Pre-treatment of seeds with salicylic acid attenuates cadmium chloride-induced oxidative damages in the seedlings of mungbean (Vigna radiata L. Wilczek)
详细信息    查看全文
  • 作者:Aryadeep Roychoudhury ; Srijita Ghosh ; Saikat Paul…
  • 关键词:Antioxidants ; Cadmium chloride ; Oxidative damages ; Salicylic acid ; Vigna radiata
  • 刊名:Acta Physiologiae Plantarum
  • 出版年:2016
  • 出版时间:January 2016
  • 年:2016
  • 卷:38
  • 期:1
  • 全文大小:999 KB
  • 参考文献:Agarwal S, Sairam RK, Srivastava GC, Meena RC (2005) Changes in antioxidant enzymes activity and oxidative stress by abscisic acid and salicylic acid in wheat genotypes. Biol Plant 49:541–550CrossRef
    Akhtar J, Ahmad R, Ashraf MY, Tanveer A, Waraich EA, Oraby H (2013) Influence of exogenous application of salicylic acid on salt stressed mungbean (Vigna radiata): growth and nitrogen metabolism. Pak J Bot 45:119–125
    Aldoobie NF, Beltagi MS (2013) Physiological, biochemical and molecular responses of common bean (Phaseolus vulgaris L.) plants to heavy metals stress. Afr J Biotechnol 12:4614–4622CrossRef
    Ali B, Huang CR, Qi ZY, Ali S, Daud MK, Geng XX, Liu HB, Zhou WJ (2013) 5-Aminolevulinic acid ameliorates cadmium-induced morphological, biochemical, and ultrastructural changes in seedlings of oilseed rape. Env Sci Pollut Res 20:7256–7267CrossRef
    Ali B, Qian P, Jin R, Ali S, Khan M, Aziz R, Tian T, Zhou W (2014) Physiological and ultra-structural changes in Brassica napus seedlings induced by cadmium stress. Biol Plant 58:131–138CrossRef
    Al-Mureish K, Othman NARM, Al-Hakimi AMA (2014) Salicylic acid-mediated alleviation of cadmium toxicity in maize leaves. J Plant Sci 2:276–281
    Anju M, Sanskriti G, Suresh BS, Nidhi S (2014) In vitro accumulation of cadmium chloride in papaya seedling and its impact on plant protein. Int J Ayur Pharma Research 2:54–62
    Ardao C, Vennesland B (1960) Chlorophyllase activity of spinach chloroplastin. Plant Physiol 35:368–371PubMedCentral PubMed CrossRef
    Arfan M, Athar HR, Ashraf M (2007) Does exogenous application of salicylic acid through the rooting medium modulate growth and photosynthetic capacity in two differently adapted spring wheat cultivars under salt stress? J Plant Physiol 164:685–694PubMed CrossRef
    Barr HD, Weatherley PE (1962) A re-examination of the relative turgidity technique for estimating water deficit in leaves. Aust J Biol Sci 15:413–428
    Basu S, Roychoudhury A, Saha PP, Sengupta DN (2010a) Comparative analysis of some biochemical responses of three indica rice varieties during polyethylene glycol-mediated water stress exhibits distinct varietal differences. Acta Physiol Plant 32:551–563CrossRef
    Basu S, Roychoudhury A, Saha PP, Sengupta DN (2010b) Differential antioxidative responses of indica rice cultivars to drought stress. Plant Growth Regul 60:51–59CrossRef
    Bates LS, Waldren RP, Teare IB (1973) Rapid determination of free proline for water stress studies. Plant Soil 39:205–207CrossRef
    Bavi KB, Moradshahi, Kholdebarin A (2011) Effect of cadmium on growth, protein content and peroxidase activity in pea plants. Pak J Bot 43:1467–1470
    Bhardwaj P, Chaturvedi AK, Prasad P (2009) Effect of enhanced lead and cadmium in soil on physiological and biochemical attributes of Phaseolus vulgaris L. Nat Sci 7:63–75
    Borsani O, Diaz P, Agius MF, Valpuesta V, Monza J (2001) Water stress generates an oxidative stress through the induction of a specific Cu/Zn superoxide dismutase in Loyus corniculatus leaves. Plant Sci 161:757–763CrossRef
    Çanakci S, Dursun B (2013) Amelioration of Cd toxicity by pretreatment of salicylic acid in Cicer arietinum L. seedlings. J Env Biol 34:1089–1094
