Commercialization, Diffusion and Adoption of Bioformulations for Sustainable Disease Management in Indian Arid Agriculture: Prospects and Challenges
Tóm tắt
Trichoderma spp. is one of the most popular genus of fungi commercially available as a plant growth promoting fungus (PGPF) and biological control agent. More than 80 species of Trichoderma are reported in the literature. However T. asperellum, T. harzianum, T. viride, and T. virens are most commonly utilized as biocontrol agents. Studies were initiated to explore the potential of biocontrol agents in order to develop a cost effective and practical management strategy. Analysis of large number of soil samples collected from western parts of the region led to isolation of native biocontrol agents viz., Trichoderma harzianum, Aspergillus versicolor, and Bacillus firmus from different agricultural systems. These biocontrol agents have proved their antagonistic ability in laboratory tests and field trials. In India, two species of Trichoderma i.e., T. viride and T. harzianum are commercially registered for usage against soil borne plant pathogens mostly as a seed treatment or soil application. There are published scientific papers on the efficacy of T. asperellum and T. virens in India for suppressing pathogens but these are not yet registered under Central Insecticide Board and Registration Committee (CIB & RC). This review article focuses on the uses, commercialization and adoption issues of various fungal and bacterial consortium products in sustainable disease management.
Tài liệu tham khảo
Lodha S, Gupta GK, Singh S (1986) Crop disease situation and some new records in Indian arid zone. Ann. Arid Zone 25:311–320
Mawar R (2001) Influence of on-farm waste on survival of Macrophomina phaseolina (Tassi) Goid., and Fusarium oxysporum f. sp. cumini Prasad and Patel in aridisols, Ph.D Thesis, JNV Uni. p 132
Lodha S, Harsh LN (2009) Combined effects of biocontrol agents and residues on root rot mortality in Indian mesquite (Prosopis cineraria). Acta Hortic 883:317–322
Mawar R, Sharma D, Ram L (2020) Potential of biocontrol agents against Ganoderma lucidum causing basal stem rot in mesquite (Prosopis cineraria) growing in arid region of India. J For Res. https://doi.org/10.1007/s11676-020-01161-3(ISSN-1007-662X)
Lodha S (1996) Influence of moisture conservation techniques on Macrophomina phaseolina population, dry root rot and yield of clusterbean. Indian Phytopathol 49:342–349
Lodha S (1995) Soil solarization, summer irrigation and amendments for the control of Fusarium oxysporum f. sp. cumini and Macrophomina phaseolina in arid soils. Crop Prot 14:215–219
Mawar R, Lodha S (2002) Brassica amendments and summer irrigation for the control of Macrophomina phaseolina and Fusarium oxysporum f. sp. cumini in hot arid region. Phytopathol Mediterr 41:45–54
Lodha S, Sharma SK, Mathur BK, Aggarwal RK (2003) Integrating sub-lethal heating with Brassica amendments and summer irrigation for control of Macrophomina phaseolina. Plant Soil 256:423–430
Mawar R, Lodha S (2009) Efficacy of weed residues vis-a-vis their composts on survival of Macrophomina phaseolina and dry root rot incidence on clusterbean. Indian Phytopathol 62:119–121
Bareja M, Mawar R, Mathur M, Lodha S (2010) Effect of composts on microbial population dynamics and activity, dry root rot severity and seed yield of cowpea in Indian arid region. Phytopathol Mediterr 49:381–392
Mawar R, Lodha S (2006) Relative efficacy of on-farm weeds as soil—amendment for managing dry root rot of clusterbean in an arid environment. Phytopathol Mediterr 45:215–224
