Symbiosis effects of Mycorrhizal and Pseudomonas on morphophysiological traits of mung bean (Vigna radiata (L.) Wilczek) under moisture stressed condition

Document Type : Original Articles

Authors

1 Department of Agronomy and Plant Breeding, Miyaneh Branch, Islamic Azad University, Miyaneh, Iran

2 Department of Soil Science, Miyaneh Branch, Islamic Azad University, Miyaneh, Iran

Abstract

Introduction
Environmental stresses especially drought are important and effective factors reducing plant production. Mung bean (Vigna radiata (L) Wilczek) from leguminosae family mostly grows in tropical areas and has a lower water requirement compared to other legumes. The role of mycorrhizal symbiosis to protect plants under drought conditions is considerable. The main effects of drought stress at the flowering stage are aborting flowers and eventually declining seed yield while the major effects of drought stress are on reproductive organs of plants in the pod filling stage. Therefore, effects of drought stress occurring due to lack of water are in different growth stages which can be divided into flowering and pod filling stages. The aim of this study was to improve some morphophysiological traits, nitrogen, protein, root colonization, mycorrhizal dependency and mycorrhizal growth response percentage of mung bean by Glomus mosseae and Pseudomonas fluorescence strain 169 symbiosis under different imposed moisture stress conditions.
 
Materials and Methods
A split plot Randomized Complete Block Design experiment with three replications was conducted in the research farm of Islamic Azad University of Miyaneh branch, Iran, during 2016. The main factors allocated to three levels of drought stress included: normal irrigation (control), stopping irrigation in flowering stage, stopping irrigation in pods formation stage. Sub-factor was considered for four treatments of inoculation including: non-inoculation (control), inoculation by G. mosseae, P. fluorescens strain169 and G. mosseae+P. fluorescens strain169. Parto variety of mung bean (Vigna radiata L. Wilczek) used in this study was provided by Seed and Plant improvement Institute, Karaj, Iran. Suspension solutions of Pseudomonas fluorescens strain169 with 108-109 live and active bacteria per ml (CFUml-1) were provided by Water and Soil Research Institute, Karaj, Iran. Glomus mosseae was obtained from Zist Fanavaraneh Turan biotech firm, which had approximately 30 live fungi per gram and was produced by culturing in host plants, used in the form of soil mixed spores and hyphae. Inoculation of seeds by Pseudomonas fluorescence strain 169 was done in the morning by mixing them in an aluminum paper. The 2% glucose solution was added to increase the number of bacteria attached to seeds, and the seeds were then allowed to be dried in shadow. In order to increase the efficiency of fungi and bacteria in sowing time, seeds were not sterilized. Based on physicochemical analysis, the soil clay and organic carbon, nitrogen, phosphorus and potassium amount in the experimental farm was 1.5%, 0.1%, 5.70 (mg.kg-1) and 301 (mg.kg-1), respectively. In this study, traits such as protein of seed (%), nitrogen of seed (%) and root colonization (%), relative water content (%) as well as mycorrhizal dependency (%) and mycorrhizal growth response (%) were measured, and the average of ten samples from each plot for plant height (cm), the number of leaves per plant, dry weight of leaves (g), dry weight of stem+pod (g), dry weight of plant (g), stem diameter (mm) and the number of branches were collected and calculated. All measured data were analyzed for simple analysis of variance using MSTAT-C software. Mean comparison was carried out by the Duncan test at 5% probability level using SPSS (Ver.16).
 
Results and Discussion
Results displayed significant variation among drought stress treatments for the majority of growth characteristics. Based on inoculation treatments, there were significant differences between all measured traits except the number of leaves per plant and stem diameter. Drought stress decreased the majority of morphophysiological traits. Glomus mosseae increased dry weight of leaves and dry weight of plant by 44.3% and 8.45% respectively. G.mosseae was more effective to increase growth characteristics of mung bean. According to water requirement, pods forming stage was the most sensitive growth stage. Co-inoculation of P. fluorescence strain 169+G. mosseae synergistically affected root colonization percentage and nitrogen percentage of seeds. Protein content of seeds in drought stressed condition was more than normal irrigation plots. Plants located in cutting irrigation in pods filling stage plots plus inoculated by G. mosseae+P. fluorescence 169 had the highest protein content of seed with average 16.560%.
 
Conclusion
This study indicated that major differences between G. mosseae, Pseudomonas fluorescence strain 169 and interaction of them for their ability to enhance growth characteristics of mung bean. G. mosseae and P. fluorescence strain 169 could alleviate drought stress effects through enhancing the plant height directly. Pod formation stage was identified as a susceptible growth stage of the plant under water deficit condition. In addition, stopping irrigation in pod formation stage had a high negative influence on the number of leaves and branches in plant. The majority of measured growth characteristics was positively affected by soil microbial mass. Plants inoculated by P. fluorescence 169+G.mosseae under cutting irrigation in pod filling stage had the highest root colonization by 55.3%. Synergistic effects of G. mosseae and P. fluorescens 169 increased dry weight of stem+pod, dry weight of plant, which seems to be an important finding for physiologists and soil scientists. Glomus mosseae individually improved plant height and dry weight of leaves in cooperation with other treatments.

