[1] |
Kastner T, Chaudhary A, Gingrich S, Marques A, Persson UM, et al. 2021. Global agricultural trade and land system sustainability: Implications for ecosystem carbon storage, biodiversity, and human nutrition. One Earth 4:1425−43 doi: 10.1016/j.oneear.2021.09.006 |
[2] |
Byerlee D, Falcon WP, Naylor R. 2017. The tropical oil crop revolution: food, feed, fuel, and forests. Oxford, UK: Oxford University Press |
[3] |
Finucane ML, Acosta J, Wicker A, Whipkey K. 2020. Short-term solutions to a long-term challenge: rethinking disaster recovery planning to reduce vulnerabilities and inequities. International Journal of Environmental Research and Public Health 17:482 doi: 10.3390/ijerph17020482 |
[4] |
Ghosh A, Khanra S, Haldar G, Bhowmick TK, Gayen K. 2019. Diverse cyanobacteria resource from north east region of India for valuable biomolecules: phycobiliprotein, carotenoid, carbohydrate and lipid. Current Biochemical Engineering 5:21−33 doi: 10.2174/2212711905666180817105828 |
[5] |
Prasad K. 2023. Role of microbial technology in agriculture by improving soil health, plant broad-mindedness, crop quality and productivity for sustaining rapid population. Life Science 1(1):87−105 |
[6] |
Prasad K. 2023. Symbiotic endophytes of glomalin AM fungi, rhizobium, and PGPR potential bio stimulants to intensive global food production for sustainable agriculture system. Journal of Microbes and Research 2(2):1−23 doi: 10.58489/2836-2187/012 |
[7] |
Wahab A, Muhammad M, Munir A, Abdi G, Zaman W, et al. 2023. Role of Arbuscular mycorrhizal fungi in regulating growth, enhancing productivity, and potentially influencing ecosystems under abiotic and biotic stresses. Plants 12:3102 doi: 10.3390/plants12173102 |
[8] |
Sahoo G, Wani AM, Swamy SL, Roul PK, Dash AC, et al. 2022. Livelihood strategy and sustainability aspects in industrialization as a source of employment in rural areas. In Social Morphology, Human Welfare, and Sustainability, eds. Hassan MI, Sen Roy S, Chatterjee U, Chakraborty S, Singh U. Cham: Springer. pp. 643−70. doi: 10.1007/978-3-030-96760-4_26 |
[9] |
Brevik EC, Slaughter L, Singh BR, Steffan JJ, Collier D, et al. 2020. Soil and human health: current status and future needs. Air Soil and Water Research 13:178622120934441 doi: 10.1177/1178622120934441 |
[10] |
Smith SE, Smith FA. 2011. Roles of arbuscular mycorrhizas in plant nutrition and growth: new paradigms from cellular to ecosystem scales. Annual Review of Plant Biology 62:227−50 doi: 10.1146/annurev-arplant-042110-103846 |
[11] |
Scheublin TR, Sanders IR, Keel C, van der Meer JR. 2010. Characterisation of microbial communities colonising the hyphal surfaces of arbuscular mycorrhizal fungi. ISME Journal 4:752−63 doi: 10.1038/ismej.2010.5 |
[12] |
Read DJ, Duckett JG, Francis R, Ligrone R, Russell A. 2000. Symbiotic fungal associations in ‘lower’ land plants. Philosophical Transactions of the Royal Society of London Series B–Biological Sciences 355:815−30 doi: 10.1098/rstb.2000.0617 |
[13] |
Prasad K. 2022. Influence of PGPR, AM fungi and conventional chemical fertilizers armament on growth, yield quality, nutrient’s translocations, and quercetin content in onion crop cultivated in semi-arid region of India. Journal of Microbiology & Biotechnology 7(1):000214 doi: 10.23880/oajmb-16000214 |
[14] |
Prasad K. 2022. Potential impression of arbuscular mycorrhizal fungi on agricultural growth, productivity, and environment toward global sustainable development for green technology. In Applied Mycology, Fungal Biology, ed. Shukla AC. Switzerland: Springer. pp. 111−36. doi: 10.1007/978-3-030-90649-8_5 |
[15] |
Bagyaraj DJ, Menge JA. 1978. Interaction between a VA mycorrhiza and Azotobacter and their effects on rhizosphere microflora and plant growth. New Phytologist 80:567−673 doi: 10.1111/j.1469-8137.1978.tb01588.x |
[16] |
Caron M, Fortin JA, Richard C. 1986. Effect of Glomus intraradices on infection by Fusarium oxysporum f. sp. radicis-lycopersici on tomato over a 12-week period. Canadian Journal of Botany 64:552−56 doi: 10.1139/b86-070 |
[17] |
Prasad K. 1998. Biological control of rhizospheric microflora of Saccharum officinarum L. plants through vesicular arbuscular mycorrhizal (Glomus fasciculatum) fungi. Biome 8 (1−2):131−36 |
[18] |
Prasad K, Warke RV, Khadke K. 2019. Management of soilborne pathogens to improve production of pulses using organic Technologies for sustainable agriculture. International Journal of Research and Analytical Reviews 6(2):82−101 |
[19] |
Scchoenback F, Dehne HW. 1979. Investigations on the influence of endotropic mycorrhiza on plant disease of fungal parasites on shoots, Olpidium brassicae. TMV Zeitschrift fur Pflanzen krank heilen und Pflanschutz 86:103−12 |
