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Plant-Environment Interactions

Effect of sodium carbonate-induced salinity–alkalinity on some key osmoprotectants, protein profile, antioxidant enzymes, and lipid peroxidation in two mulberry (Morus alba L.) cultivars

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Pages 460-467 | Received 06 Jun 2013, Accepted 10 Oct 2013, Published online: 13 Nov 2013

References

  • Aebi, H. 1984. Catalase invitro. Method Enzymol. 105:121–126.
  • Agastian STP, Vivekananda M. 1997. Effect of induced salt stress on growth and uptake of mineral nutrients in mulberry (Morus alba) genotypes. Indian J Agric Sci. 67:469–472.
  • Ahmad P. 2010. Growth and antioxidant responses in mustard (Brassica juncea L.) plants subjected to combined effect of gibberellic acid and salinity. Arch Agro Soil Sci. 56:575–588. doi:10.1080/03650340903164231
  • Ahmad P, Ashraf M, Azooz MM, Rasool S, Akram NA. 2012a. Potassium starvation-induced oxidative stress and antioxidant defense responses in Brassica juncea. J Plant Interact. doi:10.1080/17429145.2012.747629
  • Ahmad P, Hakeem KR, Kumar A, Ashraf M, Akram NA. 2012b. Salt-induced changes in photosynthetic activity and oxidative defense system of three cultivars of mustard (Brassica juncea L.) Afr J Biotechnol. 11:2694–2703.
  • Ahmad P, Jaleel CA, Salem MA, Nabi G, Sharma S. 2010. Roles of enzymatic and non-enzymatic antioxidants in plants during abiotic stress. Crit Rev Biotechnol. 30:161–175. doi:10.3109/07388550903524243
  • Ahmad P, Nabi G, Jeleel CA, Umar S. 2011. Free radical production, oxidative damage and antioxidant defense mechanisms in plants under abiotic stress. In: Ahmad P, Umar S, editors. Oxidative stress: role of antioxidants in plants. New Delhi: Studium Press Pvt. Ltd; p. 19–53.
  • Ahmad P, Sharma S. 2010. Physio-biochemical attributes in two cultivars of mulberry (M. alba) under NaHCO3 stress. Int J Plant Produc. 4:79–86.
  • Ahmad P, Sharma S, Srivastava PS. 2006. Differential physio-biochemical responses of high yielding varieties of mulberry (Morus alba) under alkalinity (Na2CO3) stress in vitro. Physiol Mol Biol Plant. 12:59–66.
  • Ahmad P, Sharma S, Srivastava PS. 2007. In vitro selection of NaHCO3 tolerant cultivars of Morus alba (Local and Sujanpuri) in response to morphological and biochemical parameters. Hortic Sci (Prague). 34:115–123.
  • Ashraf M, Akram NA, Arteca RN, Foolad MR. 2010. The role of plant hormones in salinity tolerance of plants: brassinosteroids and salicylic acid. Crit Rev Plant Sci. 29:162–190. doi:10.1080/07352689.2010.483580
  • Ashraf M, Athar HR, Harris PJC, Kwon TR. 2008. Some prospective strategies for improving crop salt tolerance. Adv Agron. 97:45–110.
  • Ashraf M, Foolad MR. 2007. Improving plant abiotic stress resistance by exogenous application of osmoprotectants, glycinebetaine and proline. Environ Exp Bot. 59:206–216. doi:10.1016/j.envexpbot.2005.12.006
  • Azooz MM, Youssef AM, Ahmad P. 2011. Evaluation of salicylic acid (SA) application on growth, osmotic solutes and antioxidant enzyme activities on broad bean seedlings grown under diluted seawater. Inter J Plant Physiol Biochem. 3:253–264.
  • Bano S, Ashraf M, Akram NA. 2013. Salt stress regulates enzymatic and nonenzymatic antioxidative defense system in the edible part of carrot (Daucus carota L.). J Plant Interact. doi:10.1080/17429145.2013.832426
  • Bates L, Waldren PP, Teare JD. 1973. Rapid determination of free proline of water stress studies. Plant Soil. 39:205–207.
  • Bie Z, Ito T, Shinohara Y. 2004. Effects of sodium sulfate and sodium bicarbonate on the growth, gas exchange and mineral composition of lettuce. Sci Hort. 99:215–224. doi:10.1016/S0304-4238(03)00106-7
  • Chartzoulakis K, Loupassaki M, Bertaki M, Androulakis I. 2002. Effects of NaCl salinity on growth, ion content and CO2 assimilation rate of six olive cultivars. Sci Hort. 96:235–247. doi:10.1016/S0304-4238(02)00067-5
