Turk. J. Bot., 32, pp. 319-324

Citas:

---------- APA ----------
Cordon, G., Iriel, A., Cirelli, A.F. & Lagorio, M.G. (2018) . Arsenic effects on some photophysical parameters of Cichorium intybus under different radiation and water irrigation regimes. Chemosphere, 204, 398-404.
http://dx.doi.org/10.1016/j.chemosphere.2018.04.048
---------- CHICAGO ----------
Cordon, G., Iriel, A., Cirelli, A.F., Lagorio, M.G. "Arsenic effects on some photophysical parameters of Cichorium intybus under different radiation and water irrigation regimes" . Chemosphere 204 (2018) : 398-404.
http://dx.doi.org/10.1016/j.chemosphere.2018.04.048
---------- MLA ----------
Cordon, G., Iriel, A., Cirelli, A.F., Lagorio, M.G. "Arsenic effects on some photophysical parameters of Cichorium intybus under different radiation and water irrigation regimes" . Chemosphere, vol. 204, 2018, pp. 398-404.
http://dx.doi.org/10.1016/j.chemosphere.2018.04.048
---------- VANCOUVER ----------
Cordon, G., Iriel, A., Cirelli, A.F., Lagorio, M.G. Arsenic effects on some photophysical parameters of Cichorium intybus under different radiation and water irrigation regimes. Chemosphere. 2018;204:398-404.
http://dx.doi.org/10.1016/j.chemosphere.2018.04.048