    Çanakci S, Karaboga Z (2013) Some physiological and biochemical responses to cadmium in salicylic acid applied cucumber (Cucumis sativus L.) seedlings. Pak J Bot 45:1963–1968
    Carvalho RF, Piotto FA, Schmid D, Peters LP, Monteiro CC, Azevedo RA (2011) Seed priming with hormones does not alleviate induced oxidative stress in maize seedlings subjected to salt stress. Sci Agri 68:598–602
    Casper T, Laccoppe J (1968) The effect of CCC and AMO-1618 on growth, catalase, peroxidase, IAA oxidase activity of young barley seedlings. Physiol Plant 21:1104–1109CrossRef
    Chance B, Maehly AC (1955) Assay of catalase and peroxidase. Methods Enzymol 2: 764–775. Plant Cell Physiol 22:867–880
    Chrispeels MJ, Varner JE (1967) Gibberellic acid-enhanced synthesis and release of α-amylase and ribonuclease by isolated barley aleurone layers. Plant Physiol 42:398–406PubMedCentral PubMed CrossRef
    Dat JF, Lopez-Delgado H, Foyer CH, Scott IM (1998) Parallel changes in H2O2 and catalase during thermotolerance induced by salicylic acid or heat acclimation in mustard seedlings. Plant Physiol 116:1351–1357PubMedCentral PubMed CrossRef
    Daud MK, Yuqiang S, Dawood M, Hayat Y, Variath MT, Wu YX, Raziuddin MU, Salahuddin NU, Zhu SJ (2009) Cadmium induced functional and ultrastructural alterations in roots of two transgenic cotton cultivars. J Hazard Mater 161: 463–473
    Dietz KJ, Baier M, Kramer U (1999) Free radicals and reactive oxygen species as mediators of heavy metal toxicity in plants. In: Prasad MNV, Hagemeyer J (eds) Heavy metal stress in plants: from molecules to ecosystems. Springer-Verlag, Berlin, pp 73–97CrossRef
    Dinakar N, Nagajyothi PC, Suresh S et al (2009) Cadmium induced changes on proline, antioxidant enzymes, nitrate and nitrite reductases in Arachis hypogaea L. J Environ Biol 30:289–294PubMed
    Drazic G, Mihailovic N (2005) Modification of cadmium toxicity in soybean seedlings by salicylic acid. Plant Sci 168:511–517CrossRef
    DuBois M, Gilles K, Hamilton J, Rebers P, Smith F (1956) Colorimetric method for determination of sugars and related substances. Anal Chem 28:350–356CrossRef
    Duporque D, Kun E (1969) Malate dehydrogenase of ox kidney. 2. Two substrate kinetics and inhibition analyses. Eur J Biochem 7:242–252
    El-Beltagi HS, Mohamed HI (2013) Alleviation of cadmium toxicity in Pisum sativum L. seedling by cadmium chloride. Not Bot Horty Agrobo 41:157–168
    Faizan S, Kausar S, Perveen R (2011) Varietal differences for cadmium-induced seedling mortality, foliar toxicity symptoms, plant growth, proline and nitrate reductase activity in chickpea (Cicer arietinum L). Biol Med 3 (Special Issue): 196–206
    Finkemeier I, Lee J, Sweetlove LJ (2009) The role of malate in plant homeostasis. F1000 Biol Rep 1: 47
    Gill SS, Tuteja N (2011) Cadmium stress tolerance in crop plants. Probing the role of sulfur. Plant Signal Behav 6:215–222PubMed CrossRef
    Goncalves JF, Becker AG, Cargnelutti D, Tabaldi LA, Pereira LB, Battisti V, Spanevello R, Morch VM, Nicoloso FT, Schetinger MRC (2007) Cadmium toxicity causes oxidative stress and induces response to the antioxidant system in cucumber seedlings. Braz J Plant Physiol 19:24–26
    Green JD, Narahara HT (1980) Assay of succinate dehydrogenase activity by the tetrazolium method: evaluation of an improved technique in skeletal muscle fractions. J Histochem Phytochem 28:408–412CrossRef
    Guo B, Liang YC, Zhu YG, Zhao FJ (2007) Role of salicylic acid in alleviating oxidative damage in rice roots (Oryza sativa) subjected to cadmium stress. Environ Pollut 147:743–749PubMed CrossRef
