Showing posts with label agricultural crops. Show all posts
Showing posts with label agricultural crops. Show all posts

July 29, 2019

Effects of inorganic nutrient P and N application on Azolla biomass growth and nutrient uptake | IJAAR

 By: WA Oyange, GN Chemining’wa, JI Kanya, PN Njiruh
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Rice farmers in Mwea Irrigation Scheme routinely apply P and N fertilizers which affect water nutrient levels. A study was conducted to establish the effects of nutrient N and P application on Azolla biomass accumulation. The study was conducted in a batch culture experiment, using 5g of fresh Azolla biomass samples from each of the six major paddy schemes namely: Mwea, Ahero, West Kano, Bunyala, TARDA, and Taveta.
Treatments consisted of 0 and 3mg P l-1 and 0 and 200mg N l-1, laid out in a randomized complete block design replicated three times.  Azolla samples were grown in batch culture plastic pots of 8.4 x 10-3m3 for 10 days using canal water, which was replenished every three days. Fresh Azolla biomass weight was recorded at 0, 5 and 10 days after inoculation. Data was subjected to analysis of variance using SAS statistical package version 9.1 and means separated using the least significant difference test (p≤0.05). The pH levels in irrigation water averaged 7.2 while N, P and K levels were 20.2, 11.6 and 15ppm respectively. Tissue N and K for Azolla accession averaged 4.2% and 1.6% respectively. Biomass accumulation and doubling time of Azolla were significantly affected by exogenous P and N nutrient application. Doubling time ranged from 5.5 days to 6.7. Application N and P significantly reduced Azolla biomass accumulation and increased biomass doubling time.
 

Introduction

Azolla is a pteridophyte which forms a symbiotic association with a cyanobacterium-Anabaena azollae (Bocchi et al., 2010) and fixes nitrogen at a rate higher than legumes (Wagner, 1997). A study on Azolla has reported that Azolla contains 4.5% N, 0.4% P and 1.5- 3% K (Watanabe, 1989). In Mwea Irrigation Scheme, the existing species was found to contain 3.9% N, 0.44% P, and 1.08% K (unpublished). Azolla is capable of providing 40kg N ha-1 to the rice crop due to its nitrogen content which is released upon decomposition (Kannaiyan et al., 1982) reported that. This can reduce the cost of rice crop inorganic fertilizer, which constitutes 20% of rice production cost in Mwea Irrigation Scheme (Rice MAPP, 2012). In Mwea Irrigation Scheme, Azolla coverage is estimated at 30-50% during peak times and this is majorly dependent upon water availability (unpublished). Nutrient status and other environmental factors are major factors affecting Azolla biomass growth (Wagner, 1997). 
Extensive and intensive inorganic fertilizer use forms the primary source of the water nutrient status and eutrophication in water bodies (FAO/ECE, 1991). Depending on the levels, this can cause atmospheric, aquatic and ground water system pollution (Choudhury et al., 2005). Farmers in Mwea irrigation scheme apply estimated P and N fertilizer amounts of 58kg of P2O5 and 56kg of N per hectare respectively, based on recommendations by Wanjogu et al. (1997). These fertilizers applied contribute to the water nutrient status being conducive for Azolla growth. The nitrogen fixing ability of Azolla makes it able to grow in nitrogen deficient waters (Watanabe, 1979; Hussner, 2010). However, its growth is limited by the nutrient element P (Kitoh et al., 1993). Kondo et al. (1989) reported a maximum growth rate for Azolla under application of 3.1ppm P with a threshold limit of 0.5-0.6% P. 
The level of phosphorus in water bodies is varied and can be high due to fertilizer use and runoff. This can lead to Azolla blooms in paddies or flood waters. Depending on the water nutrient status, Azolla multiplies fast; doubling its biomass in less than 10 days and readily colonizes new areas (Campbell, 2011). Hussner (2010) reported a doubling rate of 3-10 days, while Kitoh (1993) reported a doubling rate of 2-3 days under laboratory conditions. The nutrient P is important for Azolla growth and reproduction (Sadeghi, 2012). Its deficiency has been shown to hinder the acetylene reduction activity (Tung et al., 1989). However, excess levels of nutrient P has been reported to have a negative effect on Azolla growth (Pitt et al., 2014). 
According to Rains et al. (1979), a P level of 0.34ppm is the lower threshold limit below which there is deficiency. Subudhi et al., (1981) reported that external P level of 5ppm is the higher threshold limit beyond which Azolla tissue N content is affected negatively. The nutrient N is important for Azolla growth but because of its N fixing ability, it is capable of growing in N free media (Hussner, 2010). External N has been shown to inhibit the activity of acetylene reductase activity (Yatazawa et al., 1980). Kitoh, 1991 showed that external ammonia N negatively affects Azolla growth and N fixation activity. The objective of this study was to determine the effects of P and N on Azolla biomass growth and tissue N and P uptake, in Mwea Irrigation Scheme. Get the full articles and pdf at: Int. J. Agron. Agri. Res. 14(2), 1-9, February 2019.