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Main Subjects


  1. Abdelhafez, A.A., and Abdel-Monsief, R.A. 2006. Effects of VA mycorrhizal inoculation on growth, yield and nutrient content of Cantaloupe and Cucumber under different water regimes. Journal of Agriculture and Biological Sciences 2(6): 503-508.
  2. Ali Asgharzadeh, N. 2010. Soil Microbiology and B Al-Dera Pal, Francis E Clark (Eds.). Publication of Tabriz University. Iran.
  3. Amraei, B., Ardakani, M.R., Rafiae, M., Paknejad, F., and Rajae, F. 2015. Evaluation of the effects of biofertilizers (Mycorrhizal and Azotobacter) on yield and some agronomical characteristics in different wheat cultivars. Iranian Journal of Agronomy and Plant Breeding 12(2): 1-17. (In Persian with English Summary).
  4. Armin, M., Sharifinia, M.R., and Mortazavi, E. 2014. The effects of mycorrhizal symbiosis in increased tolerance to drought stress in wheat (Triticum aestivum). Journal of Crop Ecophysiology 1(6): 1-15. (In Persian with English Summary).
  5. Auge, R.M., Stodola, A.J.W., Times, J.E., and Saxton, A.M. 2001. Moisture retention properties of a mycorrhizal soil. Plant and Soil 230:87-97.
  6. Bhatt, R.M., and Srinivasa Rao, N.K. 2005. Influence of pod load response of Okra to water stress. Indian Journal of Plant Physiology 10: 54-
  7. Bremner, J.M., and Mulvaney, C.S. 1982. Nitrogen-Total, P: 595-624. In: A.L. Page, et al., (E), and Methods of Soil Analysis. Agronomy Monograph 9, Part 2, 2nd Ed. American Society of Agronomy, Madison, WI.
  8. Esmaeilpour, B., Jalilvand, P., and Hadian, J. 2013. Effects of drought stress and arbuscular mycorrhizal fungi on some morphophysiological traits and yield of savory (Satureja hortensis). Agroecology Journal (5)2: 169-177. (In Persian with English Summary).
  9. Farooq, M., Wahid, A., Kobayashi, N., Fujita, D., and Basra, S.M.A. 2009. Plant drought stress: effects, mechanisms and management. Agronomy for Sustainable Development 29: 185-212.
  10. Giovannetti, M., and Mosse, B. 1980. An evaluation of techniques to measure vesicular arbuscular mycorrhizal infection in roots. New Phytologist 84: 489-500.
  11. Glick, B.R. 2012. Plant Growth-Promoting Bacteria: Mechanisms and Applications. Volume 2012, Article ID 963401, PP: 15.
  12. Habibzadeh, Y., Zardoshti, M.R., Pirzad, A., and Jalilian, J. 2012. Effect of mycorrhiza fungi on growth indices and grain yield of mungbean (Vigna radiata (L.) Wilczek) under water deficit stress. Journal of Sciences and Technology of Agriculture and Natural Resources 2(60): 57-68. (In Persian with English Summary).
  13. Heuer, B., and Nadler, A. 1995. Growth, development and yield of potatoes under salinity and water deficit. Australian Journal of Agricultural Research 46: 1477-
  14. Hu, Y., and Schmidhalter, U. 2005. Drought and salinity: A comparison of their effects on mineral nutrition of plants. Plant Nutrition 168: 541-549.
  15. Jaleel, C.A., Manivannan, P., Wahid, A., Farooq, M., Al-Juburi, H.J., Somasundaram, R., and Vam, R.P. 2009. Drought stress in plants: A review on morphological characteristics and pigments composition. International Journal of Agriculture & Biology 11: 100-105.
  16. Kage, H., Kochler, M., and Stützel, H. 2004. Root growth and dry matter partitioning of cauliflower under drought stress conditions: measurement and simulation. European Journal of Agronomy 20: 379-
  17. Khalid, K.A. 2006. Influence of water stress on growth, essential oil and chemical composition of herbs (Ocimum sp). International Agrophysics 20: 289-296.
  18. Leport, L., Turner, N.C., French, R.J., Tennant, D., Thomson, B.D., and Siddique, K.H.M. 1998. Water relation, gas exchange, and growth of cool-season grain legumes in a Mediterranean-type environment. European Journal of Agronomy 9: 295-303.
  19. Manirannan, P., Jaleel, C.A., Kishorekumar, A., Sankar, B., Somasundaram, R., Sridharan, R., and Panneerselvam, R. 2007. Changes in antioxidant metabolism of Vigna unguiculata (L.) Walp. by propiconazole under water deficit stress. Colloids Surf. B: Biointerfaces 57: 69-
  20. Mohammadian, R., Moghaddam, M., Rahimian, H., and Sadeghian, S.Y. 2005. Effect of early season drought stress on growth characteristics of sugar beet genotypes. Turkish Journal of Botany 29: 357-
