1,217
Views
6
CrossRef citations to date
0
Altmetric
Research Article

Photosynthetic variation and yield attributes of two mustard varieties against cadmium phytotoxicity

, , & | (Reviewing Editor)
Article: 1106186 | Received 18 Aug 2015, Accepted 22 Sep 2015, Published online: 29 Oct 2015

References

  • Abdel-Basset, R. , Issa, A. A. , & Adam, M. S. (1995). Chlorophyllase activity: Effect of heavy metals and calcium. Photosynthetica , 31 , 421–425.
  • Akhtar, M. F. (2012). Species-specific relationship between transpiration and cadmium translocation in lettuce, barley and radish. Journal of Plant Studies , 1 . doi:10.5539/jps.v1n1p2
  • An, Y.-J. (2004). Soil ecotoxicity assessment using cadmium sensitive plants. Environmental Pollution , 127 , 21–26.10.1016/S0269-7491(03)00263-X
  • Arao, T. , Ae, N. , Sugiyama, M. , & Takahashi, M. (2003). Genotypic differences in cadmium uptake and distribution in soybean. Plant and Soil , 251 , 247–253.10.1023/A:1023079819086
  • Atkins, C. A. , Patterson, B. D. , & Graham, D. (1972). Plant carbonic anhydrases: II. Preparation and some properties of monocotyledon and dicotyledon enzyme types. Plant Physiology , 50 , 218–223.10.1104/pp.50.2.218
  • Babula, P. , Adam, V. , Havel, L. & Kizek, R. (2012). Cadmium accumulation by plants of Brassicaceae family and its connection with their primary and secondary metabolism. In N. A. Anjum , I. Ahmad , M. E. Pereira , A. C. Duarte , S. Umar , & N. A. Khan (Eds.), The plant family Brassicaceae ; Environmental Pollution , 21 , 71–97.
  • Barceló, J. , & Poschenrieder, C. (1990). Plant water relations as affected by heavy metal stress: A review. Journal of Plant Nutrition , 13 , 1–37.10.1080/01904169009364057
  • Chaturvedi, I. (2004). Phytotoxicity of cadmium and its effect on two genotypes of Brassica juncea L. Emirates Journal of Food and Agriculture , 17 , 1–8.10.9755/ejfa
  • Dwivedi, R. S. , & Randhawa, N. S. (1974). Evaluation of a rapid test for the hidden hunger of zinc in plants. Plant and Soil , 40 , 445–451.10.1007/BF00011531
  • Ekmekçi, Y. , Tanyolaç, D. , & Ayhan, B. (2008). Effects of cadmium on antioxidant enzyme and photosynthetic activities in leaves of two maize cultivars. Journal of Plant Physiology , 165 , 600–611.10.1016/j.jplph.2007.01.017
  • Escudero-Almanza, D. J. , Ojeda-Barrios, D. L. , Hernández-Rodríguez, O. A. , Sánchez Chávez, E. , Ruíz-Anchondo, T. , & Sida-Arreola, J. P. (2012). Carbonic anhydrase and zinc in plant physiology. Chilean Journal of Agricultural Research , 72 , 140–146.10.4067/S0718-58392012000100022
  • Gadallah, M. A. A. (1995). Effects of cadmium and kinetin on chlorophyll content, saccharides and dry matter accumulation in sunflower plants. Biologia Plantarum , 37 , 233–240.10.1007/BF02913219
  • Ghani, A. (2010). Effect of cadmium toxicity on the growth and yield components of mungbean [Vigna radiata (L.) Wilczek]. World Applied Sciences Journal , 8 , 26–29.
  • Hasan, S. A. , Ali, B. , Hayat, S. , & Ahmad, A. (2007). Cadmium-induced changes in the growth and carbonic anhydrase activity of chickpea. Turkish Journal of Biology , 31 , 137–140.
  • Hayat, S. , Hasan, S. A. , & Ahmad, A. (2011). Growth, nitrate reductase activity and antioxidant system in cadmium stressed tomato (Lycopersicon esculentum Mill) cultivars. Biotechnology, Agronomy Society of Environment , 15 , 401–414.
