Effect of Three Different Nitrogen Rates and Three Rhizosphere N2- Fixing Bacteria on Growth, Yield and Quality of Peanuts

Authors

  • Nguyen Van Chuong Agricultural Faculty of An Giang University-Vietnam National University, Ho Chi Minh City, Vietnam

DOI:

https://doi.org/10.48048/tis.2024.7281

Keywords:

E. asburiae, K. quasipneumoniae, E. cloacae, N fertilizer, Peanut, Soil property, Yield

Abstract

Raising prices of organic fertilizers, environmental relation of their usage and need for global foodstuff, placed a topic of universal interest in cultivation of legume plants for human nutrients and soil fertility supplementation. Three rates of N fertilizer were studied in the field: 0, 20 and 40 kg N/ha.  Three bacterial strains were identified and inoculated in the experiment: Enterobacter asburiae (E. asburiae), Klebsiella quasipneumoniae (K. quasipneumoniae) and Enterobacter cloacae (E. cloacae). The soil samples were taken before and after experiment for chemical attributes analysis. The effect of N2 fertilizer and 3 bacterial strains was on soil chemical properties, yield components and yield of peanut plant. The results of present study showed that application of different N2 fertilizer rates was a little influence on the N2-fixing ability of rhizosphere bacteria, but high effect was significant at the peanut nodule number. In the 3 N fertilizer rates and 3 bacteria, which only had N2 fertilizer rate of 40 kg N/ha and E. asburiae significantly raised the maximum yield component and yield of peanut, while there was the lowest yield component and yield of peanut was observed in N fertilizer rate application of 0 kg N/ha and E. cloacae inoculation. The differences in rhizosphere bacterium strains between different N fertilizer rates was better than that caused by the nitrogen fertilizer amount. This could be due to the substantial improvement in soil chemical attributes at different soils, especially in, pH, OM and total N, as these significantly impacted the soil structure.

HIGHLIGHTS

  • Increasing pH, organic matter and total nitrogen of soil were statistically significantly different by 3 N2 fertilizer rates.
  • There is a positive interaction between nitrogen rates and RNFB increasing yield of peanut.
  • Number and weight of peanut nodules obtained the maximum value without applying N2 application compare to other treatments.
  • The maximum yield components of peanut were inoculated with asburiae to compare with K. quasipneumoniae and E. cloacae and applied weight of 40 kg N/ha.
  • The maximum yield of peanut was inoculated with asburiae to compare with K. quasipneumoniae and E. cloacae.

GRAPHICAL ABSTRACT

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References

VB Taru, IZ Kyagya, SI Mshelia and EF Adebayo. Economic efficiency of resource use in groundnut production in Adamawa state of Nigeria. World J. Agr. Sci. 2008; 4, 896-900.

P Eeramani and K Subrahmaniyan. Nutrient management for sustainable groundnut productivity in India - A review. Int. J. Eng. Sci. Tech. 2011; 3, 8138-53

SJ Leghari, NA Wahocho, GM Laghari, A HafeezLaghari, G MustafaBhabhan, K HussainTalpur, TA Bhutto, SA Wahocho and AA Lashari. Role of nitrogen for plant growth and development: A review. Adv. Environ. Biol. 2016; 10, 209-18.

FB Holl and JR Vose. Carbohydrate and protein accumulation in the developing field pea seed. Can. J. Plant Sci. 1990; 60, 1109-14.

J Huang, RK Afshar, A Tao and C Chen. Efficacy of starter n fertilizer and rhizobia inoculant in dry pea (Pisum sativum Linn.) production in a semi-arid temperate environment. Soil Sci. Plant Nutr. 2017; 63, 248-53

RH Mckenzie, AB Middleton, ED Solberg, J DeMulder, N Flore, GW Clayton and E Bremer. Response of pea to rhizobia inoculation and starter nitrogen in Alberta. Can. J. Plant Sci. 2001; 81, 637-43.

PVV Prasad, VG Kakani and HD Upadhyaya. Growth and production of groundnut. Origin Hist. Groundnut 2011; 26, 1-10.

RC Dogra and SS Dudeja. Fertilizer N and nitrogen fixation in legume - Rhizobium symbiosis. Ann. Biol. 1993; 9, 149-64.

MK Souri. Aminochelate fertilizers: The new approach to the old problem; a review. Open Agr. 2016; 1, 118-23.

M Aslani and MK Souri. Growth and quality of green bean (Phaseolus vulgaris L.) under foliar application of organic chelate fertilizers. Open Agr. 2018; 3, 146-54.

