Dynamic interplay of plants, microorganisms, and arthropods: Exploring ecosystem
##plugins.themes.bootstrap3.article.main##
Abstract
Plants, microorganisms, and arthropods continuously interact within the intricate system of the environment. These interactions can often lead to significant crop damage due to diseases and pests; however, there are also circumstances where microorganisms serve as necessary symbiotic plant partners. A range of beneficial microbes in the soil support plant development and health through direct and indirect mechanisms. These beneficial microorganisms, also known as "little helpers" are vital due to their ability to colonize various niches and their ubiquitous presence. Increasingly, such microorganisms are used as biological control agents and microbial fertilizers. They are specific to pests and diseases, with a minimal negative impact on humans and the environment. Plants face numerous environmental challenges and must respond appropriately to survive. Recent studies suggest that beneficial microbial biota in the soil can affect herbivores, highlighting the importance of these biological agents. Specifically, they can reduce the harmful effects of herbivorous insect pests, which damage plants are a major factor in global yield losses. Therefore, they are expected to be essential candidates to replace chemical insecticides in the near future. This review includes recent findings on many aspects of below-ground and above-ground plant-mediated interactions.
How to Cite
Rişvanlı MR, Atlıhan R. 2025. Dynamic interplay of plants, microorganisms, and arthropods: Exploring ecosystem. The Palawan Scientist. 17(1):114–128. https://doi.org/10.69721/TPS.J.2025.17.1.11.
Downloads
Download data is not yet available.
##plugins.themes.bootstrap3.article.details##
Keywords
plant‐mediated interactions, pest management, symbiosis, three-way interactions
References
Adeleke BS and Babalola OO. 2021. Roles of plant endosphere microbes in agriculture-a review. Journal of Plant Growth Regulation, 41: 1411–1428. https://doi.org/10.1007/s00344-021-10406-2
Agbessenou A, Akutse KS, Yusuf AA, Ekesi S, Subramanian S and Khamis FM. 2020. Endophytic fungi protect tomato and nightshade plants against Tuta absoluta (Lepidoptera: Gelechiidae) through a hidden friendship and cryptic battle. Scientific reports, 10: 22195. https://doi.org/10.1038/s41598-020-78898-8
Agbessenou A, Akutse KS, Yusuf AA and Khamis FM. 2022. The Endophyte Trichoderma asperellum M2RT4 Induces the Systemic Release of Methyl Salicylate and (Z)-jasmone in Tomato Plant Affecting Host Location and Herbivory of Tuta absoluta. Frontiers in Plant Science, 13: 860309. https://doi.org/10.3389/fpls.2022.860309
Alınç T, Cusumano A, Peri E, Torta L and Colazza S. 2021. Trichoderma harzianum strain T22 modulates direct defense of tomato plants in response to Nezara viridula feeding activity. Journal of Chemical Ecology, 47: 455-462. https://doi.org/10.1007/s10886-021-01260-3
Alınç T, Peri E, Torta L, Guarino S, Colazza S, Lievens B and Cusumano A. 2024. Root inoculation with beneficial soil microbes enhances indirect plant defences induced by insect feeding and egg deposition. Functional Ecology, 38(8): 1811-1821.
https://doi.org/10.1111/1365-2435.14594
Aneja K, Khan S and Aneja A. 2016. Biopesticides an eco-friendly pestmanagement approach in agriculture: status and prospects. Kavaka, 47: 145-154.
Aranega-Bou P, de la O Leyva M, Finiti I, García-Agustín P and González-Bosch C. 2014. Priming of plant resistance by natural compounds. Hexanoic acid as a model. Frontiers in Plant Science, 5: 488. https://doi.org/10.3389/fpls.2014.00488
Arimura G-i, Ozawa R, Kugimiya S, Takabayashi J and Bohlmann Jr. 2004. Herbivore-induced defense response in a model legume. Two-spotted spider mites induce emission of (E)-β-ocimene and transcript accumulation of (E)-β-ocimene synthase in Lotus japonicus. Plant Physiology, 135(4): 1976-1983. https://doi.org/10.1104/pp.104.042929
Arora R and Dhaliwal G. 1996. Agroecological changes and insect pest problems in Indian agriculture. Indian Journal of Ecology, 23(2): 109-122.
Atlihan R, Britton NF, Demir S, Papasidero A, Risvanli MR, Seminara M and Venturino E. 2021. Can symbiotic fungi protect plants from insect pests? A simple mathematical model. Computational and Mathematical Methods, 3(6): e1121.https://doi.org/10.1002/cmm4.1121
Bais HP, Weir TL, Perry LG, Gilroy S and Vivanco JM. 2006. The role of root exudates in rhizosphere interations with plants and other organisms. In Annual Review of Plant Biology, 57: 233-266. https://doi.org/10.1146/annurev.arplant.57.032905.105159
Bakker PA, Pieterse CM, de Jonge R and Berendsen RL. 2018. The soil-borne legacy. Cell, 172(6): 1178-1180.