  21. Mousavi Jangali, S.A., Omani, B., Sharifi, M., and Hossein Nezhad, Z. 2006. Effect of phosphate soluble microorganisms with mycorrhiza on some quality traits and yield of corn (SC704). The 9th Congress of Agronomy and Plant Breeding, Karaj. Seed and Plant Improvement Research Institute. P: 1. (In Persian with English Summary).
  22. Navvabpour, S., Hezar Jaribi, A., and Mazandarani, A. 2017. Investigating the effect of drought stress on important agronomic traits and protein and seed oil content in Glycin max genotypes. Environmental Stress in Crop Sciences Journal 4(10): 491-503. (In Persian with English Summary).
  23. Omidi, A., Mirzakhani, M., and Ardakani, M.R. 2011. Evaluation of quality traits in Bastard saffron (Carthamus tinctorius) under the effect of azotobactor and mycorrhizal symbiosis. Journal of Agroecology 6(2): 338-324. (In Persian with English Summary).
  24. Rafie Shirvan, M., and Asgharipoor, M.R. 2010. Response of yield and morphological traits of some mungbean, (Vigna radiata) genotypes to drought stress. New Agriculture Science Journal 15(5): 68-76. (In Persian with English Summary).
  25. Ritchie, S.W., and Nguyen, H.T., 1990. Leaf water content and gas exchange parameters of two wheat genotypes differing in drought resistance. Crop Science 30:105-111.
  26. Sacks, M.M., Silk, W.K., and Burman, P. 1997. Effect of water stress on cortical cell division rates within the apical meristem of primary roots of maize. Plant Physiology 114: 519-
  27. Shahhosini, Z., Gholami, A., and Asghari, H.R. 2013. The Effects of mycorrhizal symbiosis on yield and some growth characteristics of maize under water deficit condition. Iranian Journal of Field Crop Science 2(24): 249-260. (In Persian with English Summary).
  28. Shao, H.B., Chu, L.Y., Shao, M.A., Abdul Jaleel, C., and Hong-Mei, M. 2008. Higher plant antioxidants and redox signaling under environmental stresses. Comptes Rendus Biologie 331: 433-441.
  29. Specht, J.E., Chase, K., Macrander, M., Graef, G.L., Chung, J., Markwell, J.P., Germann, M., Orf , J.H., and Lark, K.G. 2001. Soybean response to water. A QTL analysis of drought tolerance. Crop Science 41: 493-
  30. Tadayyon, A., and Soltanian, M. 2016. Effect of arbuscular mycorrhizal fungi on root colonization and phosphorus uptake of linseed (Linum ussitatissimum) under drought stress conditions. Journal of Plant Processes Function 5(15): 147-156. (In Persian with English Summary).
  31. Tahir, M.H.N., and Mehid, S.S. 2001. Evaluation of open pollinated sunflower (Helianthus annuus) populations under water stress and normal conditions. International Journal of Agricultural Biology 3: 236-238.
  32. Tantasawat, P., Trongchuen, J., Prajongjai, T., Thongpae, T., Petkhum, Ch., Seehalak, W., and Machikowa, Th. 2010. Variety identification and genetic relationships of mung bean and black gram in Thailand based on morphological characters and SSR analysis. African Journal of Biotechnology 9(27): 4452-4464.
  33. Vijayalakshmi, D., Amirthaveni, S., Devadas, R.P. Weinberger, K., Tsou, S.C.S., and Shanmugasundaram, S. 2003. Enhanced Bioavailability of Iron from Mungbeans and its Effects on Health of School C AVRDC technical Bulletin No. 30. Shanhua, Taiwan.
  34. Webber, M., Barnett, J., Finlayson, B., and Wang, M. 2006. Pricing China’s irrigation water. Working Paper, School of Anthropology, Geography and Environmental Studies, the University of Melbourne, Victoria, Australia. BMC. Plant Biology 10:34-
  35. Wu, Q.S., Xia, R.X. and Zou, Y.N. 2008. Improved soil structure and citrus growth after inoculation with three arbuscular mycorrhizal fungi under drought stress. European Journal of Soil Biology 44: 122-
  36. Wullschleger, S.D., Yin, T.M., DiFazio, S.P., Tschaplinski, T.J., Gunter, L.E., Davis, M.F., and Tuskan, G.A. 2005. Phenotypic variation in growth and biomass distribution for two advanced-generation pedigrees of hybrid poplar. Canadian Journal for Research 35: 1779-1789.
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  • Receive Date: 01 December 2019
  • Revise Date: 03 May 2020
  • Accept Date: 13 May 2020
  • First Publish Date: 27 November 2020