Exploitation of indigenous fluorescent pseudomonads against stem and pod rot of groundnut caused by Sclerotium rolfsii

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Authors

  • Department of Pathology, University of Agricultural Sciences, Raichur - 584104, Karnataka ,IN
  • Department of Pathology, University of Agricultural Sciences, Raichur - 584104, Karnataka ,IN
  • Department of Pathology, University of Agricultural Sciences, Raichur - 584104, Karnataka ,IN
  • Department of Pathology, University of Agricultural Sciences, Raichur - 584104, Karnataka ,IN

DOI:

https://doi.org/10.18311/jbc/2022/32536

Keywords:

Groundnut, management, Pseudomonas, sclerotium rot

Abstract

Stem and pod rot of groundnut is an economically important soil borne disease caused by Sclerotium rolfsii Sacc. The present study aimed to evaluate the indigenous bacterial bio control agent Pseudomonas fluorescens strains having multiple traits related to bio control and plant growth promoting activity. Healthy rhizospheric soil from groundnut field was collected from different North Karnataka districts. Nineteen strains of P. fluorescens were isolated by serial dilution technique on King’s B medium. The antagonistic potential of nineteen strains was tested against S. rolfsii by using dual culture technique. The per cent inhibition was highly variable among the nineteen strains of P. fluorescens ranging from 2.59 to 75.18 per cent. Maximum mycelial inhibition of S. rolfsii was recorded by the strain PF-2 (75.18%) followed by PF-3 (72.96%), PF-6 (69.62%) and least inhibition was recorded by PF-13 (2.59%). Five superior strains of P. fluorescens showed fluorescens under UV light, yellowish green pigmentation, rod shaped cells under microscope. Five superior strains were subjected for various biochemical tests and all the isolates were positive for biochemical characterization such as Gram staining, endospore production, catalase, starch hydrolysis, urease test, casein hydrolysis and gelatin liquefy action and negative for KOH and in dole test. Further, these strains were subjected for plant growth promoting traits such as HCN production, IAA production, siderophore production and volatile compounds production. Among these, the strainsviz., PF-2 and PF-3 were scored as strong with respect to antagonism and growth promotion. The strainsPF-6, PF-7 and PF-10 were scored as moderate with light brown colour. Among the tested strains of P. fluorescens, the isolates PF-2 and PF-3 were recorded higher production of siderophore, isolates PF-6, PF-7 and PF-10 showed moderate production of siderophore. The strain PF-2 of P. fluorescens showed highest per cent of mycelial inhibition of S. rolfsii indicating higher production of volatile compounds, followed by PF-3 and PF-6. Whereas, the least mycelial inhibition was recorded by the isolate PF-10 indicating less production of volatile compounds.

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Published

2023-06-14

How to Cite

Sunkad, G., ., K., Joshi, R., & Patil, M. S. (2023). Exploitation of indigenous fluorescent pseudomonads against stem and pod rot of groundnut caused by <i>Sclerotium rolfsii</i>. Journal of Biological Control, 36(2&amp;3), 120–129. https://doi.org/10.18311/jbc/2022/32536

Issue

Section

Research Articles
Received 2023-01-23
Accepted 2023-10-18
Published 2023-06-14

 

References

Anonymous, Department of economics and statistics, GOI. 2022, Annual report (2021- 22).

Blazevic DJ, Ederer GM. 1975. Principles of biochemical tests in diagnostic microbiology. New York: Wiley and Company, 5: 13-45.

Cappuccino JC, Sherman N. 1992. In: Microbiology. A Laboratory Manual, NewYork. pp. 125-179.

Cartwright DK, Benson DM. 1985. Biological control of rhizoctonia stem rot of poinsettia in polyfoam rooting cubes with Pseudomonas cepacia and Paecilomyces lilacinus. Biol Control, 5(2): 237-244. https://doi.org/10.1006/bcon.1995.1029 DOI: https://doi.org/10.1006/bcon.1995.1029

Charulatha R, Harikrishnan H, Manoharan PT, Shanmugaia V. 2013. Characterization of groundnut rhizosphere Pseudomonas sp. VSMKU 2013 for Control of Phytopathogens. Microbiol Res Agroeco Manage. 121-127. https://doi.org/10.1007/978-81-322-1087-0_8 DOI: https://doi.org/10.1007/978-81-322-1087-0_8

Cook RJ, Baker KF. 1983. The nature and practice of biological control of plantpathogens. American Phytopathol Soc St Pau Minnesota. pp. 539.