Ballhorn DJ, Elias JD, Balkan MA, Fordyce RF and Kennedy PG. 2017. Colonization by nitrogen-fixing Frankia bacteria causes short-term increases in herbivore susceptibility in red alder (Alnus rubra) seedlings. Oecologia, 184(2): 497-506. https://doi.org/10.1007/s00442-017-3888-2
Barber NA, Adler LS, Theis N, Hazzard RV and Kiers ET. 2012. Herbivory reduces plant interactions with above‐and belowground antagonists and mutualists. Ecology, 93(7): 1560-1570. https://doi.org/10.1890/11-1691.1
Barber NA, Milano NJ, Kiers ET, Theis N, Bartolo V, Hazzard RV and Adler LS. 2015. Root herbivory indirectly affects above‐and below‐ground community members and directly reduces plant performance. Journal of Ecology, 103(6): 1509-1518. https://doi.org/10.1111/1365-2745.12464
Battaglia D, Bossi S, Cascone P, Digilio MC, Prieto JD, Fanti P, Guerrieri E, Iodice L, Lingua G, Lorito M, et al. 2013. Tomato below ground–above ground interactions: Trichoderma longibrachiatum affects the performance of Macrosiphum euphorbiae and its natural antagonists. Molecular Plant-Microbe Interactions, 26(10): 1249-1256. https://doi.org/10.1094/MPMI-02-13-0059-R
Bernaola L and Stout MJ. 2019. Effects of arbuscular mycorrhizal fungi on rice-herbivore interactions are soil-dependent. Scientific reports, 9(1): 1-12. https://doi.org/10.1038/s41598-019-50354-2
Bezemer TM and van Dam NM. 2005. Linking aboveground and belowground interactions via induced plant defenses. Trends in Ecology & Evolution, 20(11): 617-624. https://doi.org/10.1016/j.tree.2005.08.006
Biere A and Bennett AE. 2013. Three-way interactions between plants, microbes and insects. Functional Ecology, 27(3): 567-573. https://doi.org/10.1111/1365-2435.12100
Bramble BJ. 1989. An environmentalists's view of pest management and the green revolution. International Journal of Pest Management, 35(3): 228-230. https://doi.org/10.1080/09670878909371370
Cahill JF, Jr., Elle E, Smith GR and Shore BH. 2008. Disruption of a belowground mutualism alters interactions between plants and their floral visitors. Ecology, 89(7): 1791-1801. https://doi.org/10.1890/07-0719.1
Chen K, Kleijn D, Scheper J and Fijen TP. 2022. Additive and synergistic effects of arbuscular mycorrhizal fungi, insect pollination and nutrient availability in a perennial fruit crop. Agriculture, Ecosystems & Environment, 325: 107742. https://doi.org/10.1016/j.agee.2021.107742
Chen L and Liu Y. 2024. The function of root exudates in the root colonization by beneficial soil rhizobacteria. Biology, 13(2): 95. https://doi.org/10.3390/biology13020095
Clavijo Mccormick A, Irmisch S, Reinecke A, Boeckler GA, Veit D, Reichelt M, Hansson BS, Gershenzon J, Köllner TG and Unsicker SB. 2014. Herbivore‐induced volatile emission in black poplar: Regulation and role in attracting herbivore enemies. Plant, Cell & Environment, 37(8): 1909-1923. https://doi.org/10.1111/pce.12287
Commare RR, Nandakumar R, Kandan A, Suresh S, Bharathi M, Raguchander T and Samiyappan R. 2002. Pseudomonas fluorescens based bio-formulation for the management of sheath blight disease and leaffolder insect in rice. Crop Protection, 21(8): 671-677. https://doi.org/10.1016/S0261-2194(02)00020-0
Contreras-Cornejo HA, Macías-Rodríguez L, del-Val E and Larsen J. 2018. The root endophytic fungus Trichoderma atroviride induces foliar herbivory resistance in maize plants. Applied Soil Ecology, 124: 45-53. https://doi.org/10.1016/j.apsoil.2017.10.004
Contreras-Cornejo HA, Macías-Rodríguez L, del-Val E and Larsen J. 2020. Interactions of Trichoderma with plants, insects, and plant pathogen microorganisms: chemical and molecular bases. In: Mérillon J and Ramawat K (eds). Co-evolution of secondary metabolites. Springer, Cham, pp. 263-290. https://doi.org/10.1007/978-3-319-96397-6_23
Contreras-Cornejo HA, Macias-Rodriguez L, Real-Santillan RO, Lopez-Carmona D, Garcia-Gomez G, Galicia-Gallardo AP, Alfaro-Cuevas R, González-Esquivel CE, Najera-Rincón MB, Adame-Garnica SG et al. 2021a. In a belowground multitrophic interaction, Trichoderma harzianum induces maize root herbivore tolerance against Phyllophaga vetula. Pest Management Science, 77(9): 3952-3963.
https://doi.org/10.1002/ps.6415
Contreras-Cornejo HA, Viveros-Bremauntz F, del-Val E, Macías-Rodríguez L, López-Carmona DA, Alarcón A, González-Esquivel CE and Larsen J. 2021b. Alterations of foliar arthropod communities in a maize agroecosystem induced by the root-associated fungus Trichoderma harzianum. Journal of Pest Science, 94(2): 363-374. https://doi.org/10.1007/s10340-020-01261-3
Coppola M, Cascone P, Chiusano ML, Colantuono C, Lorito M, Pennacchio F, Rao R, Lois Woo S, Guerrieri E and Digilio MC. 2017. Trichoderma harzianum enhances tomato indirect defense against aphids. Insect Science, 24(6): 1025-1033.
