تعامل بین قارچ و باکتری محرک رشد و نقش آن‌ها بر عملکرد و اجزای عملکرد سه رقم لوبیاقرمز (Phaseolus vulgaris L.)

نوع مقاله : مقالات پژوهشی

نویسندگان

دانشگاه آزاد اسلامی واحد خرم آباد

چکیده

امروزه مصرف نامتعادل کودهای شیمیایی یکی از مهم­ترین عوامل آلودگی­های زیست­محیطی و محدودکننده رشد و عملکرد گیاهان زراعی است. در این راستا استفاده از پتانسیل حمایتی ریزجانداران خاکزی در جهت بهبود حاصلخیزی خاک و تولید پایدار محصولات کشاورزی، طی سال­های اخیر مورد توجه قرار گرفته است. این آزمایش با هدف بررسی اثر کودهای زیستی بر عملکرد و اجزای عملکرد ارقام لوبیاقرمز، به‌صورت فاکتوریل در قالب طرح بلوک­ کامل تصادفی با چهار تکرار در سال زراعی 1395 در منطقه بیران­شهر لرستان اجرا شد. عوامل شامل تلقیح (با گونه­های Glomus etunicatum, G. Intraradices, G. mossea) در دو سطح (تلقیح و بدون تلقیح)، مایه­زنی (با Azotobacter chroococcum Strain 15) در دو سطح (مایه­زنی و عدم مایه­زنی) و ارقام لوبیاقرمز (توده بیران­شهر، ارقام اختر و گلی) بودند. نتایج نشان داد که اثر ازتوباکتر و میکوریزا بر تعداد غلاف در بوته، وزن100دانه، شاخص برداشت و همچنین اثر دو جانبه میکوریزا و رقم، بر تعداد دانه در غلاف، وزن100دانه، عملکرد زیست­توده و شاخص برداشت ارقام لوبیا معنی‌دار و افزایشی بود. مایه­زنی ازتوباکتر و تلقیح میکوریزا عملکرد دانه را به ترتیب 4/12 و 5/24 درصد نسبت به شاهد افزایش دادند. بیشترین عملکرد دانه در رقم گلی به دست آمد که نسبت به رقم اختر و توده بیران­شهر به ترتیب 2/45 و 1/51درصد افزایش داشت. یافته­های آزمایش نشان داد که همیاری قارچ میکوریزا و ازتوباکتر، دارای اثر افزایشی بر عملکرد گیاه لوبیا است و می­توان در جهت تولید پایدار این محصول در نظام­های زراعی بوم­سازگار درنظرگرفته شوند.

کلیدواژه‌ها


عنوان مقاله [English]

Interaction between fungi and plant growth-promoting Rhizobacteria and their role on red bean (Phaseolus vulgaris L.) cultivars

نویسندگان [English]

  • Hadi khavari
  • Ghodratolah Shakarami
Islamic Azad University, Khorramabad, Iran.
چکیده [English]

Introduction
Nowadays, in conventional farming systems, due to the limited amount of cultivated land and the need for most of communities to increase the production of agricultural products, unbalanced fertilizers, especially nitrogen and phosphorus, have been consumed. The study of nitrogen (N), phosphorus (P2O5) and potassium (K2O) fertilizers use in 2014 indicates that the average total consumption of these fertilizers worldwide is 85.5, 2.3 and 20.4 (kg. ha-1), an increase of 31.7, 28.1 and 12% respectively compared to 2000. On the other hand, increasing the health and security of food products produced in agricultural systems is essential for maintaining the dynamism of ecosystem resources based on ecological principles. Unbalanced consumption and excessive demand for chemical inputs (fertilizers and pesticides) have caused instability in farmland systems and the irreparable economic and environmental consequences of their consumption in agriculture all over the world. Sustainable agriculture relies on the reduction or elimination of chemical inputs for agricultural production, with the aim of achieving long-term sustainable production and adaptation to the environment. The main objective of sustainable agriculture is to increase the efficiency of the internal cycle of soil nutrients and the use of organic and organic fertilizers as an alternative to chemical fertilizers in order to improve the stability of grain yield and quality, while maintaining the proper utilization of soil and water resources in agricultural ecosystems. Researchers have shown that more attention to soil management and the beneficial potential of microorganisms from plant to soil can enhance biodiversity, health and, consequently, the dynamics of soil elements. So, in order to achieve a sustainable agricultural system, it is necessary to use inputs that improve plant ecological aspects in addition to meeting plant needs and reduce the negative effects of chemical inputs.
 