Lodha S, Solanki KR (1993) Inheritance of dry root resistance in clusterbean. Indian Phytopathol 45:430–433
Singh MR, Lodha S (2012) Combined effect of biocontrol agents and soil amendments on soil microbial populations, plant growth and incidence of charcoal rot on cowpea and wilt on cumin. Phytopathol Mediterr 51(2):307–316
Lodha S, Mawar R, Chakarbarty PK, Singh B (2013) Managing Macrophomina phaseolina causing dry root rot of legumes by a native strain of Bacillus firmus. Indian Phytopathol 66(4):356–360
Mishra J, Arora N (2016) Bioformulations for Plant Growth Promotion and Combating Phytopathogens: A Sustainable Approach. In: Bioformulations: for Sustainable Agriculture, pp 3–33. https://doi.org/10.1007/978-81-322-2779-3_1
Sood M, Kapoor D, Kumar V, Sheteiwy Mohamed S, Ramakrishnan M, Landi M, Araniti F, Sharma A (2020) Trichoderma: the secrets of multitalented biocontrol agent. Plants 9:762. https://doi.org/10.3390/plants9060762
Lodha S, Mawar R (2010) Efficacy of native bio-control agents on soil microflora, dry root rot incidence and seed yield of rainfed arid crops. Indian Phytopathol 61:313–317
Singh V, Lodha S (2007) Biocontrol Potentials of species of Aspergillus in managing plant pathogens. In: Trivedi PC (ed) Biocontrol of Plant Diseases. Avishkar Publisher, pp 164–184
Mawar R, Tomer AS, Singh D (2018) Demonstration of bio-formulated products of bio agents against disease incidence and seed yield of crops in Indian arid region. Indian Phytopathol 71:1–6
Mawar R, Tomer AS, Singh D (2019) Demonstration of efficacy of bio-control agents in managing soil-borne diseases of various crops in arid region of India. In special issue of Fusarium. Indian Phytopathol 72:699–703
Berg G, Eberl L, Hartmann A (2005) The rhizosphere as a reservoir for opportunistic human pathogenic bacteria. Environ Microbiol 7:1673–1685
Akanksha S, Sarma BK, Upadhyay RS, Singh HB (2012) Compatible rhizosphere microbes mediated alleviation of biotic stress in chickpea through enhanced antioxidant and phenylpropanoid activities. Microbiol Res 168:33–40
Jain A, Singh S, Sarma BK, Singh BH (2012) Microbial consortium–mediated reprogramming Of defence network in pea to enhance tolerance against Sclerotinia sclerotiorum. J Appl Microbiol 112(3):537-50. https://doi.org/10.1111/j.1365-2672.2011.05220.x.
Köberl M, Ramadan EM, Robmann B, Staver C, Fürnkranz M, Lukesch B, Grube M, Berg G (2012) Using ecological knowledge and molecular tools to develop effective and safe biocontrol strategies. In: Pesticides in the Modern World/Book 5. E-book, Rijeka
Van der Heijden MGA, Klironomos JN, Ursic M, Moutoglis P, Streitwolf-Engel R, Boller T, Wiemken A, Sanders IR (1998) Mycorrhizal fungal diversity determines plant biodiversity, ecosystem variability and productivity. Nature 396:69–72
Latz E, Eisenhauer N, Rall BC, Allan E, Roscher C, Scheu S, Jousset A (2012) Plant diversity improves protection against soil-borne pathogens by fostering antagonistic bacterial communities. J Ecol 100:597–604
Mazzola M (2002) Mechanisms of natural soil suppressiveness to soilborne diseases. Antonie Van Leeuwenhoek 81:557–564
Weller DM, Raaijmakers JM, McSpadden Gardener BB, Thomashow LS (2002) Microbial populations responsible for specific soil suppressiveness to plant pathogens. Annu Rev Phytopathol 40:309–348
Mendes R, Kruijt M, de Bruijn I, Dekkers E, van der Voort M, Schneider JHM, Piceno YM, DeSantis TZ, Andersen GL, Bakker PA (2012) Deciphering the rhizosphere microbiome for disease-suppressive bacteria. Science 332:1097–1100