https://doi.org/10.1111/1744-7917.12475
Coppola M, Cascone P, Lelio ID, Woo SL, Lorito M, Rao R, Pennacchio F, Guerrieri E and Digilio MC. 2019a. Trichoderma atroviride P1 colonization of tomato plants enhances both direct and indirect defense barriers against insects. Frontiers in Physiology, 10: 813. https://doi.org/10.3389/fphys.2019.00813
Coppola M, Diretto G, Digilio MC, Woo SL, Giuliano G, Molisso D, Pennacchio F, Matteo L and Rao R. 2019b. Transcriptome and metabolome reprogramming in tomato plants by Trichoderma harzianum strain T22 primes and enhances defence responses against aphids. Frontiers in Physiology, 10: 745. https://doi.org/10.3389/fphys.2019.00745
Courtney S and Forsberg J. 1988. Host use by two pierid butterflies varies with host density. Functional Ecology, 2(1): 67-75. https://doi.org/10.2307/2389462
Cusumano A, Bella P, Peri E, Rostás M, Guarino S, Lievens B and Colazza S. 2022. Nectar-inhabiting bacteria affect olfactory responses of an insect parasitoid by altering nectar odors. Microbial Ecology, 86(1): 364-376. https://doi.org/10.1007/s00248-022-02078-6
Delory BM, Schempp H, Spachmann SM, Störzer L, van Dam NM, Temperton VM and Weinhold A. 2021. Soil chemical legacies trigger species‐specific and context‐dependent root responses in later arriving plants. Plant, Cell & Environment, 44(4): 1215-1230. https://doi.org/10.1111/pce.13999
Dhaliwal G, Jindal V and Dhawan A. 2010. Insect pest problems and crop losses: changing trends. Indian Journal of Ecology, 37(1): 1-7.
Di Lelio I, Coppola M, Comite E, Molisso D, Lorito M, Woo SL, Pennacchio F, Rao R and Digilio MC. 2021. Temperature Differentially Influences the Capacity of Trichoderma Species to Induce Plant Defense Responses in Tomato Against Insect Pests. Frontiers in Plant Science, 12: 678830. https://doi.org/10.3389/fpls.2021.678830
Dicke M, van Loon JJA and Soler R. 2009. Chemical complexity of volatiles from plants induced by multiple attack. Nature Chemical Biology, 5(5): 317-324. https://doi.org/10.1038/nchembio.169
Eichmann R, Richards L and Schäfer P. 2021. Hormones as go‐betweens in plant microbiome assembly. The Plant Journal, 105(2): 518-541. https://doi.org/10.1111/tpj.15135
El-Maraghy S, Tohamy A and Hussein K. 2021. Plant protection properties of the Plant Growth-Promoting Fungi (PGPF): Mechanisms and potentiality. Current Research in Environmental & Applied Mycology (Journal of Fungal Biology), 11(1): 391-415. https://doi.org/10.5943/cream/11/1/29
Erb M, Lenk C, Degenhardt J and Turlings TCJ. 2009. The underestimated role of roots in defense against leaf attackers. Trends in Plant Science, 14(12): 653-659. https://doi.org/10.1016/j.tplants.2009.08.006
Erb M and Reymond P. 2019. Molecular interactions between plants and insect herbivores. Annual Review of Plant Biology, 70: 527-557. https://doi.org/10.1146/annurev-arplant-050718-095910
FAO (Food and Agriculture Organization of the United Nations). 2018. Shaping the future of livestock sustainably, responsibly, efficiently [Paper presention]. The 10th Global Forum for Food and Agriculture, Germany, Berlin. https://openknowledge.fao.org/handle/20.500.14283/i8384en. Accessed on 12 June 2023.
FAO (Food and Agriculture Organization of the United Nations). 2021. The state of food security and nutrition in the world 2021, Rome, Italy. https://policycommons.net/artifacts/1850109/the-state-of-food-security-and-nutrition-in-the-world-2021/2596732/. Accessed on 02 February 2022.
Fernandez‐Conradi P, Jactel H, Robin C, Tack AJ and Castagneyrol B. 2018. Fungi reduce preference and performance of insect herbivores on challenged plants. Ecology, 99(2): 300-311. https://doi.org/10.1002/ecy.2044
Figueiredo MdVB, Seldin L, de Araujo FF and Mariano RdLR. 2010. Plant Growth Promoting Rhizobacteria: Fundamentals and Applications. In: Maheshwari D (ed). Plant Growth and Health Promoting Bacteria. Microbiology Monographs. Springer, Berlin, Heidelberg, pp. 21-43. https://doi.org/10.1007/978-3-642-13612-2_2
Fontana A, Reichelt M, Hempel S, Gershenzon J and Unsicker SB. 2009. The Effects of Arbuscular Mycorrhizal Fungi on Direct and Indirect Defense Metabolites of Plantago lanceolata L. Journal of Chemical Ecology, 35(7): 833-843. https://doi.org/10.1007/s10886-009-9654-0
Fried G, Chauvel B, Reynaud P and Sache I. 2017. Decreases in Crop Production by Non-native Weeds, Pests, and Pathogens. In: Vilà M and Hulme P (eds). Impact of Biological Invasions on Ecosystem Services. Invading Nature - Springer Series in Invasion Ecology, vol 12. Springer, Cham, pp. 83-101. https://doi.org/10.1007/978-3-319-45121-3_6
Friman J, Karssemeijer PN, Haller J, de Kreek K, van Loon JJ and Dicke M. 2021. Shoot and root insect herbivory change the plant rhizosphere microbiome and affects cabbage–insect interactions through plant–soil feedback. New Phytologist, 232(6): 2475-2490. https://doi.org/10.1111/nph.17746
Gandhi PI, Gunasekaran K and Sa T. 2006. Neem oil as a potential seed dresser for managing Homopterous sucking pests of Okra (Abelmoschus esculentus (L.) Moench). Journal of Pest Science, 79(2): 103-111. https://doi.org/10.1007/s10340-006-0122-0