  • Chen S, Xing J, Lan H. 2012. Comparative effects of neutral salt and alkaline salt stress on seed germination, early seedling growth and physiological response of a halophyte species Chenopodium glaucum. Afr J Biotechnol. 11:9572–9581.
  • Dhindsa RH, Plumb-Dhindsa R, Thorpe TA. 1981. Leaf senescence correlated with increased level of membrane permeability, lipid peroxidation and decreased level of SOD and CAT. J Exp Bot. 32:93–101. doi:10.1093/jxb/32.1.93
  • Dubey RS. 2005. Photosynthesis in plants under stress full conditions. In: Pessarakli M, editor. Photosynthesis. New York: CRC Press; p. 717–718.
  • Foster JG, Hess JL. 1980. Responses of superoxide dismutase and glutathione reductase activities in cotton leaf tissue exposed to an atmosphere enriched in oxygen. Plant Physiol. 66:482–487. doi:10.1104/pp.66.3.482
  • Grieve CM, Grattan SR. 1983. Rapid assay for determination of water soluble quaternary ammonium compounds. Plant Soil. 70:303–307. doi:10.1007/BF02374789
  • Guo R, Shi LX, Ding XM, Hu Y, Tian SY, Yan DF, Shao S, Gao Y, Liu R, Yang YF. 2010. Effects of saline and alkaline stress on germination, seedling growth, and ion balance in wheat. Agron J. 102:1252–1260. doi:10.2134/agronj2010.0022
  • Harinasut P, Poonsopa D, Roengmongkoi K, Charoensataporn R. 2003. Salt effects on antioxidant enzymes in mulberry cultivar. Sci Asia. 29:109–113. doi:10.2306/scienceasia1513-1874.2003.29.109
  • Hasegawa PM, Ray BA, Zhu JK, Bohnert HJ. 2000. Plant cellular and molecular responses to high salinity. Ann Rev Plant Physiol Plant Mol Biol. 51:463–499. doi:10.1146/annurev.arplant.51.1.463
  • Jaleel CA, Azooz MM, Panneerselvam IR. 2009. Treatment with different sodium salts alters growth and photosynthetic pigment constituents in Withania somnifera. Global J Mol Sci. 4:6–9.
  • Javid M, Ford R, Nicolas ME. 2012. Tolerance responses of Brassica juncea to salinity, alkalinity and alkaline salinity. Funct Plant Biol. 39:699–707. doi:10.1071/FP12109
  • Kar M, Mishra D. 1976. Catalase, peroxidase, polyphenyl oxidase activities during rice leaf senescence. Plant Physiol. 57:315–319. doi:10.1104/pp.57.2.315
  • Katare DP, Nab G, Azooz MM, Aeri V, Ahmad P. 2012. Biochemical modifications and enhancement of psoralen content in salt-stressed seedlings of Psoralea corylifolia Linn. J Funct Environ Bot. 2:65–74. doi:10.5958/j.2231-1742.2.1.009
  • Kaya C, Sonmez O, Aydemir S, Ashraf M, Dikilitas M. 2013. Exogenous application of mannitol and thiourea regulates plant growth and oxidative stress responses in salt-stressed maize (Zea mays L.). J Plant Interact. 8:234–241. doi:10.1080/17429145.2012.725480
  • Koyro HW, Ahmad P, Geissler N. 2012. Abiotic stress responses in plants: an overview. In: Ahmad P, Prasad MNV, editors. Environmental adaptations and stress tolerance of plants in the era of climate change. New York (NY): Springer Science + Business Media; p. 1–28.
  • Kumar GS, Lakshmi A, Madhusudan KV, Ramanjulu S, Sudhakar C. 1999. Photosynthesis parameters in two cultivars of mulberry differing in salt tolerance. Photosynthetica. 36:611–616. doi:10.1023/A:1007008608217
  • Laemmli UK. 1970. Cleavage of structural proteins during the assembly of the head bacterophage T4. Nature. 227:680–685. doi:10.1038/227680a0
  • Lal S, Gulyani V, Khurana P. 2008. Over expression of HVA1 gene from barley generates tolerance to salinity and water stress in transgenic mulberry (Morus indica). Transgenic Res. 17:651–663. doi:10.1007/s11248-007-9145-4
  • Lin J, Li X, Zhang Z, Yu X, Gao Z, Wang Y, Wang J, Li Z, Mu C. 2012. Salinity-alkalinity tolerance in wheat: seed germination, early seedling growth, ion relations and solute accumulation. Afr J Agric Res. 7:467–474.
  • Lu S, Zhang S, Xu X, Korpelainen H, Li C. 2009. Effect of increased alkalinity on Na+ and K+ contents, lipid peroxidation and antioxidative enzymes in two populations of Populus cathayana. Biol Plant. 53:597–600. doi:10.1007/s10535-009-0109-9
  • Mandhania S, Madan S, Sawhney V. 2006. Antioxidant defense mechanism under salt stress in wheat seedlings. Biol Plant. 50:227–231. doi:10.1007/s10535-006-0011-7
