254
Views
14
CrossRef citations to date
0
Altmetric
Original Articles

Physiological responses of peanut seedlings to exposure to low or high cadmium concentration and the alleviating effect of exogenous nitric oxide to high cadmium concentration stress

, , &
Pages 405-412 | Received 12 Oct 2018, Accepted 24 Jul 2019, Published online: 13 Sep 2019

References

  • Arnaud N, Murgia I, Boucherez J, Briat JF, Cellier F, Gaymard F. 2006. An iron-induced nitric oxide burst precedes ubiquitin-dependent protein degradation for Arabidopsis AtFer1 ferritin gene expression. J Biol Chem. 281(33):23579–23588.
  • Besson-Bard A, Pugin A, Wendehenne D. 2008. New insights into nitric oxide signaling in plants. Annu Rev Plant Biol. 59:21–39.
  • Bowler C, Montagu MV, Inze D. 1992. Superoxide dismutase and stress tolerance. Annu Rev Plant Physiol Plant Mol Biol. 43(1):83–116.
  • Chen F, Wang F, Sun HY, Cai Y, Mao WH, Zhang GP, Vincze E, Wu FB. 2010. Genotype-dependent effect of exogenous nitric oxide on Cd-induced changes in antioxidative metabolism, ultrastructure, and photosynthetic performance in barley seedlings (Hordeum vulgare). J Plant Growth Regul. 29(4):394–408.
  • Coppens P, Novozhilova I, Kovalevsky A. 2002. Photoinduced linkage isomers of transition-metal nitrosyl compounds and related complexes. Chem Rev. 102(4):861–883.
  • Di Cagno R, Guidi L, de Gara L, Soldatini GF. 2001. Combined cadmium and ozone treatments affect photosynthesis and ascorbate-dependent defenses in sunflower. New Phytol. 151(3):627–636.
  • Dong YJ, Chen WF, Xu LL, Kong J, Liu S, He Z. 2016. Nitric oxide can induce tolerance to oxidative stress of peanut seedlings under cadmium toxicity. Plant Growth Regul. 79(1):19–28.
  • Dong YJ, Chen WF, Bai XY, Liu FZ, Wan YS. 2017. Effects of exogenous nitric oxide and 24-epibrassinolide on the physiological characteristics of peanut under cadmium stress. Pedosphere. 29(1):45–59.
  • Farago ME, Mullen W. 1979. Plants which accumulate metals. IV. A possible copper-proline complex from the roots of Armeria maritime. Inorg Chim Acta. 32:93–94.
  • Graziano M, Lamattina L. 2005. Nitric oxide and iron in plants: an emerging and converging story. Trends Plant Sci. 10(1):4–8.
  • Hernandez LE, Cooke DT. 1997. Modifications of root plasma membrane lipid composition of cadmium treated Pisum sativum. J Exp Bot. 48:1375–1381.
  • Hoagland DR, Arnon DI. 1950. The water culture method for growing plants without soil. Circ Calif Agric Exp Stn. 347:29–32.
  • John R, Ahmad P, Gadgil K, Sharma S. 2008. Effect of cadmium and lead on growth, biochemical parameters and uptake in Lemna polyrrhiza L. Plant Soil Environ. 54(No. 6):262–270.
  • Kadioglu A, Saruhan N, Sağlam A, Terzi R, Acet T. 2011. Exogenous salicylic acid alleviates effects of long term drought stress and delays leaf rolling by inducing antioxidant system. Plant Growth Regul. 64(1):27–37.
  • Kaya C, Hamamci C, Baysal A, Akba O, Erdogan S, Saydut A. 2009. Methyl ester of peanut (Arachis hypogea L.) seed oil as a potential feedstock for biodiesel production. Renew Energ. 34(5):1257–1260.
  • Kopyra M, Gwóźdź EA. 2003. Nitric oxide stimulates seed germination and counteracts the inhibitory effect of heavy metals and salinity on root growth of Lupinus luteus. Plant Physiol Biochem. 41(11–12):1011–1017.
  • Kopyra M, Stachon-Wilk M, Gwozdz E. 2006. Effect of exogenous nitric oxide on the antioxidant capacity of cadmium-treated soybean cell suspension. Acta Physiol Plant. 6:525–536.
  • Kumar P, Tewari RK, Sharma PN. 2008. Cadmium enhances generation of hydrogen peroxide and amplifies activities of catalase, peroxidases and superoxide dismutase in maize. J Agron Crop Sci. 194(1):72–80.
  • Laspina NV, Groppa MD, Tomaro ML, Benavides MP. 2005. Nitric oxide protects sun flow leaves against Cd-induced oxidative stress. Plant Sci. 169(2):323–330.
  • Lozano-Rodriguez E, Hernàndez LE, Bonay P, Carpena-Ruiz R. 1997. Distribution of cadmium in shoot and root tissues of maize and pea plants: physiological disturbances. J Exp Bot. 48(1):123–128.
  • Mihailovic N, Drazic G. 2011. Incomplete alleviation of nickel toxicity in bean by nitric oxide supplementation. Plant Soil Environ. 57(No. 8):396–401.
  • Nickel RS, Cunningham BA. 1969. Improved peroxidase assay method using Ieuco 2, 3, 6-trichlcroindophenol and application to comparative measurements of peroxidase catalysis. Anal Biochem. 27(2):292–299.