Gange AC, Brown VK and Aplin DM. 2003. Multitrophic links between arbuscular mycorrhizal fungi and insect parasitoids. Ecology Letters, 6(12): 1051-1055. https://doi.org/10.1046/j.1461-0248.2003.00540.x
Gange AC, Brown VK and Aplin DM. 2005. Ecological specificity of arbuscular mycorrhizae: evidence from foliar- and seed-feeding insects. Ecology, 86(3): 603-611. https://doi.org/10.1890/04-0967
Gange AC and Smith AK. 2005. Arbuscular mycorrhizal fungi influence visitation rates of pollinating insects. Ecological Entomology, 30(5): 600-606. https://doi.org/10.1111/j.0307-6946.2005.00732.x
Gehring C and Bennett A. 2009. Mycorrhizal fungal–plant–insect interactions: the importance of a community approach. Environmental Entomology, 38(1): 93-102. https://doi.org/10.1603/022.038.0111
Ghosh SK and Pal S. 2016. Entomopathogenic potential of Trichoderma longibrachiatum and its comparative evaluation with malathion against the insect pest Leucinodes orbonalis. Environmental Monitoring and Assessment, 188: 37. https://doi.org/10.1007/s10661-015-5053-x
Good AP, Gauthier M-PL, Vannette RL and Fukami T. 2014. Honey bees avoid nectar colonized by three bacterial species, but not by a yeast species, isolated from the bee gut. PLOS One, 9(1): e86494. https://doi.org/10.1371/journal.pone.0086494
Grabka R, d’Entremont TW, Adams SJ, Walker AK, Tanney JB, Abbasi PA and Ali S. 2022. Fungal endophytes and their role in agricultural plant protection against pests and pathogens Plants, 11(3): 384. https://doi.org/10.3390/plants11030384
Grayston SJ, Dawson LA, Treonis AM, Murray PJ, Ross J, Reid EJ and MacDougall R. 2001. Impact of root herbivory by insect larvae on soil microbial communities. European Journal of Soil Biology, 37(4): 277-280. https://doi.org/10.1016/S1164-5563(01)01098-6
Guerrieri E, Lingua G, Digilio MC, Massa N and Berta G. 2004. Do interactions between plant roots and the rhizosphere affect parasitoid behaviour? Ecological Entomology, 29(6): 753-756. https://doi.org/10.1111/j.0307-6946.2004.00644.x
Harman GE, Howell CR, Viterbo A, Chet I and Lorito M. 2004. Trichoderma species - Opportunistic, avirulent plant symbionts. Nature Reviews Microbiology, 2(1): 43-56. https://doi.org/10.1038/nrmicro797
Harman GE. 2006. Overview of mechanisms and uses of Trichoderma spp. Phytopathology, 96(2): 190-194. https://doi.org/10.1094/PHYTO-96-0190
Hauser TP, Christensen S, Heimes C and Kiær LP. 2013. Combined effects of arthropod herbivores and phytopathogens on plant performance. Functional Ecology, 27(3): 623-632. https://doi.org/10.1111/1365-2435.12053
Heil M. 2014. Herbivore‐induced plant volatiles: targets, perception and unanswered questions. New Phytologist, 204: 297-306. https://doi.org/10.1111/nph.12977
Hempel S, Stein C, Unsicker SB, Renker C, Auge H, Weisser WW and Buscot F. 2009. Specific bottom–up effects of arbuscular mycorrhizal fungi across a plant–herbivore–parasitoid system. Oecologia, 160: 267-277. https://doi.org/10.1007/s00442-009-1294-0
Herman MAB, Nault BA and Smart CD. 2008. Effects of plant growth-promoting rhizobacteria on bell pepper production and green peach aphid infestations in New York. Crop Protection, 27(6): 996-1002. https://doi.org/10.1016/j.cropro.2007.12.004
Huang P-C, Yuan P, Grunseich JM, Taylor J, Tiénébo E-O, Pierson EA, Bernal JS, Kenerley CM and Kolomiets MV. 2024. Trichoderma virens and Pseudomonas chlororaphis Differentially Regulate Maize Resistance to Anthracnose Leaf Blight and Insect Herbivores When Grown in Sterile versus Non-Sterile Soils. Plants, 13(9): 1240. https://doi.org/10.3390/plants13091240
IFPRI (The International Food Policy Research Institute). 2016. Global Nutrition Report 2016: From Promise to Impact: Ending Malnutrition by 2030. Washington, DC: International Food Policy Research Institute. 156pp.
Jaber LR and Vidal S. 2010. Fungal endophyte negative effects on herbivory are enhanced on intact plants and maintained in a subsequent generation. Ecological Entomology, 35(1): 25-36. https://doi.org/10.1111/j.1365-2311.2009.01152.x
Jafarbeigi F, Samih M, Alaei H and Shirani H. 2020. Induced tomato resistance against Bemisia tabaci triggered by salicylic acid, β-Aminobutyric Acid, and Trichoderma. Neotropical Entomology, 49(3): 456-467. https://doi.org/10.1007/s13744-020-00771-0
Johnson SN, Hawes C and Karley AJ. 2009. Reappraising the role of plant nutrients as mediators of interactions between root- and foliar-feeding insects. Functional Ecology, 23(4): 699-706. https://doi.org/10.1111/j.1365-2435.2009.01550.x
Kempel A, Brandl R and Schadler M. 2009. Symbiotic soil microorganisms as players in aboveground plant-herbivore interactions - the role of rhizobia. Oikos, 118(4): 634-640. https://doi.org/10.1111/j.1600-0706.2008.17418.x
Kessler A and Halitschke R. 2009. Testing the potential for conflicting selection on floral chemical traits by pollinators and herbivores: predictions and case study. Functional Ecology, 23(5): 901-912. http://www.jstor.org/stable/40407699. Accessed on 12 July 2022.