  • Howden, R. , Coldsbrough, P. B. , Andersen, C. R. , & Cobbett, C. S. (1995). Cadmium-sensitive, cad1 mutants of Arabidopsis thaliana are phytochelatin deficient. Plant Physiology , 107 , 1059–1066.10.1104/pp.107.4.1059
  • Irfan, M. , Hayat, S. , Ahmad, A. , & Alyemeni, M. N. (2013). Soil cadmium enrichment: Allocation and plant physiological manifestations. Saudi Journal of Biological Sciences , 20 , 1–10.10.1016/j.sjbs.2012.11.004
  • Kancheva, R. H. , Borisova, D. S. , & Iliev, I. T. (2008). Chlorophyll fluorescence as a plant stress indicator. In Proceedings of the Fifth National Conference , Space Research Institute—Russian Academy of Sciences (Vol. 5, pp. 301–306). Moscow: Azbuka-2000.
  • Keunen, E. , Remans, T. , Bohler, S. , Vangronsveld, J. , & Cuypers, A. (2011). Metal-induced oxidative stress and plant mitochondria. International Journal of Molecular Sciences , 12 , 6894–6918.10.3390/ijms12106894
  • Krupa, Z. (1999). Cadmium against higher plant photosynthesis—A variety of effects and where do they possibly come from? Zeitschrift für Naturforsch , 54c , 723–729.
  • Küpper, H. , Küpper, F. , & Spiller, M. (1998). In situ detection of heavy metal substituted chlorophylls in water plants. Photosynthesis Research , 58 , 123–133.10.1023/A:1006132608181
  • Li, S. , Yang, W. , Yang, T. , Chen, Y. , & Ni, W. (2015). Effects of cadmium stress on leaf chlorophyll fluorescence and photosynthesis of Elsholtzia argyi—A cadmium accumulating plant. International Journal of Phytoremediation , 17 , 85–92.10.1080/15226514.2013.828020
  • López-Climent, M. F. , Arbona, V. , Pérez-Clemente, R. M. , & Gómez-Cadenas, A. (2011). Effects of cadmium on gas exchange and phytohormone contents in citrus. Biologia Plantarum , 55 , 187–190.10.1007/s10535-011-0028-4
  • Marshner, P. (2012). Marschner’s mineral nutrition of higher plants (3rd ed.). London: Academic Press.
  • Meuwly, P. , & Rauser, W. E. (1992). Alteration of thiol pools in roots and shoots of maize seedlings exposed to cadmium: Adaptation and developmental cost. Plant Physiology , 99 , 8–15.10.1104/pp.99.1.8
  • Mohamed, A. A. , Castagna, A. , Ranieri, A. , & Sanità di Toppi, L. (2012). Cadmium tolerance in Brassica juncea roots and shoots is affected by antioxidant status and phytochelatin biosynthesis. Plant Physiology and Biochemistry , 57 , 15–22.10.1016/j.plaphy.2012.05.002
  • Muradoglu, F. , Gundogdu, M. , Ercisli, S. , Encu, T. , Balta, F. , Jaafar, H. Z. E. , & Zia-Ul-Haq, M. (2015). Cadmium toxicity affects chlorophyll a and b content, antioxidant enzyme activities and mineral nutrient accumulation in strawberry. Biological Research , 48 , 11. doi:10.1186/s40659-015-0001-3
  • Mysliwa-Kurdziel, B. , Prasad, M. N. V. , & Strzalka, K. (2004). Photosynthesis in heavy metal stressed plants. In M. N. V. Prasad (Ed.), Heavy metal stress in plants, from biomolecules to ecosystems (2nd ed., pp. 47–119). New Delhi: Springer-Verlag. Heidelberg, Narosa
  • Mysliwa-Kurdziel, B. , Stecka, A. , & Strzalka, K. (2012). Initial stages of angiosperm greening monitored by low-temperature fluorescence spectra and fluorescence lifetimes. Methods in Molecular Biology , 875 , 231–239.
  • Ozturk, L. , Eker, S. , & Ozkutlu, F. (2003). Effect of cadmium on growth and concentrations of cadmium, ascorbic acid and sulphydryl groups in durum wheat cultivars. Turkish Journal of Agricultural Forestry , 27 , 161–168.
