American Journal of Plant Sciences

Volume 4, Issue 9 (September 2013)

ISSN Print: 2158-2742   ISSN Online: 2158-2750

Google-based Impact Factor: 1.20  Citations  h5-index & Ranking

Auxin Producing Pseudomonas Strains: Biological Candidates to Modulate the Growth of Triticum aestivum Beneficially

HTML  Download Download as PDF (Size: 391KB)  PP. 1693-1700  
DOI: 10.4236/ajps.2013.49206    6,114 Downloads   9,764 Views  Citations

ABSTRACT

The screening of plant growth promoting rhizobacteria is a crucial step for their utilization as beneficial input in improving the crop productivity. This study was carried out to screen and evaluate the auxin producing rhizospheric isolated Pseudomonas strains for their potential to improve growth of Triticum aestivum (wheat) plant under laboratory and natural conditions. Three strains PNS-4, PNS-6 and PNS-15 were evaluated for auxin production by Salkowski’s method and further confirmed by high performance liquid chromatography (HPLC). The PNS-4, PNS-6 and PNS-15 strains were identified by I6S rRNA gene sequencing that showed maximum resemblance with Pseudomonas mendocina (99%), Pseudomonas alcaliphila (99%) and Pseudomonas sp. (99%) respectively. Selected strains were found to produce auxin with and without the amendment of exogenously applied L-tryptophan, a major precursor for auxin biosynthesis and an important constituent of plant root exudates. Efficacy of these strains on wheat plant growth was checked under laboratory and field conditions. All Pseudomonas species were found to improve the % seed germination and growth parameters (shoot length, root length, fresh weight and dry weight) of the wheat seedlings significantly (P = 0.05) as compared to the un-inoculated seedlings under laboratory condition. The biochemical parameters (total soluble protein content and endogenous auxin content) of the bacterial inoculated wheat seedling were also increased significantly than that of uninoculated ones. Under natural condition, seed bacterization also showed the significant effect (P = 0.05) on yield parameters (shoot length, number of tillers, spike length and weight of seeds in grams) of the wheat plants when compared with non-inoculated plants. Our results reported the three most promising Pseudomonas candidates and revealed the fact that experiments under laboratory and natural conditions may be helpful in selecting the best candidates as bio fertilizers for future agricultural practices.

Share and Cite:

A. Iqbal and S. Hasnain, "Auxin Producing Pseudomonas Strains: Biological Candidates to Modulate the Growth of Triticum aestivum Beneficially," American Journal of Plant Sciences, Vol. 4 No. 9, 2013, pp. 1693-1700. doi: 10.4236/ajps.2013.49206.