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International Journal of Agronomy and Agricultural Research - IJAAR is an open-access scholarly research journal, published by International Network for Natural Sciences. IJAAR publishes original scientific research articles in the field of Agronomy and Agricultural Sciences. IJAAR published 2 Volume and 12 issue per the calendar year.


Citation Sample

WA Oyange, GN Chemining’wa, JI Kanya, PN Njiruh.
Effects of inorganic nutrient P and N application on Azolla biomass growth and nutrient uptake. Int. J. Agron. Agri. Res. 14(2), 1-9, February 2019.

Reference

Effects of inorganic nutrient P and N application on Azolla biomass growth and nutrient uptake

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Bocchi S, Malgioglio A. 2010. Azolla-anabaena as a bio-fertilizer for rice paddy fields in the Po valley, a temperate rice area in northern Italy. International Journal of Agronomy 2010, 152-158.

Campbell R. 2011. Azolla growth in farm dams, Agriculture Victoria. Online-http/agriculture.vic. gov.au/agriculture/farm). Date accessed 14/3/2016

Carrapiço F, Teixeira G, Diniz M. 2000. Azolla as a bio-fertiliser in Africa. A challenge for the future. Revista de Ciências Agrárias 23 (3-4), 120-138.

Choudhury ATMA, Kennedy IR. 2005. Nitrogen fertilizer losses from rice soils and control of environmental pollution problems. Communications in Soil Science and Plant Analysis, Volume 36, 2005 – Issue 11-12.

Costa ML, Santos MCR, Carrapico F. 1999. Biomass characterization of A. filiculoides grown in natural ecosystems and waste water. Hydrobiologia 415, 323-327.

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Hussner A. 2010. NOBANIS–Invasive alien species Fact Sheet–Azolla filiculoides, online http/ www.nobanis.org. Date of accessed: 5/4/2014

Jackson ML. 1958. Soil chemical analysis. Prentice-Hall. Englewood Cliffs, N. J. 498.

Kannaiyan S, Kumar K. 2006. Biodiversity of Azolla and its algal symbiont, Anabaena azollae. National biodiversity Authority, Scientific Bulletin Number 2, 1- 31.

Kitoh S, Shiomi N. 1991. Effect of mineral nutrients and combined nitrogen sources in the medium on growth and nitrogen fixation of the Azolla anabaena association. Soil Science and plant nutrition 37(3), 419-426.

Kitoh S, Shiomi N, Uheda E. 1993.  The growth and nitrogen fixation of Azolla filiculoides  Lam. in polluted water. Aquatic botany 46, 129-139.

Kondo M, Kobayashi M, Takahashi E. 1989. Effects of phosphorus on Azolla and its utilization in rice culture in Niger. Plant Soil 120, 165-170.

