African Journal of
Biotechnology

  • Abbreviation: Afr. J. Biotechnol.
  • Language: English
  • ISSN: 1684-5315
  • DOI: 10.5897/AJB
  • Start Year: 2002
  • Published Articles: 12488

Full Length Research Paper

Characterization of plant growth promoting rhizobacteria isolated from soils of Senegalese Semi-arid Sahelian Zone

Ibrahima Diop
  • Ibrahima Diop
  • Département de Biologie Végétale, Faculté des Sciences et Technique, Université Cheikh Anta Diop (UCAD), BP 5005, Dakar-Fann, Dakar, Sénégal
  • Google Scholar
Adama Diouf
  • Adama Diouf
  • Département de Biologie Végétale, Faculté des Sciences et Technique, Université Cheikh Anta Diop (UCAD), BP 5005, Dakar-Fann, Dakar, Sénégal
  • Google Scholar
Fatou Ndoye
  • Fatou Ndoye
  • Université Sine Saloum El-hadj Ibrahima Niass (USSEIN), Route Nationale N° 1, BP 55 Kaolack, Sénégal.
  • Google Scholar
Georges Anicet Manga
  • Georges Anicet Manga
  • Section Productions Végétales et Agronomie, UFR des Sciences Agronomiques, de l’Aquaculture et des Technologies Alimentaires, Université Gaston Berger, BP 234, Saint Louis, Sénégal.
  • Google Scholar
Ramatoulaye Thiaba Samba-Mbaye
  • Ramatoulaye Thiaba Samba-Mbaye
  • Département de Biologie Végétale, Faculté des Sciences et Technique, Université Cheikh Anta Diop (UCAD), BP 5005, Dakar-Fann, Dakar, Sénégal.
  • Google Scholar
Mansour Thiao
  • Mansour Thiao
  • Département de Biologie Végétale, Faculté des Sciences et Technique, Université Cheikh Anta Diop (UCAD), BP 5005, Dakar-Fann, Dakar, Sénégal.
  • Google Scholar
Hassna Founoune-Mboup
  • Hassna Founoune-Mboup
  • Laboratoire Commun de Microbiologie (LCM), Route des hydrocarbures, Bel-Air BP 31200 Dakar, Sénégal.
  • Google Scholar
Saliou Fall
  • Saliou Fall
  • Laboratoire Commun de Microbiologie (LCM), Route des hydrocarbures, Bel-Air BP 31200 Dakar, Sénégal.
  • Google Scholar
Aboubacry Kane
  • Aboubacry Kane
  • Département de Biologie Végétale, Faculté des Sciences et Technique, Université Cheikh Anta Diop (UCAD), BP 5005, Dakar-Fann, Dakar, Sénégal.
  • Google Scholar


  •  Received: 23 June 2022
  •  Accepted: 17 August 2022
  •  Published: 30 September 2022

References

Adouane H, Adjaoute L, Nabti E (2018). Isolation of "PGPR" telluric bacteria producing antifungal substances and stimulating plant growth, Master University A. MIRA - Bejaia 40p.

 

Afzal A, Bano A (2008). Rhizobium and Phosphate Solubilizing Bacteria Improve the Yield and Phosphorus Uptake in Wheat (Triticum aestivum). International Journal of Agriculture and Biology 10(1):1560-1566. Available at : View

 

Ahemad M, Kibret M (2014). Mechanisms and applications of plant growth promoting rhizobacteria: Current perspective. Journal of King Saud University-science 26(1):1-20.
Crossref

 

Ahluwalia O, Singh PC, Bhatia R (2021). A review on drought stress in plants: Implications, mitigation and the role of plant growth promoting rhizobacteria. Resources, Environment and Sustainability 5:100032.
Crossref

 

Ahmad I, Pichtel J, Hayat S (2008). Plant-bacteria interactions: strategies and techniques to promote plant growth. John Wiley & Sons.
Crossref

 