Materials & Methods
This experiment was conducted as factorial layout based on a randomized complete block design with four replications during growing season of 2016 at the experimental field of Beiranshahr city of Khorramabad in Lorestan Province, Iran (48° 31' E, 33° 40' N and 1653m above the sea level). Before conducting the experiment to determine the physical and chemical properties of soil samples were collected from 0-30 and 30-60 cm depth of soil. During this experiment effects of three factors were studied: 1. Inoculation with Arbuscular Mycorrhizal M (Glomus etunicatum, G. Intraradices, G. mossea) in tow levels (M1= inoculation, M2= no inoculation), 2. Inoculation with Azotobacter chroococcum (strain 15) A, in tow levels (A1= inoculation, A2= no inoculation) and 3. Different Cultivars of Red Bean (Phaseolus vulgaris L.) in three levels (V1: Beiranshahr landrace, V2: Akhtar and V3: Goli varieties). The seeds were inoculated with mentioned biological compounds before culturing. Traits such as: number of pods per plant, seeds per pod, number of seeds per plant, 100 seed weight, seed yield, biological yield and harvest index were measured.
 
Results & Discussion
The results showed that the effect of Azotobacter and Mycorrhiza, number of pods per plant, 100 seed weight, harvest index in the red bean cultivars were significantly increased, and as well as the effect of the Mycorrhiza and cultivars, the number of seeds per pod, 100 seed weight, biological yield and harvest index Bean cultivars were significantly increased. Azotobacter and Mycorrhizal inoculation, 12.4 and 24.5 percent, respectively Bean plant yield was increased compared to control treatment. The highest grain yield in Goli varieties were compared to the 45.2 and 51.1 percent, Akhtar varieties and Beiranshhr landrace, respectively.
 
Conclusions
Obtained results of this experiment showed that the yield and yield components of Red Bean cultivars were influenced by applied treatments.  It seems that the use of biological fertilizers (Mycorrhizal and Azotobacter) through better root and shoot growth, the balance between vegetative and reproductive development and improvement of bean pods per plant, seeds per pod, number of seeds per plant and 100 seed weight, could bean cultivars to significantly increase of economic performance. In this experiment, avoiding the use of chemical fertilizers, especially nitrogen and phosphorus was reduced traits significantly. That biological fertilizers cooperative could this decrease was caused by created nutritional, compensation. In general, the use of these microorganism’s favorable conditions for improving the yield and yield components of Bean plant provides. Generally, the application of these microorganisms provided the best conditions for improving the yield and yield components of bean plants, which, in view of the objectives of sustainable production of this plant, as well as to reduce the use of fertilizers in stable indigenous agricultural systems, could be used to be placed.

کلیدواژه‌ها [English]