Pereira AL, Teixeira G, Sevinate-Pinto I, Antunes T, Carrapico F. 2001. Taxonomic re-evaluation of the Azolla genus in Portugal. Plant Biosystems 135, 285-294.

Sadeghi R, Zarkami R, Sabetraftar K, Van Dammel P. 2013.  A review of some ecological factors affecting the growth of Azolla species. Caspian Journal of Environmental Science 11(1), 65-76.

Sah RN, Goyal SS, Rains DW. 1989. Interactive effects of exogenous combined nitrogen and phosphorus on growth and nitrogen fixation by Azolla. Plant and Soils Vol 117, pp 1-8.

Scollenberger and Simon. 1945. Methods used for soil plant and water analysis at soil laboratory of Manitoba 1967-1970.

Singh AL, Singh PK. 1987. Influence of Azolla management on the growth, yield of rice and soil fertility. Plant and Soil 102, 41-47.

Subudhi BP. 1981. Differential phosphorus requirements of Azolla species and strains in phosphorus-limited continuous culture. Soil Science and Plant Nutrition, 27(2), 237-247.  The International Rice Research Institute, Los Baños, Laguna, Philippines

Wagnermg. 1997. Azolla, a review of its biology and utilization. The Botanical Review 63, 1-26.
Watanabe I, Berja SN. 1979. Growth of Azolla in paddy field as affected by phosphorus fertilizer. Soil Science and Plant Nutrition Volume 26, 1980 –Issue 2.

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July 21, 2019

Characterizing agronomic response of rice genotypes to bacterial leaf streak disease in Uganda | IJAAR

By: Kanaabi Michael, Tusiime, Geoffrey, Tukamuhabwa, Phinehas, Zziwa, Simon, JL Andaku, Lamo, Jimmy
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"" IJAAR welcome all of you to submit your research paper for publication in the field of Agriculture, Agronomy, Horticulture etc. Please submit your manuscripts via Online submission panel.""
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Bacterial leaf streak disease (Xanthomonas Oryzae pv. Oryzicola) is a devastating disease of rice that is endemic to Asia and parts of the West African coast. In 2014, researchers in Uganda confirmed the occurrence of bacterial leaf streak disease (BLS) in the country.
Having been only recently confirmed in the country, the agronomic response of rice genotypes to the disease has not been studied and therefore the extent of damage to rice due to bacterial leaf streak disease (BLS) has not yet been estimated. A study was conducted with the objective of characterizing the agronomic response of rice genotypes with varying levels of reaction to BLS. Spray inoculation was done 30 days after planting and data collected on BLS incidence and severity starting 15 days after inoculation, then every 10 days for the next 40 days. Data were also collected on yield and yield components at maturity. A strong positive correlation (r=0.99) was found to exist between BLS AUDPC and loss in 1000 grain weight. Regression of AUDPC against yield loss was found to be highly significant (P=0.002), with a high coefficient of determination (R2-0.98). The study revealed that BLS caused yield losses of 0.8-19.2% and losses in panicle fertility of 2.1-13.6%. Source of the articles: Int. J. Agron. Agri. Res. 14(1), 1-10, January 2019.
english language editing

International Journal of Agronomy and Agricultural Research - IJAAR is an open-access scholarly research journal, published by International Network for Natural Sciences. IJAAR publishes original scientific research articles in the field of Agronomy and Agricultural Sciences. IJAAR published 2 Volume and 12 issue per the calendar year.