Amar JD, Manoj K, Rajesh K (2013). Plant Growth Promoting Rhizobacteria (PGPR) An Alternative of Chemical Fertilizer for Sustainable Environment Friendly Agriculture. Research Journal of Agricultural Sciences 1(4):21-23. Available at :

View

 

Backer R, Rokem JS, Ilangumaran G, Lamont J, Praslickova D, Ricci E, Subramanian S, Smith DL (2018). Plant Growth-Promoting Rhizobacteria: Context, Mechanisms of Action, and Roadmap to Commercialization of Biostimulants for Sustainable Agriculture. Frontiers in Plant Science 9:1473.
Crossref

 

Barazani O, Friedman J (1999). Is IAA the Major Root Growth Factor Secreted from Plant-Growth-Mediating Bacteria? Journal of Chemical Ecology 25(10):2397-2406.
Crossref

 

Bouali W (2017). Contribution to the development of a bacterial strain and characterization of the Bacillus cereus flora in southwest Algeria.Thesis Abou Bekr Belkaid Tlemcen UABT University, Doctorate in Microbiology 149p.

 

Bouras F (2018). Isolation and characterization of microorganisms stimulating lens growth "Lens culinaris", Thése Université Djillali Liabès De Sidi Bel Abbès 129 p. Available at :

View

 

Canbolat MY, Bilen S, Çakmakç? R, ?ahin F, Ayd?n A (2006). Effect of plant growth-promoting bacteria and soil compaction on barley seedling growth, nutrient uptake, soil properties and rhizosphere microflora. Biology and Fertility of Soils 42(4):350-357.
Crossref

 

Chitraselvi RPE, Kalidass S, Kant R (2015). Efficiency of rhizosphere bacteria in production of indole acetic acid, siderophore and phosphate solubilization. International Journal of ChemTech Research 7(6):2557-2564. Available at :

View

 

Clarke TE, Ku SY, Dougan DR, Vogel HJ, Tari LW (2000). The structure of the ferric siderophore binding protein FhuD complexed with gallichrome. Nature Structural Biology 7(4):287-291.
Crossref

 

Das K, Abrol S, Verma R, Annapragada H, Katiyar N, Senthilkumar M (2020). Pseudomonas In: Beneficial Microbes in Agro-Ecology: Bacteria and Fungi. Amaresan N, Kumar MS, Annapurna K, Kumar K, Sankaranarayanan A (eds,). Elsevier Inc. pp. 133-148.
Crossref

 

Dash C, Payyappilli RJ (2016). KOH string and Vancomycin susceptibility test as an alternative method to Gram staining Journal of International Medicine and Dentistry 3(2):88-90.
Crossref

 

de-Bashan LE, Hernandez J, Bashan Y (2012). The potential contribution of plant growth-promoting bacteria to reduce environmental degradation - A comprehensive evaluation. Applied Soil Ecology 61:171-189.
Crossref

 

Desai S, Amaresan N (2022). Qualitative and Quantitative Estimation of Phosphate Solubilizing Actinobacteria. In: Dharumadurai D (ed) Methods in Actinobacteriology. Springer Protocols Handbooks. Humana, New York, USA.
Crossref

 

Gouda S, Kerry RG, Das G, Paramithiotis S, Shin HS, Patra JK (2018). Revitalization of plant growth promoting rhizobacteria for sustainable development in agriculture. Microbiological Research 206:131-140.
Crossref

 

Gupta P, Kumar V, Usmani Z, Rani R, Chandra A (2018). Potential for phosphate solubilization and chromium (VI) depollution of Klebsiella sp. strain CPSB4 isolated from agricultural soil contaminated with chromium. Chemosphere 192:318-327.
Crossref

 

Ickowicz A, Mbaye M (2001). Forêts soudaniennes et alimentation des bovins au Sénégal : potentiel et limites. Bois et Forets des Tropiques 270:47-61. Available at :

View

 

Kaioua A, Grairi I (2015). Solubilization of phosphate, production of siderophores and antifungal activity of strains of actinomycetes and the genus Pseudomonas isolated from rhizospheric soils. Identification of representative strains. General Microbiology and Molecular Biology of Microorganisms UFM Constantine I.52p.