Kızılkan ND, Konuş M, Rişvanlı MR, Yılmaz C, Kara H, Özgökçe MS, Çetin D and Atlıhan R. 2025. Impact of Beneficial Microorganisms Inoculated Cotton Plants on Spodoptera exigua (Lepidoptera: Noctuidae). Neotropical Entomology, 54(1): 7. https://doi.org/10.1007/s13744-024-01221-x
Kim WI, Cho WK, Kim SN, Chu HS, Ryu KY, Yun JC and Park CS. 2011. Genetic diversity of cultivable plant growth-promoting rhizobacteria in Korea. Journal of Microbiology and Biotechnology, 21(8): 777-790. https://doi.org/10.4014/jmb.1101.01031
Knauer AC and Schiestl FP. 2015. Bees use honest floral signals as indicators of reward when visiting flowers. Ecology Letters, 18(2): 135-143. https://doi.org/10.1111/ele.12386
Kostenko O and Bezemer TM. 2020. Abiotic and biotic soil legacy effects of plant diversity on plant performance. Frontiers in Ecology and Evolution, 8: 87. https://doi.org/10.3389/fevo.2020.00087
Lazebnik J, Frago E, Dicke M and van Loon JJ. 2014. Phytohormone mediation of interactions between herbivores and plant pathogens. Journal of Chemical Ecology, 40(7): 730-741. https://doi.org/10.1007/s10886-014-0480-7
Leroy PD, Sabri A, Verheggen FJ, Francis F, Thonart P and Haubruge E. 2011. The semiochemically mediated interactions between bacteria and insects. Chemoecology, 21: 113-122. https://doi.org/10.1007/s00049-011-0074-6
Liu Z, Jiang C, Zhai T, Chang Y, Yao Z, Liu Z and Zhang R. 2018. Effects of Trichoderma asperellum combined application on growth and photosynthesis characteristics of Populus davidiana × P. alba var. pyramidlis. Bulletin of Botanical Research, 38(1): 64-74. https://doi.org/10.7525/j.issn.1673-5102.2018.01.008
Lugtenberg B and Kamilova F. 2009. Plant-growth-promoting rhizobacteria. Annual Review of Microbiology, 63: 541-556. https://doi.org/10.1146/annurev.micro.62.081307.162918
Macías-Rodríguez L, Contreras-Cornejo HA, Adame-Garnica SG, Del-Val E and Larsen J. 2020. The interactions of Trichoderma at multiple trophic levels: Inter-kingdom communication. Microbiological Research, 240: 126552. https://doi.org/10.1016/j.micres.2020.126552
Maffei ME, Arimura G-I and Mithöfer A. 2012. Natural elicitors, effectors and modulators of plant responses. Natural Product Reports, 29(11): 1288-1303. https://doi.org/10.1039/C2NP20053H
Metwally RA. 2020. Arbuscular mycorrhizal fungi and Trichoderma viride cooperative effect on biochemical, mineral content, and protein pattern of onion plants. Journal of Basic Microbiology, 60(8): 712-721. https://doi.org/10.1002/jobm.202000087
Mogren CL and Shikano I. 2021. Microbiota, pathogens, and parasites as mediators of tritrophic interactions between insect herbivores, plants, and pollinators. Journal of Invertebrate Pathology, 186: 107589. https://doi.org/10.1016/j.jip.2021.107589
Muvea AM, Meyhöfer R, Subramanian S, Poehling H-M, Ekesi S and Maniania NKJP. 2014. Colonization of onions by endophytic fungi and their impacts on the biology of Thrips tabaci. PLOS One, 9(9): e108242. https://doi.org/10.1371/journal.pone.0108242
Noman A, Aqeel M, Qasim M, Haider I and Lou Y. 2020. Plant-insect-microbe interaction: A love triangle between enemies in ecosystem. Science of the Total Environment, 699: 134181. https://doi.org/10.1016/j.scitotenv.2019.134181
Nordlund DA and Lewis W. 1976. Terminology of chemical releasing stimuli in intraspecific and interspecific interactions. Journal of Chemical Ecology, 2: 211-220. https://doi.org/10.1007/BF00987744
Oljira AM, Hussain T, Waghmode TR, Zhao H, Sun H, Liu X, Wang X and Liu B. 2020. Trichoderma enhances net photosynthesis, water use efficiency, and growth of wheat (Triticum aestivum L.) under salt stress. Microorganisms, 8(10): 1565.