December 7, 2016

Highlighting Bacillus subtilis GA1 antifungi potentialities for pineapple (Ananas comosus) conservation in Côte d’Ivoire - IJAAR

By: Yao Fulgence Koffi, Waze Aimée Mireille Alloue-Boraud, Louis Ban Koffi, Amon Fabrice Adohi, Marcellin Koffi Dje, Marc Ongena
  1. Laboratory of Microbiology and Biotechnology, National Center of Agronomic Research (CNRA), Côte d’Ivoire
  2. Department of Sciences and food Technology, University Nangui Abrogoua, Côte D’ivoire
  3. Walloon Center of Industrial Biology (CWBI) Unit of Bio-Industries University of Liège Gembloux Agrobio-tech, Belgium, Passage des Déportés.
Pests, microorganisms and parasites are responsible for significant losses crops and especially fruits and vegetables, which threaten food human. Côte d’ivoire, the first provider of pineapple (Ananas comosus) fresh on European market is facing in recent years to a drastic drop in production to several factors including the action of microorganisms during storage.
The struggle Chemical although effective drawbacks. This study aims using the Bacillus subtilis strain GA1 in biological control against germs responsible for alteration pineapple fruit in côte d’ivoire. A sample of twenty-five pineapple which has been used five healthy pineapple and five altered were used for the isolation of microorganisms and fifteen healthy pineapples were used for other tests. The main agents Fungal spoilage isolated pineapple fruit in this work were Aspergillus sp., Rhizopus sp., Fusarium sp., And Candida sp. The pathogenicity tests also confirmed that the isolated fungal strains are responsible for the pineapple fruit rotting.
The tests antagonists conducted in the presence of B. subtilis GA1 against fungi isolated showed inhibition rate of 81.2% for Aspergillus sp (s), 69% for Aspergillus sp (a), 64% for Rhizopus sp., and 57.14% for Fusarium sp. protection tests on fruits from biomass of B. subtilis GA1 helped preserve fruits over a period of fourteen (14) days with no mushrooms in the heart of the fruit. Source of the original articles at: Highlighting Bacillus subtilis GA1 antifungi potentialities for pineapple (Ananas comosus) conservation in Côte d’Ivoire

Journal Name: International Journal of Agronomy and Agricultural Research (IJAAR)
Publisher Name: International Network For Natural Sciences (INNSPUB)

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Source: International Journal of Agronomy and Agricultural Research @2015  Journal of agronomy



October 21, 2015

Morpho-physicochemical characterization of Kartiksail rice(Oryza sativa L.) land races of Bangladesh - IJAAR

Mir Sharf Uddin Ahmed1*, Shahnaz Parveen1, Mohammed Khalequzzaman1, A.K.M
Shamsuddin2

  1. Bangladesh Rice Research Institute, Gazipur-1701, Bangladesh
  2. Dept. of Genetics and Plant Breeding, BAU, Mymensingh-2202, Bangladesh

Twenty one land races of Kartiksail rice of Bangladesh were studied at Bangladesh Rice Research Institute during T.Aman2011.The analysis of variance of 37 morpho-physicochemical characters showed highly significant differences among the land races. The mean performances showed that wide range of variations among the genotypes was existed and there was no duplicate genotype.


The seedling height varied from 53.24 (KS15) to 82.93 cm (KS1), culm height from 80.80 (KS15) to 117.0 cm (KS6), straw yield per hill from 12.34 (KS3) to 34.39 g (KS14), panicle length from 19.81 (KS13) to 27.04 cm (KS5), secondary branch number from 15.67 (KS13) to 49.0 (KS5), grain length from 44 (KS16) to 10.6 mm (KS19), 1000-grain weight from 16.52 g (KS16) to 30.06 g (KS13), protein content from 6.6% (KS10) to 10% (KS20), grain yield per panicle 1.58 (KS15) to 3.82 g (KS1) and grain yield per hill from 16.83 (KS17) to 29.84 g (KS19), respectively. Besides, high GCV and h2 b together with high GAPM were observed in secondary branch number, LB ratio, seedling height, 1000-grain weight, protein content etc. suggested that selection may be effective for these characters in segregating generations.The correlation between different characters indicated that the higher the PBN, APBL, SBN and SBFGW possessed greater PL and PGY and these characters emerged as most important associates of grain yield in rice. Finally, the identified traditional rice germplasmof the present study can offer a valuable gene reservoir which needs to be characterized as well as mapping the QTL using molecular tools for validating useful genes.
http://www.innspub.net/volume-7-number-3-september-2015-ijaar/