    Hageman RH, Reed AJ (1980) Nitrate reductase from higher plants. Methods Enzymol 69:270–280CrossRef
    Hanson AD (1973) The effects of imbibition drying treatments on wheat seeds. New Phytol 72:1063–1073CrossRef
    Haribabu TE, Sudha PN (2011) Effect of heavy metals copper and cadmium exposure on the antioxidant properties of the plant Cleome gynandra. Int J Plant Animal Env Sci 1:80–87
    Hasan S, Hayat S, Ali B, Ahmad A (2008) 28-Homobrassinolide protects chickpea (Cicer arietinum) from cadmium toxicity by stimulating antioxidants. Environ Pollut 151:60–66PubMed CrossRef
    Hasan SA, Fariduddin Q, Ali B, Hayat S, Ahmad A (2009) Cadmium: toxicity and tolerance in plants. J Environ Biol 30:165–174PubMed
    Hayat S, Hasan SA, Fariduddin Q, Ahmad A (2008) Growth of tomato (Lycopersicon esculentum) in response to salicylic acid under water stress. J Plant Int 3:297–304
    Hayat S, Hasan SA, Ahmad A (2011) Growth, nitrate reductase activity and antioxidant system in cadmium stressed tomato (Lycopersicon esculentum Mill.) cultivars. Biotechnol Agron Soc Environ 15:401–414
    He YL, Liu YL, Chen Q, Bian AH (2002) Thermotorerance related to antioxidation induced by salicylic acid and heat hardening in tall fescue seedlings. J Plant Physiol Mol Biol 28:89–95
    Holden M (1961) The breakdown of chlorophyll by chlorophyllase. Biochem J 78:359–364PubMedCentral PubMed CrossRef
    Horvath E, Szalai G, Janda T (2007) Induction of abiotic stress tolerance by salicylic acid signaling. J Plant Growth Regul 26:290–300CrossRef
    Hsu YT, Kao CH (2004) Cadmium toxicity is reduced by nitric oxide in rice leaves. Plant Growth Regul 42:227–238CrossRef
    Hue NV, Craddock GR, Adams F (1986) Effect of organic acids on aluminum toxicity in subsoils. Soil Sci Am J 50:28–34CrossRef
    Kabiri R, Nasibi F, Farahbakhsh (2014) Effect of exogenous salicylic acid on some physiological parameters and alleviation of drought stress in Nigella sativa plant under hydroponic culture. Plant Protect Sci 50:43–51
    Kadioglu A, Saruhan N, Saglam 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 64:27–37CrossRef
    Kang HM, Saltveit ME (2002) Chilling tolerance of maize, cucumber and rice seedling leaves and roots are differentially affected by salicylic acid. Physiol Plant 115:571–576PubMed CrossRef
    Kang G, Li G, Xu W, Peng X, Han Q, Zhu Y, Guo T (2012) Proteomics reveals the effects of salicylic acid on growth and tolerance to subsequent drought stress in wheat. J Proteome Res 11:6066–6079PubMed CrossRef
    Karmous I, Khadija J, Chaoui A, Ferjani EE (2012) Proteolytic activities in Phaseolus vulgaris cotyledons under copper stress. Physiol Mol Biol Plants 18:337–343PubMedCentral PubMed CrossRef
    Kasai Y, Kato M, Aoyama J, Hyodo H (1998) Ethylene production and increase in 1- aminocyclopropane-1-carboxylate oxidase activity during senescence of broccoli florets. Acta Hort 464:153–157CrossRef
    Khan NA, Samiullah Singh S, Nazar R (2007) Activities of antioxidative enzymes, sulphur assimilation, photosynthetic activity and growth of wheat (Triticum aestivum) cultivars differing in yield potential under cadmium stress. J Agro Crop Sci 193:435–444CrossRef
    Khodary SEA (2004) Effect of salicylic acid on the growth, photosynthesis and carbohydrate metabolism in salt-stressed maize plants. Int J Agric Biol 6:5–8
    Koc E, Ustuni AS, Celik N (2013) Effect of exogenously applied salicylic acid on cadmium chloride-induced oxidative stress and nitrogen metabolism in tomato (Lycopersicon esculentum L.). Turk J Biol 37:361–369
