بررسی امکان جایگزینی کود زیستی بارور-۲ با کود شیمیایی فسفاته در زراعت عدس(Lens culinaris)
الموضوعات : مجله علمی- پژوهشی اکوفیزیولوژی گیاهیفرهاد فرح وش 1 , فرناز تقی زاده 2
1 - عضو هیات علمی گروه زراعت دانشگاه آزاد اسلامی واحد تبریز
2 - 1- دانش آموخته کارشناسی ارشد زراعت، دانشگاه آزاد اسلامی واحد تبریز، تبریز، ایران
الکلمات المفتاحية: "فسفر", "حبوبات", "عملکرد", "کود بیولوژیکی",
ملخص المقالة :
به منظور بررسی تاثیر کاربرد کود زیستی) بارور-۲( و امکان جایگزینی آن با کود شیمیایی فسفاته در زراعت عدس، آزمایشی به صورت فاکتوریل در قالب طرح بلوکهای کامل تصادفی در سه تکرار در ایستگاه کشاورزی دانشگاه آزاد اسلامی تبریز در سال ۱۳۹۳ انجام شد. تیمارهای آزمایش شامل کود زیستی (کاربرد بارور-۲و عدم آن) در سطوح مختلف کود شیمیایی فسفره (صفر، ۵۰ و ۱۰۰ درصد کود فسفره توصیه شده بر اساس آزمون خاک معادل ۷۵ کیلوگرم در هکتار) بود. نتایج نشان داد کاربرد هر دو سطح کود شیمیایی فسفره ۵۰ و ۱۰۰درصد کود فسفره افزایش معنادار و مشابهی را در عملکرد دانه موجب شد و این صفت را در مقایسه با عدم مصرف کود فسفره به ترتیب به میزان ۳۴ و ۱/۳۳ درصد افزایش داد. سطح ۵۰ درصد کود فسفره از طریق افزایش تعداد دانه در بوته و وزن صد دانه موجب افزایش عملکرد دانه عدس گردید کاربرد کود زیستی افزایش معناداری را در عملکرد دانه عدس موجب شد. کاربرد کود زیستی فسفره بارور-۲ عملکرد دانه عدس را در مقایسه با عدم مصرف کود زیستی به میزان ۲/۱۸ درصد افزایش داد. افزایش در عملکرد دانه تحت تاثیر کاربرد کود زیستی تنها ناشی از افزایش دانه در بوته بوده و وزن صد دانه عدس تحت تاثیر کاربرد کود زیستی قرار نگرفت. با توجه به نتایج این بررسی، میتوان گفت کاربرد ۵۰ درصد کود فسفرهی پیشنهادی همراه با کاربرد کود فسفرهی بارور-۲ جهت افزایش مطلوب عملکرد دانهی عدس در منطقه پیشنهاد میشود.
احمدیفرد، م.، خ. عزیزی، ا. اسماعیلی، س. حیدری، ع. داراییمفرد. 1390 .مطالعه تأثیر روشهای مختلف کوددهی بر عملکرد و اجزای
عملکرد عدس در شرایط اقلیمیخرمآباد. مجله دانش زراعت.6 :13-1 .
Abdoli, M., M. Saeidi, S. Jalali-Honarmand, S. Mansourifar, M. Ghobadi, and K. Cheghamirza. 2013. Effect
of source and sink limitation on yield and some agronomic characteristics in modern bread wheat
cultivars under post anthesis water deficiency. Acta agric. Slovenica. 101: 173 - 182.
Adesemoye, A. O. and J. W. Kloepper. 2009. Plant-microbes interactions in enhanced fertilizer-use
efficiency. Appl Microbiol Biotechnol. 85: 1-12.
Ali, B., A. N. Sabri, and S. Hasnain. 2010. Rhizobacterial potential to alter auxin content and growth of
Vigna radiata (L.). World J Microbiol Biotechnol. 26: 1379-1384.
Arpana N., S.D. Kumar, and T.N. Prasad. 2002. Effect of seed inoculation on uptake of major nutrients and
soil fertility status after harvest of late sown lentil. Journal of Applied Biology. 12: 23-26.
Aticho, A., M. Tamirat, A. Bantirgu, S. Tulu, A. Regassa and B. Dume. 2014. Influences of mineral nitrogen
and phosphorous fertilization on yield and yield contributing components in hot pepper (Capsicum
annuum L.). African J. Agric. Res. 9(7): 670-675.
Bagheri, A., K. Azizi, S. Heidari, M. Saeed Hasanvandi. 2013. Regression modeling of growth indices of
Lentil affected by Bio-fertilizers with Superabsorbent polymer. Int. J. Farming and Allied Sci. 2:712-719.
Bakhsh, A., R. Khan, A. Gurmani, M. Sohail Khan, B. M. Shahid Nawaz, B. Fazal Haq, P. A. Farid. 2008.
Residual/direct effect of phosphorus application on wheat and rice yield under rice-wheat system. Gomal
University J. Res. 24: 29-35.