  • Keywords: soil management
  • soil microorganisms beneficial
  • Cooperative
  • Sustainable production
1. Abbott, L.K., and Murphy, D.V. 2007. Soil Biological Fertility; A Key to Sustainable Land Use in Agriculture. Published by Springer.
2. Abo-Ghalia, H., and Khalafallah, A. 2008. Responses of wheat plants associated with arbuscular mycorrhizal fungi to short-term water stress followed by recovery at three growth stages. Journal of Applied Sciences Research 4(5): 570-580.
3. Aghababaei, F., Raiesi, F., and Hosseinpur, A. 2012. The Influence of earthworm and arbuscular mycorrhizal fungi on microbial biomass carbon and enzyme activity in a soil contaminated with cadmium in sunflower (Helianthus annuus L.) cultivation. Journal of Water and Soil 27(5): 949-962. (In Persian with English Summary).
4. Amirabadi, M., Rejali, F., Ardakani, M., and Borji, M. 2009. Effect of azotobacter and mycorrhizal fungi inoculants on the uptake of some nutrients in corn (SC 704 cultivar) at different levels of phosphorus. Iranian Journal of Soil Research (Soil & Water Science) 23(1): 107-115. (in Persian).
5. Amraei, B., Ardakani, M.R., Rafiei, M., Paknejad, F., and Rejali, F. 2015. Effect of Mycorrhiza and Azotobacter on concentration of macro elements and root colonization percentage in different cultivars of wheat (Triticum aestivum L.). Biological Forum-An International Journal 7(2): 895-900.
6. Ardakani, M., Rajali, F., and Heidari, Sh. 2012. Study the effect of arbuscular biological fertilizer on yield and yield components of rice cultivars. Journal of Plant Eco physiology 4(11): 1-13. (In Persian with English Summary).
7. Asad, S.A., Bano, A., Farooq, M., Aslam, M., and Afzal, A. 2004. Comparative study of the effects of bio fertilizers on nodulation and yield characteristics of mung bean (Phaseolus vulgaris L.). International Journal of Agriculture & Biology 6(5): 837-843.
8. Azarmi, F., Malakouti, M.J., and Khavazi, K. 2014. Effect of phosphate solubilizing microorganisms on increasing the efficiency and recovery percent of phosphate fertilizers in canola. Iranian Journal of Soil Research (formerly Soil & Water Science) 24(4): 499-507. (In Persian with English Summary).
9. Baris, O., Sahin, F., Turan, M., Orhan, F., and Gulluce, M. 2014. Use of plant-growth-promoting rhizobacteria (PGPR) seed inoculation as alternative fertilizer inputs in wheat and barley production. Communications in Soil Science & Plant Analysis 45: 2457-2467.
10. Behl, R.K., Narula, N., Vasudeva, M., Sato, A., Shinano, T., and Osaki, M. 2006. Harnessing wheat genotype x Azotobacter strain interactions for sustainable wheat production in semi-arid tropics. Tropics 15(1): 123-133.
11. Biari, A., Gholami, A., and Rahmani, H.A. 2011. Effect of different plant growth promotion bacteria (Azotobacter, Azospirillum) on growth parameters and yield of field maize. Journal of Water and Soil 25(1): 1-10. (In Persian with English Summary).
12. Ebrahimi, S., Iran Nejad, H., Shirani Rad, A.H., and Akbari, G.A. 2007. Effect of Azotobacter chroococcum application on quantity and quality forage of rapeseed cultivars. Pakistan Journal of Biological Science 10(18): 3126-3130.
13. Food and Agriculture Organization of the United Nations (FAO). 2015. Statistical Pocketbook World Food and Agriculture. Available at Web site http://www.fao.org/Statistics (verified 31 Aug 2016).
14. Food and Agriculture Organization of the United Nations (FAO). 2012. Faostat Agriculture Data. Available at Web site http://faostat3.fao.org (verified 10 June 2013).
15. Jiriaie, M., Fateh, E., and Aynehband, A. 2014. The consequences of the application of Mycorrhiza and Azospirillum inoculations on yield and yield components of wheat cultivars. Journal of Agroecology 6(3): 520-528. (In Persian with English Summary).