    Krantev A, Yordanova R, Popova L (2006) Salicylic acid decreases Cd toxicity in maize plants. Gen Appl Plant Physiol Special Issue: 45–52
    Krantev A, Yordanova R, Janda T, Szalai G, Popova L (2008) Treatment with salicylic acid decreases the effect of cadmium on photosynthesis in maize plants. J Plant Physiol 165:920–931PubMed CrossRef
    Krishnan A, Sharvanan PS, Ravimycin T, Lenin M (2014) Effect of cadmium chloride (CdCl2) on the growth and biochemical content of black gram (Vigna mungo L.). J Chem Biol Phys Sci 4:3398–3405
    Kristensen BK, Askerlund P, Bykova NV, Egsgaard H, Moller IM (2004) Identification of oxidised proteins in the matrix of rice leaf mitochondria by immunoprecipitation and two-dimensional liquid chromatography-tandem mass spectrometry. Phytochemistry 65:1839–1851PubMed CrossRef
    Kumar RG, Shah K, Dubey RS (2000) Salinity induced behavioural changes in malate dehydrogenase and glutamate dehydrogenase activities in rice seedlings of differing salt tolerance. Plant Sci 156:23–34PubMed CrossRef
    Kumaran A, Karunakaran RJ (2006) Antioxidant and free radical scavenging activity of an aqueous extract of Coleus aromaticus. Food Chem 97:109–114CrossRef
    Kupper H, Lombi E, Zhao FJ, McGrath SP (2000) Cellular compartmentation of cadmium and zinc in relation to other elements in the hyper accumulator Arabidopsis halleri. Planta 212:75–84PubMed CrossRef
    Kuriakose SV, Prasad MNV (2008) Cadmium stress affects germination and seedling growth in Sorghum bicolor (L.) Moench by changing the activities of hydrolyzing enzymes. Plant Growth Regul 54:143–156CrossRef
    Lee YP, Takahashi T (1966) An improved colorimetric determination of amino acids with the use of ninhydrin. Anal Biochem 14:171–177CrossRef
    Liu DH, Jiang WS, Gao XZ (2003) Effects of cadmium on root growth, cell division and nucleoli in root tip cells of garlic. Biol Plant 47:79–83CrossRef
    Liu DH, Wang M, Zou JH, Jiang WS (2006) Uptake and accumulation of cadmium and some nutrient ions by roots and shoots of maize (Zea mays L.). Pak J Bot 38:701–709
    Liu Y, Wang X, Zeng G, Qu D, Gu J, Zhou M, Chai L (2007) Cadmium-induced oxidative stress and response of the ascorbate–glutathione cycle in Bechmeria nivea (L.) Gaud. Chemosphere 69:99–107PubMed CrossRef
    Lowry OM, Rosenbrough NJ, Farr AL, Randall RJ (1951) Protein measurement with folin phenol reagent. J Biol Chem 193:265–275PubMed
    Maheshwari R, Dubey RS (2011) Effect of nickel toxicity on the alteration of phosphate pool and the suppressing activity of phosphorolytic enzymes in germinating seeds and growing seedlings of rice. Int J Plant Physiol Biochem 3:50–59
    Malik CP, Singh MB (1980) Plant Enzymology and Histoenzymology (1st Edn.), Kalyani Publishers, New Delhi, pp. 286
    Marshall MJ, Worsfold M (1978) Superoxide dismutase: a direct, continuous linear assay using the oxygen electrode. Anal Biochem 86:561–573PubMed CrossRef
    Mayer A, Harel E (1979) Polyphenol oxidases in plants—review. Phytochemistry 18:193–215CrossRef
    Metwally A, Finkermeier I, Georgi M, Dietz KJ (2003) Salicylic acid alleviates the cadmium toxicity in barley seedlings. Plant Physiol 132:272–281PubMedCentral PubMed CrossRef
    Mishra A, Choudhuri MA (1999) Effects of salicylic acid on heavy metal induced membrane degradation mediated by lipoxygenase in rice. Biol Plant 42:409–415CrossRef
    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 164:601–610PubMed CrossRef
    Mohamed HI (2011) Molecular and biochemical studies on the effect of gamma rays on lead toxicity in cowpea (Vigna sinensis) plants. Biol Trace Elem Res 144:1205–1218PubMed CrossRef