JK Vessey. Plant growth promoting rhizobacteria as biofertilizers. Plant Soil 2003; 255, 571-86.

B Lugtenberg and F Kamilova. Plant-growth-promoting rhizobacteria. Ann. Rev. Microbiol. 2009; 63, 541-56.

H Karlidag, E Yildirim, M Turan, M Pehluvan and F Donmez. Plant growth-promoting rhizobacteria mitigate deleterious effects of salt stress on strawberry plants (Fragaria×ananassa). Hortscience 2009; 48, 563-73.

SSKP Vurukonda, S Vardharajula, M Shrivastava and A SkZ. Enhancement of drought stress

tolerance in crops by plant growth promoting rhizobacteria. Microbiol. Res. 2016; 184, 13-24.

H Meena, MA Ahmed and P Prakash. Amelioration of heat stress in wheat, Triticum aestivum

by PGPR (Pseudomonas aeruginosa strain 2CpS1). Biosci. Biotechnol. Res. Comm. 2015; 8, 171-84.

F Islam, T Yasmeen, Q Ali, S Ali, MS Arif, S Hussain and H Rizvi. Influence of Pseudomonas aeruginosa as PGPR on oxidative stress tolerance in wheat under Zn stress. Ecotoxicol. Environ. Saf. 2014; 104, 285-93.

L Bohme and F Böhme. Soil microbiological and biochemical properties affected by plant

growth and different long-term fertilisation. Eur. J. Soil Biol. 2006; 42, 1-12.

OO Babalola. Beneficial bacteria of agricultural importance. Biotechnol. Lett. 2010; 32, 1559-70.

S Lee, JO Ka and HG Song. Growth promotion of Xanthium italicum by application of rhizobacterial isolates of Bacillus aryabhattai in microcosm soil. J. Microbiol. 2012; 50, 45-9.

S Lee, D Gupta, S Apte, S Krishnamurthi and P Saha. Degradation of organophosphate insecticide by a novel Bacillus aryabhattai strain SanPS1, isolated from soil of agricultural field in Burdwan, West Bengal, India. Int. Biodeterioration Biodegradation 2015; 103, 191-5.

Y Yan, L Zhang, MY Yu, J Wang, H Tang, ZW Yang and P Wan. The genome of Bacillus aryabhattai

T61 reveals its adaptation to Tibetan Plateau environment. Gene. Genom. 2016; 38, 293-301.

RAM Arafa, TA El-Rahmany, BFA El-Ghany and MM El-Shazly. Role of some effective microorganisms in improving soil properties and productivity of peanut under North Sinai conditions. Res. J. Agr. Biol. Sci. 2010; 6, 228-46.

A Montañez, C Abreu, PR Gill, G Hardarson and M Sicardi. Biological nitrogen fixation in maize (Zea mays L.) by 15N isotope-dilution and identification of associated culturable diazotrophs. Biol. Fertil. Soils 2009; 45, 253-63.

ME Rout and TH Chrzanowski. The invasive Sorghum halepense harbors endophytic N2-fixing bacteria and alters soil biogeochemistry. Plant Soil 2009; 315, 163-72.

Y Li, Y Li, H Zhang, M Wang and S Chen. Diazotrophic Paenibacillus beijingensis BJ-18 provides nitrogen for plant and promotes plant growth, nitrogen uptake and metabolism. Front. Microbiol. 2019; 29, 1119.

SS Roley, DS Duncan, D Liang, A Garoutte, RD Jackson, JM Tiedje and GP Robertson. Associative nitrogen fixation (ANF) in switchgrass (Panicum virgatum) across a nitrogen input gradient. PLos One 2018; 13, e0197320.

SL Lim, S Subramaniam, I Zamzuri and HG Amir. Growth and biochemical profiling of artificially associated micropropagated oil palm plantlets with Herbaspirillum seropedicae. J. Plant Interact. 2018; 13, 173-81.

SH Ji, MA Gururani, JW Lee, BO Ahn and SC Chun. Isolation and characterisation of a dwarf rice mutant exhibiting defective gibberellins biosynthesis. Plant Biol. 2014; 16, 428-39.

F Golparyan, A Azizi and J Soltani. Endophytes of Lippia citriodora (Syn. Aloysia triphylla) enhance its growth and antioxidant activity. Eur. J. Plant Pathol. 2018; 152, 759-68.

T Naqqash, A Imran, S Hameed, M Shahid, A Majeed, J Iqbal, MK Hanif, S Ejaz and KA Malik. First report of diazotrophic Brevundimonas spp. as growth enhancer and root colonizer of potato. Sci. Rep. 2020; 10, 12893.