Journal Name: International Journal of Agronomy and Agricultural Research (IJAAR)

Publication Name: International Network For Natural Sciences (INNSPUB)

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September 2, 2015

Molecular characterization of rice (Oryza sativa L.) genotypes using target region amplification polymorphism (TRAP) markers in relation to grain iron content

  • Pavan J. Kundur1,2,3*, Prakash G. Patil1,4, B.G. Harish2, 3, C.K. Ramesh5, H.E. Shahidhar1
  1. Department of Plant Biotechnology, University of Agricultural Sciences, Bengaluru -560065, India
  2. M. S Ramaiah Institute of Technology, Bengaluru- 560054, India
  3. Visveshwarya Technological University, Belagavi- 590018, India
  4. Indian Institute of Pulses Research, Kanpur-208024, India
  5. Sahyadri Science College, Shivamogga – 577203, India
In the present investigation, based on the seven rice putative candidate iron transporter genes, novel TRAP markers were developed.These markers were successfully employed in the molecular diversity study among 30 rice genotypes representing improved rice cultivars and land races with varied grain iron content (7.38 - 30.58 ppm).
Totally, thirty TRAP primer combinations were screened, which generated 703 bands out of which 654 were polymorphic (93%) with an average of 21.8 bands per primer combination. The average polymorphic information content (PIC) values ranged from 0.09(Osysl4b+ME05) to 0.25 (Osnramp5c+ME05, Osnramp1b+ME02 and Osysl4a +ME02). Gene diversity (H ˆ) ranged from 0.10 (Osysl4b+ME05) to 0.31 (Osnramp1b + ME02 and Osysl4a +ME02). The Jaccard dissimilarity ranged from 0.15 to 0.52, explaining 37% of genetic variation (Table 4).
Grouping of genotypes based on UPGMA and principal coordinate analysis (PCoA) were found comparable and grouping of genotypes into a different cluster was found mainly on the basis of pedigree relationships. TRAP markers revealed well resolved relationships among rice genotypes. The information generated from this study will helps to select parental combinations for breeding high iron content rice varieties.

Journal Name: International Journal of Agronomy and Agricultural Research (IJAAR)

Publication Name: International Network For Natural Sciences (INNSPUB)

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May 20, 2015

Evaluation of biofertilizer effect on selective soybean herbicides efficiency to control of Xanthium spinosom and Datura stramonium























This experiment was conducted during 2009 growing season as split plot with randomized complete block (RCBD) design arrangement in a field of Faculty of Agriculture, Islamic Azad University, Karaj branch, Iran. Treating or not treating with biofeltilizer (Bradyrhizobium japonicum) was the main treatments. The sub-treatments were application of herbicides consisted of trifluralin, ethalfluralin, metribuzine, oxyflorfen, bentazon, aciflourfen+bentazon respectively at 1.2, 1.16, 0.35, 0.48, 1.2, 1.06 kg ha- and weedy check. In this research, application of biofertilizer on efficiency of some herbicides was
effective in decreasing weeds dry weight.
The biomass of cocklebur (Xanthium spinosom) in treatments trifluralin, ethalfluralin, aciflurfen+bentazon or bentazon, was significantly less than weedy check, but oxyflorfen and metribuzin had no significant effect on the biomass of this weed. However, the herbicides, compared with weedy check, had no significant effect on the density of cocklebur. All herbicides, compared with weedy check, significantly reduced the density and biomass of jimsonweed (Datura stramonium).
Regard less of statistic analysis, the mean biomass of jimsonweed in the treatment of aciflourfen+bentazon was less than the other treatments. Application of aciflourfen+bentazon, bentazon compared with weedy check resulted in significant grain weight of soybean. Compared with weedy check, all treatment except oxyflorfen, increased soybean 1000-grain weight. Although the soybean 1000-grain weight in the treatment saciflourfen +bentazon, bentazon and ethalfluralin was higher than other treatment, but these treatments were not significantly different from metribuzin and ethalfluralin.
Authors: Yazdan Vaziritabar1*, Yavar Vaziritabar1, Farzad Paknejad2, Farid Golzardi3, Sina
Falah Tafty4
Full Article Available at:  Volume 4, Number 12, June 2014 – IJB