[20] |
Scchoenback F. 1979. Endomycorrhiza in relation to plant disease in soil born plant pathogens. In Soilborne Plant Pathogens: Concepts and Connections, eds. Schippers B, Games W. London: Academic Press. pp. 271−80 |
[21] |
Daniels AB, Skipper HD. 1982. Methods for the recovery and quantitative estimation of propagules from soil. In Methods and Principles of Mycorrhizal Research, ed. Schenck NC. St. Paul, Minnesota, USA: APS Press. pp. 29−35 |
[22] |
Schenck NC, Perez Y 1990. Manual for the identification of VA-mycorrhizal fungi. 3rd Edition. Gainesville, Fla, USA: Synergistic Publications. |
[23] |
Datta P, Kulkarni M. 2012. Arbuscular mycorrhizal fungal diversity in sugarcane rhizosphere in relation with soil properties. Notulae Scientia Biologicae 4(1):66−74 doi: 10.15835/nsb416567 |
[24] |
dos Santos Lucas L, Neto AR, de Moura JB, de Souza RF, Santos MEF, et al. 2022. Mycorrhizal fungi arbuscular in forage grasses cultivated in Cerrado soil. Scientific Reports 12:3103 doi: 10.1038/s41598-022-07088-5 |
[25] |
Hartoyo B, Trisilawati O. 2021. Diversity of Arbuscular Mycorrhiza Fungi (AMF) in the rhizosphere of sugarcane. IOP Conference: Series Earth and Environmental Science 653:012066 doi: 10.1088/1755-1315/653/1/012066 |
[26] |
Hijri M, Redecker D, Petetot JA, Voigt K, Wöstemeyer J, et al. 2002. Identification and Isolation of Two Ascomycete Fungi from Spores of the Arbuscular Mycorrhizal Fungus Scutellospora castanea. Applied and Environmental Microbiology 68:4567−73 doi: 10.1128/AEM.68.9.4567-4573.2002 |
[27] |
Menge JA, Timmer LW. 1982. Procedures for inoculation of plants with vesicular arbuscular mycorrhiza in the laboratory green house. In Methods and Principles of Mycorrhizal Research, ed. Schenck NC. St. Paul, Minnesota, USA: APS Press. pp. 59-68 |
[28] |
Aguilera P, Becerra N, Alvear M, Ortiz N, Turrini A, et al. 2022. Arbuscular mycorrhizal fungi from acidic soils favors production of tomatoes and lycopene concentration. Journal of the Science of Food and Agriculture 102(6):2352−58 doi: 10.1002/jsfa.11573 |
[29] |
Prasad SS, Bilgrami RS. 1969. Investigation on disease of 'Litchi' 1. Phyllosphere mycoflora of Litchi chinensis in relation to fruit rot. Indian Phytopathology 22:507−10 |
[30] |
Agarwal GP. 1991. Biological Plant Protection: Recent Developments. Presidential address. Botany Section. Proc. Indian Science Congress Association, 78 session. pp. 1−20 |
[31] |
Kerhi HK, Chandra S. 1989. Mycorrhizal infection and its relation to rhizospheric microflora in urad under stress conditions. In Mycorrhizae for Green Asia, eds. Mahadevan N, Raman N, Natrajan K. Madras, India: Alamu Publication. pp. 219−21 |
[32] |
de Oliveira TC, Uehara HM, da Silva LD, Tavares GG, Santana LR, et al. 2019. Produtividade da soja em associação ao fungo micorrízico arbuscular Rhizophagus clarus cultivada em condições de campo. Revista De Ciências Agroveterinárias 18:530−35 doi: 10.5965/223811711832019530 |
[33] |
Shrivastava AK, Srivastava AK, Solomon S. 2011. Sustaining sugarcane productivity under depleting water resource. Current Science 101:748−54 |
[34] |
Kumar T, Ghose M. 2001. Status of arbuscular mycorrhizal fungi (AMF) in the Sundarbans of India in relation to tidal inundation and chemical properties of soil. Wetlands Ecology and Management 16:471−83 |
[35] |
Wu T, Hao W, Lin X, Shi Y. 2002. Screening of arbuscular mycorrhizal fungi for the revegetation of eroded red soils in subtropical China. Plant and Soil 239:225−35 doi: 10.1023/A:1015078207757 |
[36] |
Zambolin L, Schenck NC. 1983. Reduction of the effect of pathogenic root infecting fungi on soybean by the mycorrhizal fungus, Glomus mosseae. Phytopathology 73:1402−5 doi: 10.1094/Phyto-73-1402 |
[37] |
Caron M, Fortin JA, Richard C. 1986. Effect of inoculation sequence on the interaction between Glomus intraradices and Fusarium oxysporum f. sp. Radicis-lycopersiciin tomatoes. Canadian Journal of Plant Pathology 8:12−16 doi: 10.1080/07060668609501835 |
[38] |
Sparling GP, Tinker PB. 1978. Mycorrhizal infection in Pennine grassland II. Effect of mycorrhizal infection on the growth of some upland grasses on irradiated soils. Journal of Applied Ecology 15:951−58 doi: 10.2307/2402790 |
[39] |
Dehne HW. 1982. Interaction between vesicular arbuscular mycorrhizal fungi and plant pathogens. Phytopathology 72:1115−19 |
[40] |
Jalali BL, Chand H. 1989. Role of vesicular arbuscular mycorrhizae in biological control of plant disease. In Mycorrhizae for Green Asia, eds. Mahadevan N, Raman N, Natrajan K. Madras, India: Alamu Publication. pp. 209−11 |