    Mohan BS, Hosetti BB (1997) Potential phytotoxicity of lead and cadmium to Lemna minor grown in sewage stabilization ponds. Environ Pollut 98:233–238CrossRef
    Mohan BS, Hosetti BB (2007) Phytotoxicity of cadmium on the physiological dynamics of Salvinia natans L. grown in macrophyte ponds. J Environ Biol 27:701–704
    Noctor G (2006) Metabolic signalling in defence and stress: the central roles of soluble redox couples. Plant Cell Environ 29:409–425PubMed CrossRef
    Pál M, Szalai G, Horváth E, Janda T, Páldi E (2002) Effect of salicylic acid during heavy metal stress. Acta Biologica Szegediensis 46:119–120
    Palma JM, Sandalio LM, Corpas FJ, Romero-Puertas MC, Mccarthy I, Del Rio LA (2002) Plant proteases, protein degradation, and oxidative stress: role of peroxisomes. Plant Physiol Biochem 40:521–530CrossRef
    Pereira GJG, Molina SMG, Lea PJ, Azevedo RA (2002) Activity of antioxidant enzymes in response to cadmium in Crotalaria juuncea. Plant Soil 239:123–132CrossRef
    Popova LP, Maslenkova LT, Yordanova RY, Ivanova AP, Krantev AP, Szalai G, Janda T (2009) Exogenous treatment with salicylic acid attenuates cadmium toxicity in pea seedlings. Plant Physiol Biochem 47:224–231PubMed CrossRef
    Radwan DEM (2012) Salicylic acid induced alleviation of oxidative stress caused by clethodim in maize (Zea mays L.) leaves. Pest Biochem Physiol 102:182–188CrossRef
    Rafique N, Raza SH, Qasim M, Iqbal N (2011) Pre-sowing application of ascorbic acid and salicylic acid to seed of pumpkin and seedling response to salt. Pak J Bot 43:2677–2682
    Rajjou L, Belghazi M, Huguet R, Robin C, Moreau A, Job C, Job D (2006) Proteomic investigation of the effect of salicylic acid on Arabidopsis seed germination and establishment of early defense mechanism. Plant Physiol 141:910–923PubMedCentral PubMed CrossRef
    Roychoudhury A, Ghosh S (2013) Physiological and biochemical responses of mungbean (Vigna radiata L. Wilczek) to varying concentrations of cadmium chloride or sodium chloride. Unique J Pharm Biol Sci 1:11–21
    RoyChoudhury A, Roy C, Sengupta DN (2007) Transgenic tobacco plants over expressing the heterologous lea gene Rab16A from rice during high salt and water deficit display enhanced tolerance to salinity stress. Plant Cell Rep 26:1839–1859PubMed CrossRef
    Roychoudhury A, Basu S, Sengupta DN (2011) Amelioration of salinity stress by exogenously applied spermidine or spermine in three varieties of indica rice differing in their level of salt tolerance. J Plant Physiol 168:317–328PubMed CrossRef
    Roychoudhury A, Basu S, Sengupta DN (2012) Antioxidants and stress-related metabolites in the seedlings of two indica rice varieties exposed to cadmium chloride toxicity. Acta Physiol Plant 34:835–847CrossRef
    Saffar A, Bagherieh Najjar MB, Mianabadi M (2009) Activity of antioxidant enzymes in response to cadmium in Arabidopsis thaliana. J Biol Sci 9:44–50CrossRef
    Sakhabutdinova R, Fatkhutdinova DR, Bezrukova MV, Shakirova FM (2003) Salicylic acid prevents the damaging action of stress factors on wheat plants. Bulg J Plant Physiol Special issue: 314–319
    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 52:2115–2126PubMed
    Saruhan N, Saglam A, Kadioglu A (2012) Salicylic acid pretreatment induces drought tolerance and delays leaf rolling by inducing antioxidant systems in maize genotypes. Acta Physiol Plant 34:97–106CrossRef
    Sethy SK, Ghosh S (2013) Effect of heavy metals on germination of seeds. J Nat Sci Biol Med 4:272–275PubMedCentral PubMed CrossRef
    Sharma SS, Schat H, Vooijs R (1998) In vitro alleviation of heavy metal-induced enzyme inhibition by proline. Phytochemistry 46:1531–1535CrossRef