NV Chuong, NNP Trang, TLK Tri, LTT Loan, NTT Son, HT Tuan and TV Cuong. Isolation and genomic identification of rhizosphere n2-fixing bacteria from groundnut nodules. J. Jilin Univ. 2023; 42, 141-51.

MR Carter and EG Gregorich. Soil sampling and methods of analysis. CRC Press, Boca Raton, Florida, 2007.

M Alexander. Ecological constraints on nitrogen fixation in agricultural ecosystems. In: KC Marshall (Ed.). Advances in microbial ecology. Springer, Boston, Massachusetts, 1985.

PBBN Charyulu and VR Rao. Influence of various soil factors on nitrogen fixation by Azospirillum spp. Soil Biol. Biochem. 1980; 12, 343-6.

AF Leu. Organic lychee and rambutan production. Acta Horticulturae 2005; 665, 241-8.

S Monacoa, DJ Hatchb, D Saccoa, C Bertoraa and C Grignania. Changes in chemical and biochemical soil properties induced by 11-yr repeated additions of different organic materials in maize-based forage systems. Soil Biol. Biochem. 2008; 40, 608-15.

NE Bade and W Cheng. Rhizosphere priming effect of Populus fremontii obscures the temperature sensitivity of soil organic carbon respiration. Soil Biol. Biochem. 2007; 39, 600-6.

P Bengtson, J Barker and SJ Grayston. Evidence of a strong coupling between root exudation, C and N availability, and stimulated SOM decomposition caused by rhizosphere priming effects. Ecol. Evol. 2012; 2, 1843-52.

WX Cheng, WJ Parton, MA Gonzalez-Meler, R Phillips, S Asao, GG McNickle, E Brzostek and JD Jastrow. Synthesis and modeling perspectives of rhizosphere priming. New Phytologist 2014; 201, 31-44.

R Mendes, P Garbeva and JM Raaijmakers. The rhizosphere microbiome: Significance of plant beneficial, plant pathogenic, and human pathogenic microorganisms. FEMS Microbiol. Rev. 2013; 37, 634-63.

J Peng, O Oladele, X Song, X Ju, Z Jia, H Hu, X Liu, S Bei, A Ge, L Zhang and Z Cui. Opportunities and approaches for manipulating soil-plant microbiomes for effective crop nitrogen use in agroecosystems. Front. Agr. Sci. Eng. 2022; 9, 333-43.

S Ma, C Ma, P Xu, G Zheng and X Na. Effects of long-term monocropping of Lycium barbarum L. on function and composition of fungal community in rhizosphere of replanted Lycium barbarum L. Acta Pedologica Sin. 2020; 56, 1493-503.

B Wang, L Yuan, SQ Zhang, ZA Lin, BQ Zhao and YT Li. Fusion of glucose into urea affects the urea hydrolyzation and enzyme activities in fluvo-aquic soil. J. Plant Nutr. Fertilizers 2010; 26, 1827-37.

LY Zhou, XD Li, X Tang, YJ Lin and ZF Li. Effects of different application amount of N, P, K fertilizers on physiological characteristics, yield and kernel quality of peanut. Ying Yong Sheng Tai Xue Bao 2007; 18, 2468-74.

Z Yang, L Li, W Zhu, S Xiao, S Chen, J Liu, Q Xu, F Guo and S Lan. Nitrogen fertilizer amount has minimal effect on rhizosphere bacterial diversity during different growth stages of peanut. PeerJ 2022; 2, e13962.

GC Mbah and FD Dakora. Nitrate inhibition of N2 fixation and its effect on micronutrient accumulation in shoots of soybean (Glycine max L. Merr.), bambara groundnut (Vigna subterranea L. Vedc) and kersting’s groundnut (Macrotyloma geocarpum Harms.). Symbiosis 2018; 75, 205-16.

Z Yang, S Xiao, S Chen, J Liu, W Zhu, Q Xu, L Li, F Guo and S Lan. Effect of nitrogen application rates on the yield and quality of different oleic peanuts. J. Henan Agr. Sci. 2021; 50, 44-52.

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Published

2024-01-10

How to Cite

Chuong, N. V. . (2024). Effect of Three Different Nitrogen Rates and Three Rhizosphere N2- Fixing Bacteria on Growth, Yield and Quality of Peanuts . Trends in Sciences, 21(3), 7281. https://doi.org/10.48048/tis.2024.7281