 

Kim WI, Cho WK, Kim SN, Chu H, Ryu KY, Yun JC, Park CS (2011). Genetic diversity of cultivable plant growth-promoting rhizobacteria in Korea. Journal of Microbiology and Biotechnology 21(8):777-790.
Crossref

 

King EO, Ward MK, Raney DE (1954). Two simple media for the demonstration of pyocyanin and fluorescein. Journal of Laboratory and Clinical Medicine 44:301-307. Available at :

View

 

Kumari P, Meena M, Upadhyay R (2018a). Characterization of plant growth promoting rhizobacteria (PGPR) isolated from the rhizosphere of Vigna radiata (mung bean). Biocatalysis and Agricultural Biotechnology 16:155-162.
Crossref

 

Kumari PP, Meena MK, Gupta P, Dubey MK, Nath G, Upadhyay RS (2018b). Plant growth promoting rhizobacteria and their biopriming for growth promotion in mung bean (Vigna radiata (L.) R. Wilczek). Biocatalysis and Agricultural Biotechnology 16:163-171.
Crossref

 

Liu W, Wang Q, Hou J, Tu C, Luo Y, Christie P (2016). Whole genome analysis of halotolerant and alkalotolerant plant growth-promoting rhizobacterium Klebsiella sp. D5A. Scientific Reports 6(1):1-10.
Crossref

 

Martins D, English AM (2014). Catalase activity is stimulated by H2O2 in rich culture medium and is required for H2O2 resistance and adaptation in yeast. Redox Biology 2:308-313.
Crossref

 

Patel PR, Shaikh SS, Sayyed RZ (2018). Modified chrome azurol S method for detection and estimation of siderophores having affinity for metal ions other than iron. Environmental Sustainability 1(1):81-87.
Crossref

 

Pereira SIA, Abreu D, Moreira H, Vega A, Castro MPL (2020). Plant growth-promoting rhizobacteria (PGPR) improve the growth and nutrient use efficiency in maize (Zea mays L.) under water deficit conditions. Heliyon 6(10):e05106.
Crossref

 

Pérez-Miranda S, Cabirol N, George-Téllez R, Zamudio-Rivera LS, Fernández F (2007). O-CAS, a fast and universal method for siderophore detection. Journal of Microbiological Methods 70(1):127-131.
Crossref

 

Pikovskaya RI (1948). Mobilization of phosphorus in the soil in connection with the vital activity of certain microbial species. Mikrobiologiya 17:362-370.

 

Schalk IJ, Hannauer M, Braud A (2011). New roles for bacterial siderophores in metal transport and tolerance. Environmental Microbiology 13(11):2844-2854.
Crossref

 

Sehrawat A, Sindhu SS, Glick BR (2022). Hydrogen cyanide production by soil bacteria: Biological control of pests and promotion of plant growth in sustainable agriculture. Pedosphere 32(1):15-38.
Crossref

 

Sharma S, Roy S (2015). Isolation and identification of a novel endophyte from a plant Amaranthus spinosus. International Journal of Current Microbiology and Applied Sciences 4(2):785-798. Available at :

View

 

Siddhi G, Meena MK, Datta S (2014). Isolation, characterization of plant growth promoting bacteria from the plant Chlorophytum borivilianum and in-vitro screening for activity of nitrogen fixation, phosphate solubilization and IAA production. International Journal of Current Microbiology and Applied Sciences 3(7):1082-1090. Avalable at :

View

 

Vessey JK (2003). Plant growth promoting rhizobacteria as biofertilizers. Plant and Soil 255(2):571-586.
Crossref

 

Yazdani M, Yap CK, Abdullah F, Tan SG (2009). Trichoderma atroviride as a bioremediator of Cu pollution: an in vitro study. Toxicological & Environmental Chemistry 91(7):1305-1314.
Crossref