March 4, 2015

Volume 6, Number 2, February 2015 – International Journal of Agronomy and Agricultural Research (IJAAR)

Adventitious organogenesis induced in sweet orange (Citrus sinensis L.) var. “half-blood” maltese: morphogenetic and histological study
Kaouther Benmahmoud, Emna Jedidi, Asma Najar, Rachida Ghezel, Claire Kevers, Ahmed Jemmali, Nadhra Elloumi
Int. J. Agr. Agri. Res. 6(2), 1-7. (Full Text)

Morphological and genetic variation in Aegilops geniculata Roth. from Tunisia
Khaled Mguis,  Asma Mahjoub, Mejda Abassi, Ali Albouchi, Zeineb Ouerghi, Ben Brahim Nadia,  Zoubeir Béjaoui
Int. J. Agr. Agri. Res. 6(2), 8-21. (Full Text)

Chemodynamics of cypermethrin in eggplant agroecosystem in Bangladesh
Shahinoor Rahman, Md. Mahbubar Rahman, Md. Zinnatul Alam
Int. J. Agr. Agri. Res. 6(2), 22-28. (Full Text)

Comparative examination of the effect of manure and chemical fertilizers on yield and yield components of rosemary (Rosemarinus officinalis L.)
Seyede Roghaye Hosseini Valiki, Sobhanallah Ghanbari
Int. J. Agr. Agri. Res. 6(2), 29-37. (Full Text)

Impact of climate change on cattle production and adaptation in the municipality of Banikoara in Benin
Katé S,  Houndonougbo P. V,  Tougan U. P, Tchobo A,  Gounou N,  Ogodja O. J, Tinte B, Ogouwale E, Diarra S, Sinsin B. A
Int. J. Agr. Agri. Res. 6(2), 38-46. (Full Text)

Pathogenicity of root-knot nematode (Meloidogyne incognita) on sweet potato (Ipomoea batatas L.) Lam)
O.S. Osunlola, B. Fawole
Int. J. Agr. Agri. Res. 6(2), 47-53. (Full Text)

The effects of soil organic matter content and soil texture on the population number of Pratylenchus loosi, in tea plantation of Iran
A. Hosseinikhah Choshali,  A. Seraji, S. Rezaee, A. Shirinfekr, S.N. Mirghasemi
Int. J. Agr. Agri. Res. 6(2), 54-61. (Full Text)

Pollination and yield attributes of (Cowpea) Vigna unguiculata L. Walp. (Fabaceae)as influenced by the foraging activity of Xylocopa olivacea Fabricius (Hymenoptera: Apidae) and inoculation with Rhizobium in Ngaoundere (Cameroon)
Kengni Beaudelaine Stephanie, Ngakou Albert, Tchuenguem Fohouo Fernand-Nestor
Int. J. Agr. Agri. Res. 6(2), 62-76. (Full Text)

Yield Potential Study of various locally developed strains/cultivars of Vigna radiata L. under agro ecological conditions of Bahawalpur, Pakistan
Ammarah Maqbool, Liaquat Ali, Amber Raza, Saman Maqbool, Sana Rasheed, Nazish Irum, Parveen Kousar
Int. J. Agr. Agri. Res. 6(2), 77-81. (Full Text)

Effect of weather conditions on growth, yield and quality of Menthol mint (Mentha arvensis L.) cultivars transplanted in different years on different dates under sub-tropical climate of north India
Nilofer, Anil Kumar Singh, Saudan Singh, S.P Gangwar, Man Singh, Rupal Singh, Anju Yadav
Int. J. Agr. Agri. Res. 6(2), 82-88. (Full Text)