https://doi.org/10.3390/microorganisms8101565
Papantoniou D, Vergara F, Weinhold A, Quijano T, Khakimov B, Pattison DI, Bak S, van Dam NM and Martínez-Medina A. 2021. Cascading Effects of Root Microbial Symbiosis on the Development and Metabolome of the Insect Herbivore Manduca sexta L. Metabolites, 11(11): 731. https://doi.org/10.3390/metabo11110731
Pappas ML, Broekgaarden C, Broufas GD, Kant MR, Messelink GJ, Steppuhn A, Wäckers F and Van Dam NM. 2017. Induced plant defences in biological control of arthropod pests: a double‐edged sword. Pest Management Science, 73(9): 1780-1788. https://doi.org/10.1002/ps.4587
Pappas ML, Samaras K, Koufakis I and Broufas GD. 2021. Beneficial soil microbes negatively affect spider mites and aphids in pepper. Agronomy, 11(9): 1831. https://doi.org/10.3390/agronomy11091831
Parrilli M, Sommaggio D, Tassini C, Di Marco S, Osti F, Ferrari R, Metruccio E, Masetti A and Burgio G. 2019. The role of Trichoderma spp. and silica gel in plant defence mechanisms and insect response in vineyard. Bulletin of Entomological Research, 109(6): 771-780. https://doi.org/ 10.1017/S0007485319000075
Pieterse CMJ, Zamioudis C, Berendsen RL, Weller DW, Van Wees SCM and Bakker PAHM. 2014. Induced Systemic Resistance by Beneficial Microbes. Annual Review of Phytopathology, 52: 347-375. https://doi.org/10.1146/annurev-phyto-082712-102340
Pineda A, Zheng S-J, Van Loon JJ, Pieterse CM and Dicke M. 2010. Helping plants to deal with insects: the role of beneficial soil-borne microbes. Trends in Plant Science, 15(9): 507-514. https://doi.org/10.1016/j.tplants.2010.05.007
Pineda A, Soler R, Weldegergis BT, Shimwela MM, Van Loon JJ and Dicke M. 2013. Non‐pathogenic rhizobacteria interfere with the attraction of parasitoids to aphid‐induced plant volatiles via jasmonic acid signalling. Plant, Cell & Environment, 36(2): 393-404. https://doi.org/10.1111/j.1365-3040.2012.02581.x
Pineda A, Soler R, Pozo MJ, Rasmann S and Turlings TC. 2015. Above-belowground interactions involving plants, microbes and insects. Frontiers in plant science, 6: 318. https://doi.org/10.3389/fpls.2015.00318
Pozo MI, Lievens B and Jacquemyn H. 2015. Impact of microorganisms on nectar chemistry, pollinator attraction and plant fitness. In: Peck RL (ed). Nectar: Production, Chemical Composition and Benefits to Animals and Plants. Nova Science Publishers Hauppauge, NY, USA, pp. 1-140.
Raps A and Vidal S. 1998. Indirect effects of an unspecialized endophytic fungus on specialized plant - herbivorous insect interactions. Oecologia, 114(4): 541-547. https://doi.org/10.1007/s004420050478
Rashid M, Khan A, Hossain MT and Chung YR. 2017. Induction of systemic resistance against aphids by endophytic Bacillus velezensis YC7010 via expressing PHYTOALEXIN DEFICIENT4 in Arabidopsis. Frontiers in Plant Science, 8: 211.
https://doi.org/10.3389/fpls.2017.00211
Risvanli MR. 2022. Determination of Population Performance and Feeding Capacity of Spodoptera Exigua on Trichoderma harzianum Applied Potato and Cotton Plant. Ph.D. Thesis. Van Yuzuncu Yil University, Faculty of Agriculture, Department of Plant Protection, Van, Türkiye. 131pp. https://tez.yok.gov.tr/UlusalTezMerkezi/TezGoster?key=sELqxhTlFGAjsbjOuuiyCOilWwmlXOaNvwbarU9-GY-4DrpbMCP6X9druMnXS6H7. Accessed on 12 June 2023.
Rişvanlı M and Fidan E. 2024. Beneficial Soil-Born Microorganisms for Weed and Insect Pest Management in Agriculture: Potential and Limitations [Paper presention]. 7th International Food, Agriculture and Veterinary Sciences Congress, Adana, Türkiye. https://www.gthk.org/_files/ugd/614b1f_652d00e07368401890fa186982547f32.pdf. Accessed on 12 April 2024.
Rudrappa T, Czymmek KJ, Pare PW and Bais HP. 2008. Root-Secreted Malic Acid Recruits Beneficial Soil Bacteria. Plant Physiology, 148(3): 1547-1556. https://doi.org/ 10.1104/pp.108.127613
Saharan B and Nehra V. 2011. Plant growth promoting rhizobacteria: a critical review. Life Sciences and Medicine Research, 21(1): 1-30.
Saini I, Aggarwal A and Kaushik P. 2019. Inoculation with mycorrhizal fungi and other microbes to improve the morpho-physiological and floral traits of Gazania rigens (L.) Gaertn. Agriculture, 9(3): 51. https://doi.org/10.3390/agriculture9030051
Samaras K, Mourtiadou S, Arampatzis T, Kakagianni M, Feka M, Wäckers F, Papadopoulou KK, Broufas GD and Pappas ML. 2023. Plant-mediated effects of beneficial microbes and a plant strengthener against spider mites in tomato. Plants, 12(4): 938. https://doi.org/10.3390/plants12040938
Sánchez-Sánchez H and Morquecho-Contreras A. 2017. Chemical plant defense against herbivores. In: Shields VDC. Herbivores. IntechOpen. http://dx.doi.org/10.5772/67346
Saravanakumar D, Lavanya N, Muthumeena B, Raguchander T, Suresh S and Samiyappan R. 2008. Pseudomonas fluorescens enhances resistance and natural enemy population in rice plants against leaffolder pest. Journal of Applied Entomology, 132(6): 469-479. https://doi.org/10.1111/j.1439-0418.2008.01278.x
Saravanakumar D, Muthumeena K, Lavanya N, Suresh S, Rajendran L, Raguchander T and Samiyappan R. 2007. Pseudomonas-induced defence molecules in rice plants against leaffolder (Cnaphalocrocis medinalis) pest. Pest Management Science, 63(7): 714-721. https://doi.org/ 10.1002/ps.1381
Schaeffer RN, Phillips CR, Duryea MC, Andicoechea J and Irwin RE. 2014. Nectar yeasts in the tall larkspur Delphinium barbeyi (Ranunculaceae) and effects on components of pollinator foraging behavior. PLOS One, 9(10): e108214. https://doi.org/10.1371/journal.pone.0108214
Seminara M, Atlihan R, Britton NF, Demir S, Risvanli MR and Venturino E. 2021. A more refined mathematical model for the Mycorrhiza-potato plant-Colorado potato beetle interactions. Ecological Complexity, 46: 100924. https://doi.org/10.1016/j.ecocom.2021.100924
Shikano I, Rosa C, Tan C-W and Felton GW. 2017. Tritrophic interactions: microbe-mediated plant effects on insect herbivores. Annual Review of Phytopathology, 55: 313-331. https://doi.org/10.1146/annurev-phyto-080516-035319
Silva BB, Banaay CG and Salamanez K. 2019. Trichoderma-Induced Systemic Resistance Against the Scale Insect (Unaspis Mabilis Lit Barbecho) in Lanzones (Lansium Domesticum CORR.). Agriculture & Forestry, 65(2): 59-78.