16. Kennedy, I.R., and Tchan, Y.T. 1992. Biological nitrogen fixation in non-leguminous field crops: Recent aAdvances. Plant and Soil 141: 93-118.
17. Kizilkaya, R. 2008. Yield response and nitrogen concentrations of spring wheat (Triticum aestivum) inoculated with Azotobacter chroococcum strains. Ecological Engineering 33(2):150-156·
18. Kokalis-Burelle, N., Vavrina, C.S., Rosskopf, E.N., and Shelby, R.A. 2002. Field evaluation of plant growth-promoting rhizobacteria amended transplant mixes and soil solarization for tomato and pepper production in Florida. Plant and Soil 238(2): 257-266.
19. Koocheki, A., Bakhshaie, S., Khorramdel, S., Mokhtari, V., and Taher Abadi, Sh. 2015. Effect of mycorrhiza symbiosis on yield, yield components and water use efficiency of sesame (Sesamum indicum L.) affected by different irrigation regimes in mashhad condition. Iranian Journal of Field Crops Research 13(3): 448-460. (In Persian with English Summary).
20. Leithy, S., El-Meseiry, T.A. and Abdallah, E.F. 2006. Effect of biofertilizer, cell stabilizer and irrigation regime on rosemary herbage oil yield and quality. Journal of Applied Sciences Research 2(10): 773-779.
21. Lekberg, Y., Gibbons, S.M., Rosendahl, S., and Ramsey, P.W. 2013. Severe plant invasions can increase mycorrhizal fungal abundance and diversity. International Society for Microbial Ecology (The ISME Journal) 7: 1424-1433.
22. Mahmoud, A.R., EL_Desuki, M., and Abdol_Mouty, M. 2010. Response of snap been plants to biofertilizer and nitrogen Level application. International Journal of Academic Research 2(3): 179-183.
23. Mazid, M., and Khan, T.A. 2014. Future of bio-fertilizers in Indian agriculture: an overview. International Journal of Agricultural and Food Research 3(3): 10-23.
24. Mcclean, P., Kamir, J., and Gepts, P. 2004. Genomic and Genetic Diversity in Common Bean. In: R.F. Wilson Stalker and H.T. Brummer EC (Eds.). Legume Crop Genomics. AOCS Press. Champaign, Illinois pp 60-82.
25. Mrkovacki, N., and Milic, V. 2001. Use of Azotobacter chroococcum as potentially useful in agricultural application. Annals of Microbiology 51: 145-158.
26. Nazeri, P., Kashani, A., Khavazi, K., Ardakani, M.R., Mirakhori, M., and Pour Siah Bidi, M. 2010. The effect of bio fertilizer and phosphorus fertilizer banding with Zinc on white bean (Phaseolus vulgaris L). Journal of Agroecology 2(1): 175-185. (In Persian with English Summary).
27. Ortas, I. 2003. Effect of selected mycorrhizal inoculation on phosphorus sustainability in sterile and non-sterile soils in the Harran Plain in South Anatolia. Journal Plant Nutrient 26: 1-17.
28. Parvizi, K., Dashti, F., Esna Ashari, M., Rejali, F., and Chiechi, M. 2014. Effect of two mycorrhizal fungi species (Glomus mosseae and G. etunicatum) on mineral nutrients uptake and mini tuber production in potato plantlets. Journal of Soil Biology 1(1): 61-69. (In Persian with English Summary).
29. Pezeshkpour, P., Ardakani, M., Paknejad, F., and Vazaan, S. 2014. Application effect of vermicompost, mycorrhizal symbiosis and biophosphate soulbilizing on physiological traits and yield of chickpea. Crop Physiology Journal 6(23): 53-65. (In Persian with English Summary).
30. Ramana, V., Ramakrishna, M., Purushotham, K., and Balakrishna Reddy, K. 2010. Effect of bio-fertilizers on growth, yield attributes and yield of French bean (Phaseolus vulgaris L.). Journal Legume Research an International Journal 33(3): 178-183. Available at Web site http://www.arccjournals.com / indianjournals.com/ (verified September 2010).
