Changes in antioxidant enzymes activities mitigates deleterious effects of ROS in Panicum miliaceum (L.) under drought stress

Автор: Mir Reyaz Ahmad, Somasundaram R., Panneerselvam R.

Журнал: Журнал стресс-физиологии и биохимии @jspb

Статья в выпуске: 3 т.15, 2019 года.

Бесплатный доступ

In nature, plants are always subjected to various abiotic stresses such as drought, salinity, high temperatures and so on. Among these drought is a worldwide problem, responsible for limiting the growth, physiology and productivity of plants, thus has become a challenge for global food security towards growing population. Proso millet ( Panicum miliaceum L.) belonging to family Poaceae grows under wide environmental conditions and different soil profile. In this view, an experiment was conducted to investigate the range of tolerance and change of metabolic activities of Proso millet under drought stress. The control plants were irrigated regularly and treated plants were irrigated at 3, 5, 7, day intervals up to 60day interval drought (DAS). The root and leaf samples were collected on 30 DAS, 45 DAS and 60 DAS respectively for morphological and biochemical analysis. It was found that with increasing duration of water deficit, tremendous increases of antioxidants activities were recorded at all growth stages compared to control on 7DID at 60DAS. Furthermore, a decreased rate of growth, biomass and chlorophyll content was recorded in treated plants than control. Therefore, it can be concluded that proso millet has affinity to survive under prolonged drought stress and can help to understand the mechanism of photosynthetic efficacy for improving crop productivity.

Еще

Abiotic stress, antioxidants, drought stress, pigments, proso millet

Короткий адрес: https://sciup.org/143168567

IDR: 143168567

Список литературы Changes in antioxidant enzymes activities mitigates deleterious effects of ROS in Panicum miliaceum (L.) under drought stress