Basavaraja, M. Srikantaiah, S. Umesha, K.S. Prasanna and R.N. Lakshmip athi. 2014. Growth and dry matter
production of soybean as influenced by beneficial microorganisms under field conditions. Current Agric.
Res. J. 2(1): 63-67.
Bera, A. K., K. Pramanik and D. Panda. 2013. Response of biofertilizers and homo-brassinolide on growth,
relative water content and yield of lentil (Lens culinaris Medik). J. Crop and Weed. 9(2): 84-90.
Beyranvand, H., A. Farnia, S. Nakhjavan and M. Shaban. 2013. Response of yield and yield components of
maize (Zea mays L.) to different bio fertilizers. Int. J Adv. Bio. and Biomedical Res. 1: 1068-1077.
Boiero, L., D. Perrig, O. Masciarelli, C. Penna, F. Cassán, and V. Luna. 2007. Phytohormone production by
three strains of Bradyrhizobium japonicum and possible physiological and technological implications.
Appl Microbiol Biotechnol .74:874–880.
Bolle, S. D., M. T. Gebremikael, V. Maervoet, S. De Neve. 2013. Performance of phosphate-solubilizing
bacteria in soil under high phosphorus conditions. Biol Fertil Soils. 49: 705–714.
Chang, C. and S. Yang. 2009. Thermo-tolerant phosphate-solubilizing microbes for multi-functional
biofertilizer preparation. Bioresource Technology. 100: 1648–1658.
Ciereszko, I., A. Gniazdowska, M. Mikulska, and A.M. Rychter. 1996. Assimilate translocation in bean
plants (Phaseolus vulgaris L.) during phosphate deficiency. J. Plant Physiol. 149:343-348.
Dashadi, M., A. Hossein and R. Radjabi and t. babainejad. 2013. Investigation of effect different rates
phosphorus and zinc fertilizers on two cultivars Lentil Gachsaran and Flip92-12L) in irrigation
complement condition. Int. J. Agric. Crop Sci. 5:1-5.
El-Hadad, M. E., M. I. Mustafa, S. M. Selim, A. E. A. Mahgoob, and T. S. El-Tayeb. 2010. In vitro
evaluation of some bacterial isolates as biofertilizers and biocontrol agents against the second stage
juveniles of Meloidogyne incognita. World J. Microbiol Biotechnol. 26: 2249-2256.
Emami, H., M. Saeidnia, A. Hatamzadeh, D. Bakhshi, and E. Ghorbani. 2011. The effect of gibberellic acid
and benzyladenine in growth and flowering of lily (Lilium longiflorum). Advances in Environmental
Biology. 5(7): 1606-1611.
Fatima, K., N. Hussain, F.A. Pir and M. Mehdi. 2013. Effect of nitrogen and phosphorus on growth and yield
of Lentil (Lens culnaris). Kaneez Fatima et al. Elixir Appl. Botany. 57: 14323-14325.
Fioreze, S. L., G. Castoldi, L. Augusto Pivetta, L. Gustavo Pivetta, D. Maxinimo Fernandes and L. Theodoro
Büll. 2012. Tillering of two wheat genotypes as affected by phosphorus levels. Maringá. 34: 331-338.
Jha, A., D. Sharma, and J. Saxena. 2011. Effect of single and dual phosphate solubilizing bacterial strain
inoculations on overall growth of mung bean (Vigna radiate L.) plants. Archives of Agronomy and Soil
Science. 58: 967-981.
Hammond, J. P. and P. J. White. 2008. Sucrose transport in the phloem: integrating root responses to
phosphorus starvation. J. Exp. Botany. 59: 93–109.
Hussain, M., S. Hussain Shah and M. Shafi Nazir. 2002. Differential genotypic response to phosphorus
application in lentil (Lens culinaris Medic). Int. J. Agric. Biology. 04:61–63.
Idris, H. A., N. Labuschagne, and L.Korsten. 2010. Suppression of Pythium ultimum root rot of sorghum by
rhizobacterial isolates from Ethiopia and South Africa. Biological Control. 45: 72-84.
Imanparast, F., A. Tobeh, A. Gholipouri. 2013. Potassium Humate effect on the drought stress in wheat. Int.
J. Agronomy and Plant Production. 4 (1): 98-103.
Jagam P.K. and Satish Sharma. 2015. Effect of bio-fertilizer and fertilizers on productivity of soybean.
Annals of Plant and Soil Res. 17 (2): 171-174.
Javid, M. G., A. Sorooshzadeh, F. Moradi, S. A. Mohammad Modarres Sanavy, I. Allahdadi. 2011. The role
of phytohormones in alleviating salt stress in crop plants. AJCS. 5(6):726-734.
Karandashov, V. and M. Bucher. 2005. Symbiotic phosphate transport in arbuscular mycorrhizas. TRENDS
in Plant Sci. 10 (1):22-29.