  • Page, V. , & Feller, U. (2015). Heavy metals in crop plants: Transport and redistribution processes on the whole plant level. Agronomy , 5 , 447–463.10.3390/agronomy5030447
  • Patel, V. K. , Rahi, B. B. , & Verma, C. S. (1980). Genotypic differences in effects of cadmium on yield and nutrient composition in Brassica plants. Agronomy Journal , 72 , 45–47.
  • Pérez-Chaca, M. V. , Rodríguez-Serrano, M. , Molina, A. S. , Pedranzani, H. E. , Zirulnik, F. , Sandalio, L. M. , & Romero-Puertas, M. C. (2014). Cadmium induces two waves of reactive oxygen species in Glycine max (L.) roots. Plant, Cell & Environment , 37 , 1672–1687.10.1111/pce.2014.37.issue-7
  • Poschenrieder, C. , Gunse, B. , & Barcelo, J. (1989). Influence of cadmium on water relations, stomatal resistance, and abscisic acid content in expanding bean leaves. Plant Physiology , 90 , 1365–1371.10.1104/pp.90.4.1365
  • Radha, R. V. , Kumutha, K. , & Marimuthu, P. (2014). Assessment of cadmium contamination of soils in sewage disposal areasof Coimbatore district, Tamil Nadu, India. Current World Environment , 9 , 379–386.10.12944/CWE
  • Rauser, W. E. , & Meuwly, P. (1995). Retention of cadmium in roots of maize seedlings. Role of complexation by phytochelatins and related thiol peptides. Plant Physiology , 109 , 195–202.10.1104/pp.109.1.195
  • Siedlecka, A. , Krupa, Z. , Samuelsson, G. , Oquist, G. , & Gardestrom, P. (1997). Primary carbon metabolism in Phaseolus vulgaris plants under Cd (II)/Fe interaction. Plant Physiology Biochemistry , 35 , 951–957.
  • Stemler, A. J. (1997). The case for chloroplast thylakoid carbonic anhydrase. Physiologia Plantarum , 99 , 348–353.10.1111/ppl.1997.99.issue-2
  • Stobart, A. K. , Griffiths, W. T. , Ameen-Bukhari, I. , & Sherwood, R. P. (1985). The effect of Cd2+ on the biosynthesis of chlorophyll in leaves of barley. Physiologia Plantarum , 63 , 293–298.10.1111/ppl.1985.63.issue-3
  • Tanwir, K. , Akram, M. S. , Masood, S. , Chaudhary, H. J. , Lindberg, S. , & Javed, M. T. (2015). Cadmium-induced rhizospheric pH dynamics modulated nutrient acquisition and physiological attributes of maize (Zea mays L.). Environmental Science and Pollution Research , 22 , 9193–9203.10.1007/s11356-015-4076-8
  • Tian, T. , Ali, B. , Qin, Y. , Malik, Z. , Gill, R. A. , Ali, S. , & Zhou, W. (2014). Alleviation of lead toxicity by 5-aminolevulinic acid is related to elevated growth, photosynthesis, and suppressed ultrastructural damages in oilseed rape. BioMed Research International . doi:10.1155/2014/530642
  • Tkalec, M. , Štefanić, P. P. , Cvjetko, P. , Šikić, S. , Pavlica, M. , & Balen, B. (2014). The effects of cadmium–zinc interactions on biochemical responses in tobacco seedlings and adult plants. PLoS ONE , 9 , e87582.10.1371/journal.pone.0087582
  • Usha, K. , & Mukherji, S. (1992). Effect of cadmium toxicity on chlorophyll content, hill activity and chlorophyllase activity in Vigna radiata L. leaves. Indian Journal of Plant Physiology , 35 , 225–230.
  • Wuana, R. A. , & Okieimen, F. E. (2011). Heavy metals in contaminated soils: A review of sources, chemistry, risks and best available strategies for remediation. ISRN Ecology . doi:10.5402/2011/402647
  • Zhang, J. , Sun, W. , Li, Z. , Liang, Y. , & Song, A. (2009). Cadmium fate and tolerance in rice cultivars. Agronomy for Sustainable Development , 29 , 483–490.