  • Marschner H. 1995. Mineral nutrition of higher plants. 2nd ed. London: Academic Press.
  • Meloni DA, Martinez CA. 2009. Glycinebetaine improves salt tolerance in vinal (Prosopis ruscifolia Griesbach) seedlings. Braz J Plant Physiol. 21:233–244.
  • Mittler R. 2002. Oxidative stress, antioxidants and stress tolerance. Trends Plant Sci. 7:405–410. doi:10.1016/S1360-1385(02)02312-9
  • Moran PJ, Cheng Y, Cassell JL, Thompson GA. 2002. Gene expression profiling of Arabidopsis thaliana in compatible plant-aphid interactions. Arch Insect Biochem Physiol. 51:182–203. doi:10.1002/arch.10064
  • Munns R. 2002. Comparative physiology of salt and water stress. Plant Cell Environ. 25:239–250. doi:10.1046/j.0016-8025.2001.00808.x
  • Patade VY, Bhargava S, Suprasanna P. 2011. Salt and drought tolerance of sugarcane under iso-osmotic salt and water stress: growth, osmolytes accumulation, and antioxidant defense. J Plant Interact. 6:275–282. doi:10.1080/17429145.2011.557513
  • Qadir M, Noble AD, Schubert S, Thomas RJ, Arslan A. 2006. Sodicity-induced land degradation and its sustainable management: problems and prospectives. Land Degrad Develop. 17:661–676. doi:10.1002/ldr.751
  • Ramoliya P, Patel H, Pandey AN. 2004. Effect of salinization of soil on growth and macro- and micro-nutrient accumulation in seedlings of Salvadora persica (Salvadoraceae). Forest Ecol Manag. 202:181–193. doi:10.1016/j.foreco.2004.07.020
  • Rao MKV, Sresty TVS. 2000. Antioxidative parameters in the seedlings of pigeonpea (Cajanus cajan L. Millspaugh) in response to Zn and Ni stresses. Plant Sci. 157:113–128. doi:10.1016/S0168-9452(00)00273-9
  • Rasool S, Ahmad A, Siddiqi TO, Ahmad P. 2013. Changes in growth, lipid peroxidation and some key antioxidant enzymes in chickpea genotypes under salt stress. Acta Physiol Plant. 35:1039–1050. doi:10.1007/s11738-012-1142-4
  • Rasool S, Hameed A, Azooz MM, Rehman M, Siddiqi TO, Ahmad P. 2012. Salt stress: causes, types and responses of plants. In: Ahmad P, Azooz MM, Prasad MNV, editors. Ecophysiology and responses of plants under salt stress. New York (NY), Heidelberg, Dordrecht and London: Springer; p. 1–24.
  • Roussos PA, Tsantili E, Pontikis CA. 2006. Responses of Jojoba explant to different salinity levels during the proliferation stage in vitro. Indus Crops Prod. 23:65–72. doi:10.1016/j.indcrop.2005.04.006
  • Sudhakar C, Lakshmi A, Giridarakumar S. 2001. Changes in the antioxidant enzyme efficacy in two high yielding genotypes of mulberry (Morus alba L.) under NaCl salinity. Plant Sci. 161:613–619. doi:10.1016/S0168-9452(01)00450-2
  • Sun YL, Hong SK. 2011. Effect of citric acid as an important component of the response to saline and alkaline stress in the halophyte Leymus chinensis (Trin.). Plant Growth Regul. 64:129–139. doi:10.1007/s10725-010-9547-9
  • Thomas JC, Bohnert HJ. 1993. Salt stress perception and plant growth regulators in the halophyte Mesembryanthemum crystallinum. Plant Physiol. 103:1299–1304.
  • Vijayan K, Chakraborti SP, Ghosh PD. 2003. In vitro screening of axillary buds for salinity tolerance in mulberry genotypes. Plant Cell Rep. 22:350–357. doi:10.1007/s00299-003-0695-5
  • Vijayan K, Nair CV, Chatterjee SN. 2009. Diversification of mulberry (Morus indica var. S36) – a vegetatively propagated tree species. Caspian J Environ Sci. 7:23–30.
  • Wang H, Wu Z, Chen Y, Yang C, Shi D. 2011. Effects of salt and alkali stresses on growth and ion balance in rice (Oryza sativa L.). Plant Soil Environ. 57:286–294.
  • Yang J, Zheng W, Tian Y, Wu Y, Zhou D. 2011. Effects of various mixed salt-alkaline stresses on growth, photosynthesis, and photosynthetic pigment concentrations of Medicago ruthenica seedlings. Photosynthetica. 49:275–284. doi:10.1007/s11099-011-0037-8
  • Zhang P, Fu J, Hu L. 2012. Effects of alkali stress on growth, free amino acids and carbohydrates metabolism in Kentucky bluegrass (Poa pratensis). Ecotoxicology. 21:1911–1918. doi:10.1007/s10646-012-0924-1

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