  • Patra HL, Kar M, Mishre D. 1978. Catalase activity in leaves and cotyledons during plant development and senescence. Biochem Pharmacol. 172:385–390.
  • Ramirez L, Zabaleta EJ, Lamattina L. 2010. Nitric oxide and frataxin: two players contributing to maintain cellular iron homeostasis. Ann Bot. 105(5):801–810.
  • Rivetta A, Negrini N, Cocucci M. 1997. Involvement of Ca2+-calmodulin in Cd2+ toxicity during the early phases of radish (Raphanus satious L.) seed germination. Plant Cell Environ. 20(5):600–608.
  • Sandalio LM, Dalurzo HC, Gómez M, Romero-Puertas MC, del Río LA. 2001. Cadmium-induced changes in the growth and oxidative metabolism of pea plants. J Exp Bot. 52(364):2115–2126.
  • Sanità di Toppi L, Gabbrielli R. 1999. Response to cadmium in higher plants. Environ Exp Bot. 41(2):105–130.
  • Schützendübel A, Schwanz P, Teichmann T, Gross K, Langenfeld-Heyser R, Godbold DL, Polle A. 2001. Cadmium-induced changes in antioxidative systems, hydrogen peroxide content, and differentiation in Scots pine roots. Plant Physiol. 127(3):887–898.
  • Schützendübel A, Polle A. 2002. Plant responses to abiotic stresses: heavy metal-induced oxidative stress and protection by mycorrhization. J Exp Bot. 53(372):1351–1365.
  • Su GQ, Li F, Lin JS, Liu CF, Shi GR. 2013. Peanut as a potential crop for bioenergy production via Cd-phytoextraction: a life-cycle pot experiment. Plant Soil. 365(1–2):337–345.
  • Seregélyes C, Barna B, Hennig J, Konopka D, Pasternak TP, Lukács N, Fehér A, Horváth GV, Dudits D. 2003. Phytoglobins can interfere with nitric oxide functions during plant growth and pathogenic responses: a transgenic approach. Plant Sci. 165(3):541–550.
  • Singh HP, Batish DR, Kaur G, Arora K, Kohli R. 2008. Nitric oxide (as sodium nitroprusside) supplementation ameliorates Cd toxicity in hydroponically grown wheat roots. Environ Exp Bot. 63(1–3):158–167.
  • Tiryakioglu M, Eker S, Ozkutlu F, Husted S, Cakmak I. 2006. Antioxidant defense system and cadmium uptake in barely genotypes differing in cadmium tolerance. J Trace Elem Med Biol. 20(3):181–189.
  • Vanesa T, Melina A, Lorenzo L, Raúl C. 2011. Nitric oxide enhances plant ultraviolet-B protection up-regulating gene expression of the phenylpropanoid biosynthetic pathway. Plant Cell Environ. 34:909–921.
  • Wang QH, Liang X, Dong YJ, Xu LL, Zhang XW, Hou J, Fan ZY. 2013. Effects of exogenous nitric oxide on cadmium toxicity, element contents and antioxidative system in perennial ryegrass. Plant Growth Regul. 69(1):11–20.
  • Wang QH, Liang X, Dong YJ, Xu LL, Zhang XW, Kong J, Liu S. 2013. Effects of exogenous salicylic acid and nitric oxide on physiological characteristics of perennial ryegrass under cadmium stress. J Plant Growth Regul. 32(4):721–731.
  • Wang WW, Bai XY, Dong YJ, Chen WF, Song YL, Tian X. 2016. Effects of application of exogenous NO on the physiological characteristics of perennial ryegrass grown in Cd contaminated soil. J Soil Sci Plant Nutr. 16(3):731–744.
  • Xiong J, An L, Lu H, Zhu C. 2009. Exogenous nitric oxide enhances cadmium tolerance of rice by increasing pectin and hemicellulose contents in root cell wall. Planta. 230(4):755–765.
  • Xu J, Wang WY, Yin HX, Liu XJ, Sun H, Mi Q. 2010. Exogenous nitric oxide improves antioxidative capacity and reduces auxin degradation in roots of Medicago truncatula seedlings under cadmium stress. Plant Soil. 326(1–2):321–330.
  • Xu MJ, Zhu Y, Dong JF, Jin HH, Sun LN, Wang ZA, Lu ZH, Zhang M, Lu D. 2012. Ozone induces flavonol production of Ginkgo biloba cells dependently on nitrate reductase-mediated nitric oxide signaling. Environ Exp Bot. 75:114–119.
  • Yang Y, Zhang M, Chen JQ. 2007. Measurement of nutrient release rate of coated controlled-release fertilizers. Plant Nutr. Fert Sci. 13:730–738.
  • Zanella L, Fattorini L, Brunetti P, Roccotiello E, Cornara L, D’Angeli S, Della Rovere F, Cardarelli M, Barbieri M, Sanità di Toppi L, et al. 2016. Overexpression of AtPCS1 in tobacco increases arsenic and arsenic plus cadmium accumulation and detoxification. Planta. 243(3):605–622.
  • Zhang XW, Dong YJ, Kong J, Liu ZG, Wang QH. 2014. Effects of nitric oxide on iron-deficiency stress alleviation of peanut. J Plant Nutr. 37(13):2108–2127.
  • Zhao LQ, Zhang F, Guo JK, Yang YL, Li BB, Zhang LX. 2004. Nitric oxide functions as a signal in salt resistance in the calluses from two ecotypes of reed. J Plant Physiol. 134:849–857.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.