Cited by

[1] Alternative Nitrogen Source for Producing Crude Extracted IAA and Suitable Method for Enhancing the Germination of Jerusalem Artichoke
Waste and Biomass …, 2022
[2] Pseudomonas spp. in biological plant protection and growth promotion
AIMS Environmental Science, 2022
[3] Probing into the unique relationship between a soil bacterium, Pseudomonas putida AKMP7 and Arabidopsis thaliana: A case of “conditional pathogenesis”
Plant Physiology and …, 2022
[4] Phyto-Friendly Soil Bacteria and Fungi Provide Beneficial Outcomes in the Host Plant by Differently Modulating Its Responses through (In) Direct Mechanisms
Plants, 2022
[5] Role of Bacteria of the Genus Pseudomonas in the Sustainable Development of Agricultural Systems and Environmental Protection
2021
[6] A highly efficient auxin-producing bacterial strain and its effect on plant growth
Journal of Genetic …, 2021
[7] Phytobeneficial and salt stress mitigating efficacy of IAA producing Salt Tolerant strains in Gossypium hirsutum
2021
[8] Pooja Bhadrecha, Madhu Bala, Yogender Pal Khasa, Anfal Arshi, Joginder Singh &
2020
[9] Use of plant growth-promoting rhizobacteria in maize and sugarcane: Characteristics and applications
2020
[10] Hippophae rhamnoides L. rhizobacteria exhibit diversified cellulase and pectinase activities
2020
[11] KARAKTERISASI KITINASE ISOLAT BAKTERI RHIZOSFIR ASAL CIANJUR DAN AKTIVITASNYA TERHADAP PATOGEN Colletotrichum sp.
2020
[12] Plant Growth-Promoting Microbiome Network
2020
[13] Бактерии рода Pseudomonas для агробиотехнологии и природоохранной деятельности
2020
[14] Đánh giá khả năng kích thích tăng trưởng thực vật của hai chủngPseudomonas phân lập từ vùng rễ cây bắp
2020
[15] Plant growth promoting rhizobacteria and Rhizophagus irregularis: biocontrol of rice blast in wild type and mycorrhiza-defective mutant.
2019
[16] Plant growth promoting rhizobacteria and Rhizophagus irregularis: biocontrol of rice blast in wild type and mycorrhiza-defective mutant
2019
[17] Perlakuan Rizobakteri Pemacu Pertumbuhan Tanaman (RPPT) dengan Beberapa Tingkat Kerapatan Inokulum Rizobakteri Terhadap Viabilitas dan Vigor Benih …
2019
[18] A comparative analysis of exopolysaccharide and phytohormone secretions by four drought-tolerant rhizobacterial strains and their impact on osmotic-stress mitigation …
2019
[19] Effect of Rhizobacterial-Mediated Auxin on Growth Promotion of Wheat and Mung Bean Plant
2019
[20] Isolation of potential fluorescent pseudomonads from Kuini (Mangifera odorata) planted soil and their potential as biofertilizer
2019
[21] Promotion de la croissance des plantes en utilisant des souches de Streptomyces et de Bacillus produisant de l'auxine, seules ou en consortium
2019
[22] Pseudomonas putida improved soil enzyme activity and growth of kasumbha under low input of mineral fertilizers
Soil Science and Plant Nutrition, 2018
[23] Genetic diversity and beneficial role of plant growth promoting rhizobacteria in oil seed producing Sunflower (Helianthus annuus L.) crop of Azad Jammu …
2018
[24] Viabilitas kombinasi bakteri dan cendawan pada berbagai komposisi bahan pembawa dan efektifitasnya dalam mendekomposisi biomas jagung
2018
[25] Dynamics of endogenous hormone regulation in plants by phytohormone secreting rhizobacteria under water-stress
2018
[26] Evaluation of two Pseudomonas strains isolated from a maize rhizosphere as a plant growth promoting rhizobacteria
2018
[27] Beneficial effect of plant growth promoting bacteria isolated from rice rhizosphere
2018
[28] Genetic diversity and beneficial role of plant growth promoting rhizobacteria in oil seed producing Sunflower (Helianthus annuus L.) crop of Azad Jammu and Kashmir
2018
[29] Đánh giá khả năng kích thích tăng trưởng thực vật của hai chủng Pseudomonas phân lập từ vùng rễ cây bắp
Tạp chí Phát triển …, 2018
[30] Evaluation of Auxin Producing Bacteria on the Growth of Triticum aestivum Uqab-2000 Under Axenic Conditions
Lahore Garrison University …, 2017
[31] Evaluation 0f Auxin Producing Bacteria on the Growth of Triticum aestivum Uqab-2000 Under Axenic Conditions
2017
[32] l-tryptophan-assisted PGPR-mediated induction of drought tolerance in maize (Zea mays L.)
Substance Use & Misuse, 2017
[33] Effect of encapsulated Pseudomonas putida strain PF1P on plant growth and its microbial ecosystem
African Journal of Biotechnology, 2017
[34] Soil Microbiome and Their Effects on Nutrient Management for Plants
Probiotics in Agroecosystem, 2017
[35] Effect of low temperature tolerant rhizobacteria on micronutrient status and yield of wheat (Triticum aestivum L.)
Thesis, 2016
[36] Exploitation of rhizosphere microflora for the management of Ceratocystis wilt of pomegranate
Thesis, 2016
[37] PROMOTION OF PLANT GROWTH BY PHYTOHORMONE PRODUCING BACTERIA
2016
[38] Plant growth-promoting bacteria from Western Australian soils
2016
[39] Identifying Different Effective Strains of Pseudomonas Bacteria (Growth Stimulants) on Yield and Yield Components of Barley in Farm Conditions
2015
[40] Indole acetic acid production by fluorescent Pseudomonas spp. from the rhizosphere of Plectranthus amboinicus (Lour.) Spreng. and their …
2015
[41] تاثیر زمان و ترکیب محیط کشت بر تولید IAA توسط جدایه های مختلف سودوموناس فلورسنت و تاثیر جدایه ها بر رشد ذرت (Zea mays L)‎
2015
[42] Efficiency evaluation of commercial liquid biofertilizers for growth of Cicer aeritinum(chickpea) in pot and field study
Biocatalysis and Agricultural Biotechnology, 2015
[43] Indole acetic acid production by fluorescent Pseudomonas spp. from the rhizosphere of Plectranthus amboinicus (Lour.) Spreng. and their variation in extragenic repetitive DNA sequences.
Indian Journal of Experimental Biology, 2015
[44] The effect of time and media composition on IAA production by different fluorescent Pseudomonads isolates and impact of isolates on the growth of maize (Zea mays L …
Dahaji, A Akhgar… - Applied Soil …, 2015
[45] Control biológico de mancha bacteriana (Xanthomonas vesicatoria) y cáncer bacteriano (Clavibacter michiganensis subsp michiganensis) en jitomate (Solanum …
2015
[46] Indole acetic acid production by fluorescent Pseudomonas spp. from the rhizosphere of Plectranthus amboinicus (Lour.) Spreng. and their variation in …
2015 - NISCAIR-CSIR, 2015
[47] Root exudation and root development of lettuce (Lactuca sativa L. cv. Tizian) as affected by different soils
Frontiers in …, 2014
[48] Understanding and engineering beneficial plant–microbe interactions: plant growth promotion in energy crops
Plant biotechnology journal, 2014

Copyright © 2024 by authors and Scientific Research Publishing Inc.

Creative Commons License

This work and the related PDF file are licensed under a Creative Commons Attribution 4.0 International License.