https://doi.org/10.17707/AgricultForest.65.2.05
Singh BK, Liu H and Trivedi P. 2020. Eco‐holobiont: a new concept to identify drivers of host‐associated microorganisms. Environmental microbiology, 22(2): 564-567. https://doi.org/10.1111/1462-2920.14900
Snoeren TAL, Van Poecke RMP and Dicke M. 2009. Multidisciplinary Approach to Unravelling the Relative Contribution of Different Oxylipins in Indirect Defense of Arabidopsis thaliana. Journal of Chemical Ecology, 35(9): 1021-1031. https://doi.org/10.1007/s10886-009-9696-3
Soler R, Bezemer TM, Cortesero AM, Van der Putten WH, Vet LE and Harvey JA. 2007. Impact of foliar herbivory on the development of a root-feeding insect and its parasitoid. Oecologia, 152(2): 257-264. https://doi.org/10.1007/s00442-006-0649-z
Soler R, Van der Putten WH, Harvey JA, Vet LE, Dicke M and Bezemer TM. 2012. Root herbivore effects on aboveground multitrophic interactions: patterns, processes and mechanisms. Journal of Chemical Ecology, 38: 755-767. https://doi.org/10.1007/s10886-012-0104-z
Song YY, Ye M, Li CY, Wang RL, Wei XC, Luo SM and Zeng RS. 2013. Priming of anti-herbivore defense in tomato by arbuscular mycorrhizal fungus and involvement of the jasmonate pathway. Journal of Chemical Ecology, 39(7): 1036-1044.
https://doi.org/10.1007/s10886-013-0312-1
Steppuhn A and Baldwin IT. 2008. Induced defenses and the cost-benefit paradigm. In: Schaller A (ed). Induced Plant Resistance to Herbivory. Springer, Dordrecht, pp. 61-83. https://doi.org/10.1007/978-1-4020-8182-8_3
Tahir M, Mirza MS, Hameed S, Dimitrov MR and Smidt H. 2015. Cultivation-based and molecular assessment of bacterial diversity in the rhizosheath of wheat under different crop rotations. PLOS One, 10(6): e0130030. https://doi.org/10.1371/journal.pone.0130030
UN (United Nation). 2022. World Population Prospects 2022: Summary of Results. UN DESA/POP/2022/TR/NO. 3. United Nations Population Division, New York, USA. 38pp.
Ushio M, Yamasaki E, Takasu H, Nagano AJ, Fujinaga S, Honjo MN, Ikemoto M, Sakai S and Kudoh H. 2015. Microbial communities on flower surfaces act as signatures of pollinator visitation. Scientific Reports, 5: 8695. https://doi.org/10.1038/srep08695
Vaello T, Sarde SJ, Marcos-García MÁ, de Boer JG and Pineda A. 2018. Modulation of plant-mediated interactions between herbivores of different feeding guilds: Effects of parasitism and belowground interactions. Scientific Reports, 8: 14424. https://doi.org/10.1038/s41598-018-32131-9
Valenzuela-Soto JH, Estrada-Hernandez MG, Ibarra-Laclette E and Delano-Frier JP. 2010. Inoculation of tomato plants (Solanum lycopersicum) with growth-promoting Bacillus subtilis retards whitefly Bemisia tabaci development. Planta, 231(2): 397-410. https://doi.org/10.1007/s00425-009-1061-9
van Dam NM and Heil M. 2011. Multitrophic interactions below and above ground: en route to the next level. Journal of Ecology, 99(1): 77-88. https://doi.org/10.1111/j.1365-2745.2010.01761.x
van Dijk LJ. 2021. Interactions between plants, microbes and insects. Department of Ecology, Environment and Plant Sciences, Stockholm University.
Van Oosten VR, Bodenhausen N, Reymond P, Van Pelt JA, Van Loon L, Dicke M and Pieterse CM. 2008. Differential effectiveness of microbially induced resistance against herbivorous insects in Arabidopsis. Molecular Plant-Microbe Interactions, 21(7): 919-930. https://doi.org/10.1094/MPMI-21-7-0919
Varone L, Logarzo GA, Briano JA, Hight SD and Carpenter JE. 2014. Cactoblastis cactorum (Berg)(Lepidoptera: Pyralidae) use of Opuntia host species in Argentina. Biological Invasions, 16: 2367-2380. https://doi.org/10.1007/s10530-014-0670-9
Verma PP, Shelake RM, Das S, Sharma P and Kim J-Y. 2019. Plant growth-promoting rhizobacteria (PGPR) and fungi (PGPF): potential biological control agents of diseases and pests. In: Singh D, Gupta V and Prabha R (eds). Microbial interventions in agriculture and environment. Springer, Singapore, pp. 281-311. https://doi.org/10.1007/978-981-13-8391-5_11
Vinale F, Manganiello G, Nigro M, Mazzei P, Piccolo A, Pascale A, Ruocco M, Marra R, Lombardi N, Lanzuise S et al. 2014. A novel fungal metabolite with beneficial properties for agricultural applications. Molecules, 19(7): 9760-9772.
