Seed biopriming with different bioagents to minimize collar rot disease of groundnut (Arachis hypogea L.)
DOI:
https://doi.org/10.58628/JAE-2418-111Keywords:
Bioagents, Trichoderma, Bacillus, PseudomonasAbstract
The present studies investigate the effectiveness of various bioagents, namely Trichoderma viride, Pseudomonas fluorescens, Trichoderma harzenium and Bacillus subtilis in promoting the growth, productivity and minimize the collar rot disease incidence in groundnut (Arachis hypogea L.) under in vitro and controlled pot conditions (upto 60 per cent disease control). Groundnut is a globally important oilseed crop known for its nutritional value and oil content. However, the sustainable production of groundnuts faces increasing challenges due to biotic and abiotic stress factors. Among the biotic diseases, collar rot disease of groundnut caused by Aspergillus niger is more extensive in kharif season and causes more damage in sandy loam soils. Bioagents like Trichoderma harzenium, Trichoderma viride, Pseudomonas fluorescens and Bacillus subtilis are very helpful in increasing plant growth and controlling collar rot disease in groundnut. This study aims to elucidate the physiological mechanism underlying these interactions and provide practical insights into the application of this environmentally friendly approach for sustainable groundnut cultivation. Under pot condition treatment integration of seed treatment with Trichoderma viride and enriched vermicompost significantly shows minimum per cent disease incidence 6% and maximum plant vigour (2000) obtained from the treatment integration of Seed treatment with Trichoderma harzianum and enriched Vermicompost. Our finding reveals that the application of integration of seed treatment with Trichoderma viride and enriched vermicompost significantly shows 57.14% disease control under pot conditions, outperformed the other bioagents in sustainable management of collar rot disease of groundnut and Pseudomonas fluorescens outperformed other bioagents in enhancement of growth of plant due to their PGPR activity.
References
Abdul-Baki AA & Anderson JD. 1973. Vigour determination in soybean seed by multiple criteria. Crop Science, 13(6): 630-633.
Anonymous. 2020. Groundnut outlook. Agricultural Market Intelligence Centre, PJTSAU, pp. 1-3.
Anshul S, Jadeja KB, Pipliwal SK & Dhakad JK. 2017. Plant growth promoting effect of Trichoderma on groundnut, cotton and sorghum. Trends in Biosciences, 10(16): 2898-2907.
Druzhinina IS, Seidl-Seiboth V, Herrera-Estrella A, Horwitz BA, Kenerley CM, Monte E & Grigoriev IV. 2018. Trichoderma viride as Biocontrol Agents: Antagonistic Properties and Mechanisms. Applied Microbiology and Biotechnology, 102(12): 5255-5264.
Groundnut outlook report- January to May. 2021. https://angrau.ac.i
Harman GE, Howell CR, Viterbo A, Chet I & Lorito M. 2004. Trichoderma species opportunistic, avirulent plant symbionts. Nature Reviews Microbiology, 2(1): 43–56.
Hermosa R, Gupta A, Martinez-Medina A & Singh R. 2019. Role of Trichoderma, Pseudomonas, and Bacillus in Plant Growth and Stress Tolerance. Frontiers in Plant Science, 10: 685.
Jeffries P, Johnson T, Williams R & Anderson M. 2017. Seed Biopriming and Symbiotic Relationships: A Comprehensive Review. Plant-Microbe Interaction Review, 14(1): 86-102.
Patel P, Smith J, Johnson R & Brown A. 2019. Sustainable Production Challenges of Peanuts: Biotic and Abiotic Stress Factors. Journal of Sustainable Agriculture, 43(7): 720-735.
Rohtas R, Saharan, HS & Rathi AS. 2016. Management of collar rot of groundnut with bio-agent, botanicals and chemicals. Biosciences Biotechnology Research Asia, 3: 1657-1663.
Sharma S & Bhatnagar-Mathur P. 2021. Seed Biopriming: A Sustainable Approach for Groundnut Production. Journal of Environmental Agriculture, 38(2): 150-165.
Shoresh M, Harman GE & Mastouri F. 2010. Induced systemic resistance and plant responses to fungal biocontrol agents. Annual Review of Phytopathology, 48: 21–43.
Siddiqui ZA, Mahmood I & Akhtar MS. 2006. Mechanisms involved in plant growth promotion by rhizobacteria in PGPR: Biocontrol and Biofertilization, Springer pp: 73–132.
Sinha B, Haldhar SM, Chakrapani K, Nidhi CN, Ralte Z, Wangkhem B & Konsam J. 2023. Microbiological resources- an alternate approach for sustainable management of fall armyworm (Spodoptera frugiperda). Journal of Agriculture and Ecology, 17: 14–25. DOI:https://doi.org/10.58628/JAE-2317-302.
Varghese N. 2011. Changing directions of groundnut trade in India: The WTO effect. International Conference on Applied Economics, 731.
Whipps JM. 2001. Microbial interactions and biocontrol in the rhizosphere. Journal of Experimental Botany, 52(901): 487–511.
Yashoda K, Reddy B, Kumar S & Gupta N. 2016. Cropping Systems for Groundnut: Mixed, Trapping, and Sequential Approaches. Crop Science, 22(3): 280-295.
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