  • Abaaszsadeh P., Sharifi A., Lebaschi H., Moghadasi F. (2007) Effect of drought stress on proline, soluble sugars, chlorophyll and RWC level in Melissa oggicinalis. Iranian Journal of Medicinal Plants Research, 23, 504-513
  • Abass M., Tomar N., Tittal M., Argal S., Agarwal R.M. (2017) Plant growth under water/salt stress: ROS production; antioxidants and significance of added potassium under such conditions. Physiol. Mol. Biol. Plants 23, 1-14
  • Amadou I., Gounga M. E., Le G.W. (2013) Millets: nutritional composition, some health benefits and processing-Areview. Emirates J. Food Agric. 25, 501-508
  • Arnon D.I. (1949) Copper enzymes in isolated chloroplast. Polyphenol-oxidase in Beta vulgaris L. Plant Physiology 24, 1-5
  • Arrom L., Munn'e-Bosch S. (2010) Tocopherol composition in flower organs of Lilium and its variations during natural and artificial senescence. Plant Sci. 179, 289_295
  • Athar H. R., Khan A., and Ashraf M. (2008) Exogenously applied ascorbic acid alleviates salt-induced oxidative stress in wheat. Environ. Exp. Bot. 63: 224-231
  • Backer H., Frank O., De Angells B., Feingold O. (1980) Plasmatocopherol in man at various times after ingesting free or acetylated tocopherol. Nutr Rep Int 21: 531-536
  • Beauchamp C.O., Fridovich I. (1971) Superoxide dismutase: improved assays and an assay applicable to acrylamide gels. Analytical Biochemistry, 44, 276-287
  • Budak H., Kantar M., Kurtoglu K.Y. (2013) Drought tolerance in modern and wild wheat. The Scientific World Journal, 548-246
  • Cao B., Ma Q., Zhao Q., Wang L., Xu K. (2015) Effects of silicon on absorbed light allocation, antioxidant enzymes and ultrastructure of chloroplasts in tomato leaves under simulated drought stress. Sci. Hort. 194, 53-62
  • Chandlee J.M., Scandalios J.G. (1984) Analysis of variants affecting the catalase developmental program in maize scutellum. Theoretical and Applied Genetics,69, 71-77
  • Dalmia A., Sawhney V. (2004) Antioxidant defense mechanism under drought stress in wheat seedlings, Physiol. Mol. Biol. - Plants, 10: 109-114
  • Dickin E., Wright D., (2008) The effects of winter waterlogging and summer drought on the growth and yield of winter wheat (Triticum aestivum L.). Europ. J. Agron., 28: 234-244
  • Din J., Khan S.U., Ali I., Gurmani A.R. (2011) Physiological and agronomic response of canola varieties to drought stress. J. Anim. Plant Sci. 21: 78-82
  • Fang Y. J., Xiong L. Z. (2015) General mechanisms of drought response and their application in drought resistance improvement in plants. Cellular
  • Feng X., Lai Z., Lin Y. et al. (2015) Genome-wide identification and characterization of the superoxide dismutase gene family in Musa acuminata cv. Tianbaojiao (AAA group). BMC Genomics 16(1), 1-16
  • Foyer C. H., Noctor G. (2005) Oxidant and antioxidant signaling in plants: A re-evaluation of the concept of oxidative stress in a physiological context. Plant Cell
  • Gong H., Chen K., Chen G., Wang S., Zhang C. (2003) Effects of silicon on growth of wheat under drought. J. Plant Nutr., 26: 1055-1063
  • Hasheminasab H., Taghi-Assad M., Aliakbari A., Sahhafi S.R. (2012) 'Influence of drought stress on oxidative damage and antioxidant defense systems in tolerant and susceptible wheat genotypes'. Journal of Agricultural Science, 4(8): 20-30
  • Hussain M., Malik M.A., Farooq M., Ashraf M. Y., Cheema M. A. (2008) Improving drought tolerance by exogenous application of glycine betaine and salicylic acid in sunflower. Journal of Agronomy and Crop Science, 194, 193-199
  • Ajithkumar I.P., Panneerselvam R. (2013). ROS Scavenging System, Osmotic Maintenance, Pigment and Growth Status of Panicum sumatrense Roth. under drought stress. Cell Biochem Biophys 68: 587-595
  • Jaleel C.A., Gopi R., Sankar B., Gomathinayagam M., Panneerselvam R. (2008) Differential responses in water use efficiency in two varieties of Catharanthus roseus under drought stress. Comp. Rend. Biol., 331: 42-47
  • Jaleel C.A., Manivannan P., Wahid A., Farooq M., Somasundaram R., Panneerselvam R. (2009) Drought stress in plants: A review on morphological characteristics and pigments composition. Int. J. Agric. Biol. 11: 100-105
  • Jiang M., Zhang J. (2002) Water stress induced abscisic acid accumulation triggers the increased generation of reactive oxygen species and up-regulates the activities of antioxidant enzymes in maize leaves. Journal of Experimental Botany, 53: 2401-2410
  • Kabira J. N., Muthoni J. (2016) Potato production under drought conditions: Identification of adaptive traits. Int. J. Hort., 6, 1-9
  • Kobashi K., Gemma H., Iwahari S. (2000) Abscisic acid content and sugar metabolism of peaches grown under water stress. J. Amer. Soc. Hort. Sci., 125(4): 425-428
  • Kothari S.L., Kumar S., Vishnoi R.K., Kothari A., Watanabe K.N. (2005) Applications of biotechnology for improvement of millet crops: review of progress and future prospects. Plant Biotechnol. 22, 81-88
  • Kusaka M., Lalusin A.G., Fujimura T. (2005) The maintenance of growth and turgor in pearl millet (Pennisetum glaucum L. Leeke) cultivars with different root structures and osmo-regulation under drought stress. Plant Sci., 168: 1-14
  • Langebartels C., Wohlgemuth H., Kschieschan S., Grün S., Sandermann H. (2002) Oxidative burst and cell death in ozone-exposed plants. Plant Physiology
  • Lee D.H., Lee C.B. (2000) Chilling stress induced changes of antioxidant enzymes in the leaves of cucumber: In gel enzyme activity assay. Plant Sci., 159: 75-85
  • Liang Z.S., Yang J.W., Shao H.B., Han R.L. (2006) Investigation on water consumption characteristic and water use efficiency of poplar under soil water on the Loess Plateau. Colloids and Surf. B: Biointerfaces, 53: 23-28