Khan, M.S., E. Ahmad, A. Zaidi, and M. Oves. 2013. Functional Aspect of Phosphate-Solubilizing Bacteria:
Importance in Crop Production. Bacteria in Agrobiology: Crop Productivity. 237-263
Kokubun, M. 2011. Physiological mechanisms regulating flower abortion in soybean, soybean -
biochemistry, chemistry and physiology, Prof. Tzi-Bun Ng (Ed.), ISBN: 978-953-307-219-7.
Koutinas, N., G. Pepelyankov, V. Lichev. 2010. Flower induction and flower bud development in apple and
sweet cherry. Biotechnol. 24: 1551-1558.
Leite, V. M., C. A. Rosolem, J. Domingos Rodrigues. 2003. Gibberellin and cytokinin effects on soybean
growth. Scientia Agricola. 60: 537-541.
Madani, H., M. Melbobi, and M. Omidi. 2003. Effect of phosphorous releasing bacteria in bean. Report of
Investigation Project. Islamic Azad University of Arak. (In Persian).
Madani, H., Gh. Naderi Booroojerdi, H. Aghajani, and A. Pazaki. 2010 .Comparison of the effects of
chemical phosphorus fertilizers and phosphate solubilizing bacteria on grain and biological yield and
relative P content on winter oilseed rape.Journal of Agronomy and Plant Breeding.6(4):93-104. (In
Persian).
Magsood, M., M. Zamir, R. Ali, A. Wajid and N. Yousaf. 2000. Effect of different phosphorous levels on
growth and yield performance of lentil. Pakistan J. Biol. Science. 3: 523-524.
Mohammadi, E., H. Reza Asghari, A. Gholami, H. Abbasdokht and M. Rahimi. 2013. Effects of mycorrhiza
inoculation and phosphorus fertilizer on yield and some growth indices of chickpea (Cicer arietinum L.)
Hashem cultivar. Technical J. Engineering and Applied Sci. 3:190-197.
Mousavi, S. R., M. Galavi and M. Rezaei. 2012. The interaction of zinc with other elements in plants: a
review. Int. J. Agric. and Crop Sci. 24:1881-1884.
Nahar, K. and R. Gretzmacher. 2011. Response of shoot and root development of seven tomato cultivars in
hydrophonic system under water stress. Academic J. Plant 4 (2): 57-63.
Roitner-Schobesberger, B. and H.-P. Kaul. 2013. Source capacity during flowering affects grain yield of
amaranth (Amaranthus sp.). Plant Soil Environ. 10: 472–477.
Rotaru, V. 2010. The effects of phosphorus application on soybean plants under suboptimal moisture
conditions. Lucrări Ştiinţifice. 53: 56-67.
Sarker, B. C., P. Rashid and J. Karmoker. 2015. Anatomical changes of lentil (Lens culinaris Medik.) under
phosphorus deficiency stress. Bangladesh J. Bot. 44(1): 73-78.
Sharma A.K. 2003. Biofertilizer for sustainable agriculture. Agrobios (India). 218 pp.
Shiri-Janagard, M., Y. Raei, K. Gasemi-Golezani and N. Aliasgarzad. 2012. Influence of Bradyrhizobium
japonicum and phosphate solubilizing bacteria on soybean yield at different levels of nitrogen and
phosphorus. Int. J. Agron. and Plant Production. 3 (11): 544-549.
Singh, A. V. and B. Prasad. 2014. Enhancement of plant growth, nodulation and seed yield through plant
growth promoting rhizobacteria in Lentil (Lens culinaris Medik cv. VL125).
Int.J.Curr.Microbiol.App.Sci. 3(6) 614-622.
Singh, K. B. and M.C. Saxena. 1993. Breeding for stress tolerance in cool-season food legumes. The Hague,
the Netherlands:Martinus Nijhoff/Junk.
Sinha, R.K., D. Valani, K. Chauhan, S. Agarwal. 2014. Embarking on a second green revolution for
sustainable agriculture by vermiculture biotechnology using earthworms: reviving the dreams of Sir
Charles Darwin. Int. J. Agric. Health Saf. 1:50–64.
Srivastava, A.K., T. Singh, T.K. Jana, and D.K. Arora. 2011. Induced resistance and control of charcoal rot
in Cicer arietinum (chickpea) by Pseudomonas fluorescence. Canadian Journal of Botany. 7: 787-795.
Taleshi, K., N. Esoli, and M. Nasiri. 2004. Evaluation of biofertilizer triple superphosphate fertilizer on
reducing consumption and increasing the performance of two rice varieties. Iranian Congress on Crop
Production and Plant Breeding. Tehran University. (In Persian).
Wahyudi, A., I. Astuti, and R. Giyanto. 2011. Screening of Pseudomonas sp. Isolated from rhizosphere of
soybean plant as plant growth promoter and bio-control agent. American Journal of Agricultural and
Biological Sciences. 6: 134-141.
Zaied, K.A., El-Diasty, Z.M., Shams El-Din, H.A. and Shawaff, A. A. H. 2010. Induction of Salt Tolerant
Mutants in Rhizobia Infected Pisum sativum L. Research J. Agric. Biological Sci. 6(6): 861-877.