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Effects of Exogenous Chitosan on Physiological Characteristics of Potato Seedlings Under Drought Stress and Rehydration

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Abstract

Using young plants of the potato variety “Favourite”, we studied the effects of exogenous chitosan (CTS) on physiological characteristics of potatoes under drought stress and rehydration. Spraying 50, 100 and 200 mg l−1 of exogenous CTS on potato leaves before drought stress reduced membrane relative permeability and malondialdehyde concentration of potato leaves, raised the concentration of proline and soluble proteins and enhanced the activities of superoxide dismutase and peroxidase during drought stress. Additionally, CTS promoted the recovery of these physiological indicators after a rehydration period. Of the three treatments, 100 mg l−1 of CTS alleviated drought stress the best. Altogether, this indicates that exogenous CTS could relieve drought stress damage in young potato plants by enhancing their antioxidation ability, increasing the activities of protective enzymes and regulating the content of osmotic regulatory substances. Applying exogenous CTS could be an effective measure to reduce drought stress in potato and warrants further evaluation in the field.

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References

  • Apel K, Hirt H (2004) Reactive oxygen species: metabolism, oxidative stress, and signal transduction. Ann Rev Pl Biol 55:373–399

    Article  CAS  Google Scholar 

  • Avadi MR, Sadeghi AMM, Tahzibi A (2004) Diethylmethyl chitosan as an antimicrobial agent: synthesis, characterization and antibacterial effects. E Polymer J 40:1355–1361

    Article  CAS  Google Scholar 

  • Bhaskar PB, Venkateshwaran M, Wu L, Ane JM, Jiang J (2009) Agrobacterium-mediated transient gene expression and silencing: a rapid tool for functional gene assay in potato. PLoS One 4:e5812

    Article  PubMed  Google Scholar 

  • Bittelli M, Flury M, Campbell GS et al (2001) Reduction of transpiration through foliar application of chitosan. Agr Forest Meteor 107:167–175

    Article  Google Scholar 

  • Bowler C, Van M, Inzc D (1992) Superoxide dismutase and stress tolerance. Ann Rev Plant Mol Bio l 43:83–116

    Article  CAS  Google Scholar 

  • Dai GX, Peng KQ, Xiao LT et al (2006) Effect of drought stress simulated by PEG on malonaldehyde, proline contents and superoxide dismutase activity in low potassium tolerant rice seedlings. Chinese Rice Sci 20:557–559

    CAS  Google Scholar 

  • Gao JF (2006) Guide to plant physiological experiments [M]. Higher Education Press, Beijing

    Google Scholar 

  • Gu LQ (2011) Effects of exogenous chitosan on physiological characteristics of Phalaenopsis seedlings under drought stress. SW China J of Agr Sci 24:38–41

    Google Scholar 

  • Halliwei B, Gutterdge JM (1984) Oxygen toxicity, oxygen radicals, transition metals and disease. The Bioch J 219:1–14

    Google Scholar 

  • Hu JJ, Zuo ZW, Liu WC (2003) Effect of chitosan on seeds germination and seedling physiological property of the Chinese Pine. J of NW Forestry Univ 18:21–24

    Google Scholar 

  • Huang CM, Yang LT, Jiang W et al (2008) Effects of PEG stress on water potential and proline metabolism in leaves of sugarcane (Saccharum officinarum L.) at early growth stage. Agri Res Arid Areas 26:205–208

    Google Scholar 

  • Lee S, Choi H, Suh S et al (1999) Oligogalaturonic acid and chitosan reduce stomatal aperture by inducing the evolution of reactive oxygen species from guard cells of tomato and Commelina communis. Plant Physiol 121:147–152

    Article  PubMed  CAS  Google Scholar 

  • Li HS, Chen CL (1998) Principle and technology of physiological and biochemical experiments in plants. Huazhong Agricultural University Press, Wuhan

    Google Scholar 

  • Li MF, LI SP, Zhao WF (2005) Effects of chitosan on cold resistance of banana (Musa paradisiaca L.) seedlings. Plant Physiol Comm 41:464–466

    CAS  Google Scholar 

  • Liu W, Huang XM, Yang XJ (2004) Alleviatory effects of chitosan on detached mango leaves under osmotic stress. Agr Res Arid Areas 22:195–197

    Google Scholar 

  • Schapendonk A, Spitters CJT, Groot PJ (1989) Effects of water stress on photosynthesis and chlorophyll fluorescence of five potato cultivars. Potato Res 32:17–32

    Article  Google Scholar 

  • Shi SY, Bi QH, Chen Y et al (1997) Primary study on physiological regulation function of N-carboxmethylchitosan in maize. J China Agr Univ 2:126

    Google Scholar 

  • Song SQ, Sang QM, Guo SR et al (2006) Physiological synergisms of chitosan on salt resistance of cucumber seedlings. Acta Bot Boreali-occidentalia Sinica 26:435–441

    CAS  Google Scholar 

  • Wang Y, He HG, Zhou Y et al (2006) Effect of different molecular weight chitosan on several physiological and biochemical characteristics related with plant defense reaction. Plant Physiol Comm 42:1109–1111

    CAS  Google Scholar 

  • Wei LM (1991) A study on changes in carbohydrates and proteins in several xeric plants. Arid Zone Res 8:38–41

    Google Scholar 

  • Yang F, Hu JJ, Li JL et al (2008) Effect of chitosan on some physiological indices of apple seedlings under drought stress. J Nan Jing For Univ 6:61–64

    CAS  Google Scholar 

  • Ye YP, Lou YQ (2009) Effect of chitosan with different concentration on drought resistance of sugarcane under drought stress. Henan Agr Sci 11:47–50

    Google Scholar 

  • Yu QJ, Du L, Hu YL et al (2005) Sense and antisense expression of plasma membrane aquaporin from Brassica napus in tobacco and its effects on plant drought resistance. Plant Sci 169:647–656

    Article  CAS  Google Scholar 

  • Zhang ZL (2001) Experimental guide of plant physiology. Higher Education Press, Beijing

    Google Scholar 

  • Zhang LS, Zhao WM (2003) Protein functions to tolerance drought of the plant. Plant Physiol Comm 39:61–66

    CAS  Google Scholar 

  • Zhang HP, Niu JY, Xuan CX et al (2008) Effects of drought stress and rewatering on content of proline and malondiadehyde in pea leaves. J of Gansu Agr Univ 43:50–54

    CAS  Google Scholar 

Download references

Acknowledgments

This work was supported by research funds (GA08B102) from Heilongjiang Department of Science and Technology, China.

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Correspondence to Dianqiu Lu or Jingying Wang.

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Jiao, Z., Li, Y., Li, J. et al. Effects of Exogenous Chitosan on Physiological Characteristics of Potato Seedlings Under Drought Stress and Rehydration. Potato Res. 55, 293–301 (2012). https://doi.org/10.1007/s11540-012-9223-8

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  • DOI: https://doi.org/10.1007/s11540-012-9223-8

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