  • Mafakheri A., Siosemardeh A., Bahramnejad B. (2010) Effect of drought stress on yield, proline and chlorophyll contents in three chickpea cultivars. Aust. J. Crop Sci. 4: 580-585
  • Marcinska I., Czyczyo-Mysza I., Skrzypek E., Filek M., Grzesiak S. et al (2013) Impact of osmotic stress on physiological and biochemical characteristics in drought susceptible and drought-resistant wheat genotypes. Acta Physiol. Plant 35, 451-461
  • Mohammadian R., Moghaddam M., Rahimian H., Sadeghian S.Y. (2005) Effect of early season drought stress on growth characteristics of sugar beet genotypes. Turkisk J. Bot., 29: 357-368
  • Naderi R., Valizadeh M., Toorchiand M., Shakiba M.R. (2014) Antioxidant enzyme changes in response to osmotic stress in wheat (Triticum aestivum L.) seedling'. Acta Biologica Szegediensis, 58(2): 95-101
  • Nazifi S., Ghane M., Fazeli M., Ghafaria N., Azizi S. (2009) Proso millet (Panicum miliaceum L.) poisoning in Iranian fat-tailed sheep. Comp. Clin. Pathol. 18: 249-253
  • O'Kane D., Gill V., Boyd P., Burdon R. (1996) Chilling oxidative stress and antioxidant responses in Arabidopsis thaliana callus. Planta., 198: 371-377
  • Omay S.T., Turnbull J.D., Sauberillich H.E. (1979) Selected methods for the determination of ascorbic acid in animal cells tissues and fluids. methods in enzymology. Academic Press, New York, pp 3-11
  • Ravikumar G., Manimaran P., Voleti S.R., Balachandran S.M. (2014) Stress-inducible expression of AtDREB1A transcription factor greatly improves drought stress tolerance in transgenic indica rice. Transgenic Research, 23, 421-439
  • Reddy K.P., Subhani S.M., Khan P.A., Kumar K.B. (1995) Effect of light and benzyl adenine on dark-treated growing rice leaves. II. Changes in peroxidase activity. Plant and Cell Physiology, 24, 987-994
  • Salekjalali M., Haddad R., Jafari B. (2012) 'Effects of soil water shortages on the activity of antioxidant enzymes and the contents of chlorophylls and proteins in barley'. Amer.-Eura. J. Agric. and Environ. Sci., 12 (1): 57-63
  • Shao H.B., Chen X.Y., Chu L.Y., Zhao X.N., Wu G. et al. (2006) Investigation on the relationship of Proline with wheat anti-drought under soil water deficits. Biointerfaces., 53(2):113-119
  • Shao H.B., Chuc L.Y., Wu G., Zhang J.H., Lua Z.H., et al. (2007) Changes of some anti-oxidative physiological indices under soil water deficits among 10 wheat (Triticum aestivum L.) genotypes at tillering stage. Colloids and Surfaces B: Biointerfaces, 54: 143-149
  • Sharma P., Dubey R.S. (2005) Modulation of nitrate reductase activity in rice seedlings under aluminium toxicity and water stress: role of osmolytes as enzyme protectant, J. Plant Physiol. 162(8): 854-864
  • Simova-Stoilova L, Vaseva I., Grigorova B., Demirevska K., Feller U. (2010) Proteolytic activity and cysteine protease expression in wheat leaves under severe soil drought and recovery, Plant Physiol. Biochem. 48(2-3): 200-206
  • Skirycz, A., Inze, D. (2010). More from less: plant growth under limited water. Curr. Opin. Biotechnol. 21, 197-203
  • Specht J.E., Chase K., Macrander M., Graef G.L., Chung J. (2001) Soybean response to water. A QTL analysis of drought tolerance. Crop Sci., 41: 493-509
  • Turkan I., Bor M., Ozdemir F., Koca H. (2005) Differential responses of lipid peroxidation and antioxidants in the leaves of drought tolerant P. acutifolius gray and drought sensitive P. vulgaris L. subjected to polyethylene glycol mediated water stress. Plant Sci., 168(1): 223-231
  • Pekcan V., Evci G., Yilmaz M. I., Balkan Nalcaiyi A. S., Çulha Erdal Ş., Cicek N., Arslan O., Ekmekci Y., Kaya Y. (2016) Effects of Drought Stress on Sunflower Stems and Roots. International Conference on Chemical, Agricultural and Life Sciences (CALS-16) Feb. 4-5, 2016 Bali (Indonesia), 53-59
  • Wang J. H., Geng L.H., Zhang C.M. (2012) Research on the weak signal detecting technique for crop water stress based on wavelet denoising. Adv Mat Res, 424/425: 966-970
  • Winston G.W. (1990) Physiochemical basis for free radical formation in cell: production and defenses. In: Stress responses in plants: Adaptation and Acclimation mechanism (Eds.: R.G. Alscher and J.R. Cumming). Wiley-Liss
  • Wu G., Wei Z.K., Shao H.B. (2007) The mutual responses of higher plants to environment: physiological and microbiological aspects. Biointerfaces, 59: 113-119
  • Wu Q.S., Xia R.X., Zou Y.N. (2008) Improved soil structure and citrus growth after inoculation with three arbuscular mycorrhizal fungi under drought stress. European J. Soil Biol., 44: 122-128
  • Yang Y., Han C., Liu Q., Lin B., Wang J. (2008) Effect of drought and low light on growth and enzymatic antioxidant system of Picea asperata seedlings. Acta Physiol. Plant. 30: 433-440
  • Zhang M., Duan L., Tian X., He Z., Li J. (2006) Uniconazole- induced tolerance of soybean to water deficit stress in relation to changes in photosynthesis, hormones and antioxidant system. J. Plant Physiol., 164(6): 709-717
  • Zhang X., Schmidt R.E. (2000) Hormone containing products impact on antioxidant status of tall fescue and creeping bentgrass subjected to drought. Crop Sci., 40: 1344-1349
  • Zhao C.X., Guo L.Y., Jaleel C.A., Shao H.B., Yang H.B. (2008) Prospects for dissecting plant-adaptive molecular mechanisms to improve wheat cultivars in drought environments. Comp. Rend. Biol., 331: 579-586
  • Zlatev Z.S., Lidon F.C., Ramalho J.C., Yordanov I.T. (2006) Comparison of resistance to drought of three bean cultivars. Biol. Plant., 50(3): 389-394
Еще
Статья научная