31. Rashidi, Z., Zare, M.J., Rejali, F., and Mehrabi, A.A. 2012. Effect of soil tillage and integrated chemical fertilizer and biofertilizer on quantity and quality yield of bread wheat and soil biological activity under dry land farming. Electronic Journal of Crop Production 4(2): 189-206. (In Persian with English Summary).
32. Rezaei-chiyaneh, E., Tajbakhsh, M., Ghiyasi, M., and Amirnia, R. 2015. Effect of integrated organic and chemical fertilizers on quantitative and qualitative yield of chickpea (Cicer arietinum L.) under dry farming conditions. Research in Field Crops 3(1): 55-69. (In Persian with English Summary).
33. Rezvani Moghaddam, P., Norouzian, A., and Seyyedi, S.M. 2015. Evaluation the effects of manure and mycorrhizal inoculation on grain and oil yield of spring safflower cultivars (Carthamus tinctorius L.). Journal of Agroecology 7(3): 331-343. (In Persian with English Summary).
34. Rokhzadi, A., Asgharzadeh, A., Darvish, F., Nour-Mohammadi, Gh., and Majidi, E. 2008. Influence of plant growth-promoting rhizobacteria on dry matter accumulation and yield of chickpea (Cicer arietinum L.) under field condition. American-Eurasian Journal of Agricultural & Environmental Sciences 3(2): 253-257.
35. Sabori, H., Rezai, A., Mirmohammady Maibody, S.A.M., and Esfahani, M. 2005. Path analysis for rice grain yield and related traits in tow planting patterns. JWSS-Journal of Water and Soil Science (Journal of Science and Technology of Agriculture and Natural Resources) 9(1): 113-129. (In Persian with English Summary).
36. Safapour, M., Ardakani, M.R., Khaghani, Sh., Rejali, F., Zargari, K., Changizi, M., and Teimuri, M. 2011. Response of yield and yield components of three red bean (Phaseolus vulgaris L.) genotypes to co-inoculation with Glomus intraradices and Rhizobium phaseoli. American-Eurasian Journal of Agricultural & Environmental Sciences 11 (3): 398-405.
37. Schussler, A., Schwarzott, D., and Walker, Ch. 2001. A new fungal phylum, the Glomeromycota: phylogeny and evolution. Mycological Research 105(12): 1413-1421.
38. Shahraki, M., Dahmardeh, M., Khamari, E., and Asgharzadeh, A. 2016. Effect of Azotobacter and Azospirillum and levels of manure on quantitative and qualitative traits of safflower (Carthamus tinctorius L.). Journal of Agroecology 8(1): 59-69.
39. Valadabadi, S.A., and Aliabadi Farahani, H. 2013. Mycorrhizal fungi influence on quantitative and morphological characteristics in basil induced by phosphorus fertilizer under water deficit conditions. African Journal of Agricultural Research 8(23): 3042-3046.
40. Yadegari, M., and Asadi Rahmani, H. 2010. Evaluation of bean (Phaseolus vulgaris) seeds’ inoculation with Rhizobium phaseoli and plant growth promoting Rhizobacteria (PGPR) on yield and yield components. African Journal of Agricultural Research 5(9): 792-799. Available at Web site http://www.academicjournals.org/AJAR/(verified 4 May 2010).
41. Yadegari, M., Rahmani, H.A., Noormohammadi, G. and Ayneband, A. 2008. Evaluation of bean (Phaseolus vulgaris) seeds inoculation with Rhizobium phaseoli and plant growth promoting rhizobacteria on yield and yield components. Pakistan Journal of Biological Sciences 11(15): 1935- 1939.
42. Yaghoubian, Y., Pirdashti, H., Mohammadi Goltapeh, E., Feiziasl, V., and Esfandiari, E. 2012. Investigation of dryland wheat (Triticum aestivum L. cv. Azar 2) plants response to symbiosis with arbuscular mycorrhiza and mycorrhiza like fungi under different levels of drought stress. Journal of Agroecology 4(1): 63-73. (In Persian with English Summary).
43. Zahir, Z.A., Arshad, M., and Frankenberger J.W.T., 2004. Plant growth promoting rhizobacteria: applications and perspectives in agriculture. Advances in Agronomy 81: 97-168.
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