Schmid F, Moser G, Müller H, Berg G (2011) Functional and structural microbial diversity in organic and conventional viticulture: organic farming benefits natural biocontrol agents. Appl Environ Microbiol 77:2188–2191
Grube M, Cardinale M, Vieira de Castro Junior J, Müller H, Berg G (2009) Species-specific structural and functional diversity of bacterial communities in lichen symbiosis. ISME J 3:1105–1115
Hossain ST, Chang J and Tagupta VJF (2021). Developments in organic sector in Asia in 2020 p198-2015. In Proceedings : The world of organic agriculture - statistics and emerging trends 2021, (Eds: Willer et al) Research Institute of Organic Agriculture FiBL, Frick, Switzerland and IFOAM Organics International, Bonn, p.340
Kranthi KR, Russell D, Wanjari R, Kherde M, Munje S, Lavhe N, Armes N (2002) In-season changes in resistance to insecticides in Helicoverpa armigera (Lepidoptera: Noctuidae) in India. J Econ Entomol 95(1):134–142. https://doi.org/10.1603/0022-0493-95.1.134
Mishra J, Dutta V, Arora NK (2020) Biopesticides in India: technology and sustainability linkages. 3 Biotech 10:210. https://doi.org/10.1007/s13205-020-02192-7
Suresh K (2012) Biopesticides: A need for food and environmental safety. J Biofertil Biopestic 3:107
Anonymous (2021) One District One Product Scheme. Ministry of Food Processing Industries, Government of India. https://mofpi.nic.in/sites/default/files/odop_list_of_35_states_and_uts.pdf. Accessed 20 Mar 2021
NAAS (2013) Biopesticides—Quality Assurance. Policy Paper No. 62. New Delhi
Anonymous (2021). Bio-pesticide registrant. Central insecticides Board and Registration committee, Directorate of Plant Protection, Quarantine and Storage, Department of Agriculture, Cooperation and Farmers Welfare, (CIB&RC) Government of India. http://ppqs.gov.in/divisions/cib-rc/bio-pesticideregistrant. Accessed 20Mar 2021
de la Cruz R, Cruz Maldonado JJ, Rostro Alanis MJ, Torres JA, Parra Saldivar R (2019) Fungi-based biopesticides: shelf life preservation technologies used in commercial products. J Pest Sci 92(3):1003–1015. https://doi.org/10.1007/s10340-019-01117-5
Singh HB, Keswani C, Bisen K, Sarma BK, Chakrabarty PK (2016) Development and application of agriculturally important microorganisms in India. In: Singh HB, Sarma B, Keswani C (eds) Agriculturally Important Microorganisms. Springer, Singapore. https://doi.org/10.1007/978-981-10-2576-1_10
Burman U, Manjunatha BL (2017) IPR and Issues Related to Commercialization of Technologies in Agriculture. In: Compendium of Lectures, National Training Course on “Supply chain management and marketing of cereals, legumes and horticulture produce in Indian dry land”, 06-10 November, 2017. ICAR-CAZRI, pp 142–154
ICAR (2018) ICAR Guidelines for Intellectual Property Management and Technology Transfer/ Commercialization (Revised in 2018). Indian Council of Agricultural Research, New Delhi Available at https://icar.org.in/sites/default/files/ICAR%20Guidelines%20for%20IPM%20and%20Technology%20Transfer_2018-1.pdf. Accessed 20 Mar 2021
Singhal V (2004) Biopesticides in India. In: Kaushik N (ed) Biopesticides for sustainable agriculture, prospects and constraints. TERI, Delhi, pp 31–39
Desai S, Kumar GP, Amalraj ELD, Talluri VR, Peter AJ (2016) Challenges in regulation and registration of biopesticides: an overview. In: Singh DP, Singh HB, Prabha R (eds) Microbial inoculants in sustainable agricultural productivity. Springer, New Delhi, pp 301–308
Kulshrestha S (2004) The status of regulatory norms for biopesticides in India. In: Kaushik E (ed) Biopesticides for sustainable agriculture: prospects and constraints. Energy Research Institute, New Delhi