    Shi GR, Cai QS, Liu QQ, Wu L (2009) Salicylic acid mediated alleviation of cadmium toxicity in hemp plants in relation to cadmium uptake, photosynthesis and antioxidant enzymes. Acta Physiol Plant 31:969–977CrossRef
    Shukla V, Dhankhar M, Jai P, Sastry KV (2007) Bioaccumulation of Zn, Cu and Cd in Channa punctatus. J Environ Biol 28:395–397PubMed
    Singh B, Usha K (2003) Salicylic acid induced physiological and biochemical changes in wheat seedlings under water stress. Plant Growth Regul 39:137–141CrossRef
    Singh HP, Batish DR, Kaur G, Arora K, Kohli RK (2008) Nitric oxide (as sodium nitroprusside) supplementation ameliorates Cd toxicity in hydroponically grown wheat roots. Environ Exp Bot 63:158–167CrossRef
    Smiri M, Chaoui A, El Ferjani E (2009) Respiratory metabolism in the embryonic axis of germinating pea seed exposed to cadmium. J Plant Physiol 166:259–269PubMed CrossRef
    Srivastava R, Khan R, Manzoor N et al (2011) Responses of cadmium exposures on growth, physio-biochemical characteristics and the antioxidative defence system of soybean (Glycine max L.). J Phytol 3:20–25
    Stobart AK, Griffiths WT, Ameen-Bukhari I, Sherwood RP (1985) The effect of Cd2+ on the biosynthesis of chlorophyll in leaves of barley. Physiol Plant 63:293–298CrossRef
    Tan Y-F, O’Toole N, Taylor NL, Millar AH (2010) Divalent metal ions in plant mitochondria and their role in interactions with proteins and oxidative stress-induced damage to respiratory function. Plant Physiol 152:747–761PubMedCentral PubMed CrossRef
    Tao S, Sun L, Ma C, Li L, Li G, Hao L (2013) Reducing basal salicylic acid enhances Arabidopsis tolerance to lead or cadmium. Plant Soil 372:309–318 CrossRef
    Tarrago JF, Nicolas G (1976) Starch degradation in the cotyledons of germinating lentils. Plant Physiol 58:618–621PubMedCentral PubMed CrossRef
    Tiryakioglu M, Eker S, Ozkutlu F, Husted S, Cakmak I (2006) Antioxidant defense system and cadmium uptake in barley genotypes differing in cadmium tolerance. J Trace Elem Med Biol 20:181–189PubMed CrossRef
    Tonel FR, Marini P, de Bandeira JM, de Moraes DM, do Amarante L L (2013) Salicylic acid: physiological and biochemical changes in seeds and maize seedlings subjected to salt stress. J Seed Sci 35:457–465CrossRef
    Van Assche F, Clijsters H (1990) Effects of heavy metals on enzyme activity in plants. Plant, Cell Environ 13:195–206CrossRef
    Vassilev A, Lidon F (2011) Cd-induced membrane damages and changes in soluble protein and free amino acid contents in young barley plants. Emir J Food Agric 23:130–136CrossRef
    Vasudha G, George T (2001) Salicylic acid response in rice: influence of salicylic acid on H2O2 accumulation and oxidative stress. Plant Sci 160:1095–1106CrossRef
    Wang YS, Wang J, Yang ZM et al (2004) Salicylic acid modulates aluminum-induced oxidative stress in roots of Cassica tora. China Bot Sin 46:819–828
    Williams M, Randall DD (1979) Pyruvate dehydrogenase complex from chloroplasts of Pisum sativum L. Plant Physiol 64:1099–1103PubMedCentral PubMed CrossRef
    Wu F, Zhang G, Dominy P (2003) Four barley genotypes respond differently to cadmium: lipid peroxidation and activities of antioxidant capacity. Env Exp Bot 50:67–78CrossRef
    Yang L-T, Qi Y-P, Jiang H-X, Chen L-S (2013) Roles of organic acid anion secretion in aluminium tolerance of higher plants. BioMed Res Int Article ID 173682
    Nakano Y, Asada K (1981) Hydrogen peroxide is scavenged by ascorbate-specific peroxidase in spinach chloroplasts. Plant Cell Physiol 22:867–880