Eckford MQ. 1927. Thermophile bacteria in milk. American J Hygiene, 7: 200-202. https://doi.org/10.1093/oxfordjournals.aje.a120412 DOI: https://doi.org/10.1093/oxfordjournals.aje.a120412

Grichar VJ, Bosweel TE. 1987. Comparison of lorsban and tilt with terrachlor for control of southern blight on peanut the texas. Agriculture Experiment Station. pp. 4534.

Mallesh SB, Lingaraju S, Benagi VI, Basamma K, Kumari, Vinaya, H. 2009. Native plant promoting rhizobacteria for the suppression of pathogens of pomegranate (Punica granatum). 2nd International Symposium on Pomegranate and Minor including Mediterranean fruits (ISPMMF-2009), UAS, Dharwad, India.

Mayee CD, Datar VV. 1988. Diseases of groundnut in the tropics. Rev Trop Plant Pathol. 5: 85-118.

Neilands JB. and Schwayn A. 1987. Siderophores in relation to plant growth and disease. Ann. Rev Pl Physiol. 37: 187-208. DOI: https://doi.org/10.1146/annurev.pp.37.060186.001155

Nirmala JL, Reddy ES. 2014. Evaluation of plant growth promoting attributes and biocontrol potential of native fluorescent Pseudomonas spp. against Aspergillus niger causing collar rot of ground nut. Inter J Plant An Env Sci, 4(4): 256-262.

Priyanka, Geeta, Goudar P, Nath JN, Patil PV. 2017. Isolation, characterization and antagonistic activity of fluorescent pseudomonads. Int J Curr Microbiol Appl Sci, 6(12): 3883-3898. https://doi.org/10.20546/ijcmas.2017.612.449 DOI: https://doi.org/10.20546/ijcmas.2017.612.449

Rakh RR, Raut LS, Dalvi AV, Manwar AV. 2011. Biological control of Sclerotium rolfsii, causing stem rot of groundnut by Pseudomonas monteilii. Recent Res Sci Technol, 3(3): 26-34

Roopa KP,Krishnaraj, PU. 2017. Effect of Actinobacteria and Pseudomonas spp. against Sclerotium rolfsii in groundnut. Int J Curr Microbiol Appl Sci, 6(10): 229-245. https://doi.org/10.20546/ijcmas.2017.610.029 DOI: https://doi.org/10.20546/ijcmas.2017.610.029

Sallam EK, Pervaiz A, Abbasi. 2013. Isolation, characterization, and formulation of antagonistic bacteria for the management of seedlings damping off and root rotdisease of cucumber. Canadian J Microbiol, 60(1): 25-33. https://doi.org/10.1139/cjm-2013-0675 PMid:24392923 DOI: https://doi.org/10.1139/cjm-2013-0675

Saravanan T, Muthuswamy M, Marimuthu T. 2013. Development of integrated approach manage the fusarium wilt of banana. Crop Protect, 22(9): 1117-1123. https://doi.org/10.1016/S0261-2194(03)00146-7 DOI: https://doi.org/10.1016/S0261-2194(03)00146-7

Seeley HW, Vandermark PJ. 1970. Microbe in Action, A laboratory manual of microbiology, DB Taraporvala Sons and Company Pvt, Ltd, Mumbai. pp. 86-95.

Shreedevi S. 2017. Investigations on major soil borne diseases of groundnut with special emphasis on dry root rot caused by Rhizoctonia bataticola (Taub.) Butler. MSc. Thesis, Univ Agril Sci, Raichur, Karnataka. pp. 52-54.

Shruthi TH. 2017. Ecofriendly management of wilt of pomegranate caused by Cerotocystis fimbriata Ellis and Halst. through bioagents. MSc Thesis, Univ Agril Sci, Raichur, Karnataka. pp. 55.