    Zengin FK, Munzuroglu O (2006) Toxic effects of cadmium (Cd++) on metabolism of sunflower (Helianthus annuus L.) seedlings. Acta Agri Scand Sect B Plant Soil Sci 56:224–229
    Zhang S, Gao J, Song J, Zhang SG, Gao JY, Song JZ (1999) Effects of salicylic acid and aspirin on wheat seed germination under salt stress. Plant Physiol 35:29–32
    Zhang F, Zhang H, Xia Y, Wang G, Xu L, Shen Z (2011) Exogenous application of salicylic acid alleviates cadmium toxicity and reduces hydrogen peroxide accumulation in root apoplasts of Phaseolus aureus and Vicia sativa. Plant Cell Rep 30:1475–1483PubMed CrossRef
  • 作者单位:Aryadeep Roychoudhury (1)
    Srijita Ghosh (2)
    Saikat Paul (1)
    Sukanya Mazumdar (2)
    Ganginee Das (2)
    Subhankari Das (2)

    1. Department of Biotechnology, St. Xavier’s College (Autonomous), 30, Mother Teresa Sarani, Kolkata, 700016, West Bengal, India
    2. Department of Botany, Scottish Church College, 1&3 Urquhart Square, Kolkata, 700006, West Bengal, India
  • 刊物主题:Plant Physiology; Plant Genetics & Genomics; Plant Biochemistry; Plant Pathology; Plant Anatomy/Development; Agriculture;
  • 出版者:Springer Berlin Heidelberg
  • ISSN:1861-1664
文摘
Salicylic acid (SA) is known to be responsive to major abiotic stress factors like drought, cold, heavy metal toxicity, and such other forms of osmotic stress. However, molecular regulation of SA signaling, including the mechanism of action in heavy metal stress tolerance, is not well understood, so that currently there is an increasing trend in studies in this area. The present study was focused to assess the possible regulatory role of SA in mitigating oxidative damages under cadmium (Cd) toxicity, taking mungbean (Vigna radiata) seedlings as the experimental model. Pre-soaking of seeds in SA, prior to Cd exposure of germinated seedlings, alleviated the overall detrimental effects of Cd toxicity. The SA-promoted seedling growth under stress was correlated with improved germination percentage due to enhanced α-amylase activity, thereby stimulating tissue growth, biomass, and relative water content. The seedlings showed considerably less chlorophyll degradation or reduced chlorophyllase activity, lesser malondialdehyde and total peroxide content, and increased reducing power. The loss in free amino acid and cysteine pool, and protease activity with Cd stress was overcome by SA-pre-treatment. The restoration to almost the normal level of osmolytes like total sugar and Pro, antioxidants like ascorbic acid, total phenolics and polyphenol oxidase activity, and antioxidative enzymes like catechol peroxidase, ascorbate peroxidase, catalase and superoxide dismutase, in seedlings grown from SA-pre-treated seeds also pointed towards partial Cd stress recovery. Isozyme profiling revealed induction of isoform(s) of guaiacol peroxidase and superoxide dismutase, in particular, in stressed seedlings, grown from SA-pre-treated seeds. Pre-treatment could also overcome the Cd-induced loss in nitrate reductase activity, leading to better nitrogen assimilation. While the decline in pyruvate dehydrogenase and malate dehydrogenase with Cd stress was recovered by SA, the increased succinate dehydrogenase activity with stress was lowered by SA, since lesser malic acid was required for osmotolerance in presence of SA. On the basis of the above observations, it can be concluded that priming with SA before seed sowing can attenuate Cd-induced oxidative stress in mungbean seedlings through induced antioxidative defense mechanism and improving the overall growth performances. Keywords Antioxidants Cadmium chloride Oxidative damages Salicylic acid Vigna radiata

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700