https://doi.org/10.3390/molecules19079760
Wilkinson TD, Ferrari J, Hartley SE and Hodge A. 2019. Aphids can acquire the nitrogen delivered to plants by arbuscular mycorrhizal fungi. Functional Ecology, 33(4): 576-586. https://doi.org/10.1111/1365-2435.13283
Woo SL and Pepe O. 2018. Microbial consortia: promising probiotics as plant biostimulants for sustainable agriculture. Frontiers in Plant Science, 9: 1801. https://doi.org/10.3389/fpls.2018.01801
Zebelo SA and Maffei ME. 2015. Role of early signalling events in plant–insect interactions. Journal of Experimental Botany, 66(2): 435-448. https://doi.org/10.1093/jxb/eru480
Zehnder G, Kloepper J, Yao CB and Wei G. 1997. Induction of systemic resistance in cucumber against cucumber beetles (Coleoptera: Chrysomelidae) by plant growth-promoting rhizobacteria. Journal of economic entomology, 90(2): 391-396. https://doi.org/10.1093/jee/90.2.391
Zytynska SE. 2021. Embracing the complexity of plant–microbe–insect interactions under a changing climate for sustainable agriculture. Current Opinion in Insect Science, 44: 89-94. https://doi.org/10.1016/j.cois.2021.04.002
Agbessenou A, Akutse KS, Yusuf AA, Ekesi S, Subramanian S and Khamis FM. 2020. Endophytic fungi protect tomato and nightshade plants against Tuta absoluta (Lepidoptera: Gelechiidae) through a hidden friendship and cryptic battle. Scientific reports, 10: 22195. https://doi.org/10.1038/s41598-020-78898-8
Agbessenou A, Akutse KS, Yusuf AA and Khamis FM. 2022. The Endophyte Trichoderma asperellum M2RT4 Induces the Systemic Release of Methyl Salicylate and (Z)-jasmone in Tomato Plant Affecting Host Location and Herbivory of Tuta absoluta. Frontiers in Plant Science, 13: 860309. https://doi.org/10.3389/fpls.2022.860309
Alınç T, Cusumano A, Peri E, Torta L and Colazza S. 2021. Trichoderma harzianum strain T22 modulates direct defense of tomato plants in response to Nezara viridula feeding activity. Journal of Chemical Ecology, 47: 455-462. https://doi.org/10.1007/s10886-021-01260-3
Alınç T, Peri E, Torta L, Guarino S, Colazza S, Lievens B and Cusumano A. 2024. Root inoculation with beneficial soil microbes enhances indirect plant defences induced by insect feeding and egg deposition. Functional Ecology, 38(8): 1811-1821.
https://doi.org/10.1111/1365-2435.14594
Aneja K, Khan S and Aneja A. 2016. Biopesticides an eco-friendly pestmanagement approach in agriculture: status and prospects. Kavaka, 47: 145-154.
Aranega-Bou P, de la O Leyva M, Finiti I, García-Agustín P and González-Bosch C. 2014. Priming of plant resistance by natural compounds. Hexanoic acid as a model. Frontiers in Plant Science, 5: 488. https://doi.org/10.3389/fpls.2014.00488
Arimura G-i, Ozawa R, Kugimiya S, Takabayashi J and Bohlmann Jr. 2004. Herbivore-induced defense response in a model legume. Two-spotted spider mites induce emission of (E)-β-ocimene and transcript accumulation of (E)-β-ocimene synthase in Lotus japonicus. Plant Physiology, 135(4): 1976-1983. https://doi.org/10.1104/pp.104.042929
Arora R and Dhaliwal G. 1996. Agroecological changes and insect pest problems in Indian agriculture. Indian Journal of Ecology, 23(2): 109-122.
Atlihan R, Britton NF, Demir S, Papasidero A, Risvanli MR, Seminara M and Venturino E. 2021. Can symbiotic fungi protect plants from insect pests? A simple mathematical model. Computational and Mathematical Methods, 3(6): e1121.https://doi.org/10.1002/cmm4.1121
Bais HP, Weir TL, Perry LG, Gilroy S and Vivanco JM. 2006. The role of root exudates in rhizosphere interations with plants and other organisms. In Annual Review of Plant Biology, 57: 233-266. https://doi.org/10.1146/annurev.arplant.57.032905.105159
Bakker PA, Pieterse CM, de Jonge R and Berendsen RL. 2018. The soil-borne legacy. Cell, 172(6): 1178-1180.
Ballhorn DJ, Elias JD, Balkan MA, Fordyce RF and Kennedy PG. 2017. Colonization by nitrogen-fixing Frankia bacteria causes short-term increases in herbivore susceptibility in red alder (Alnus rubra) seedlings. Oecologia, 184(2): 497-506. https://doi.org/10.1007/s00442-017-3888-2
Barber NA, Adler LS, Theis N, Hazzard RV and Kiers ET. 2012. Herbivory reduces plant interactions with above‐and belowground antagonists and mutualists. Ecology, 93(7): 1560-1570. https://doi.org/10.1890/11-1691.1
Barber NA, Milano NJ, Kiers ET, Theis N, Bartolo V, Hazzard RV and Adler LS. 2015. Root herbivory indirectly affects above‐and below‐ground community members and directly reduces plant performance. Journal of Ecology, 103(6): 1509-1518. https://doi.org/10.1111/1365-2745.12464
Battaglia D, Bossi S, Cascone P, Digilio MC, Prieto JD, Fanti P, Guerrieri E, Iodice L, Lingua G, Lorito M, et al. 2013. Tomato below ground–above ground interactions: Trichoderma longibrachiatum affects the performance of Macrosiphum euphorbiae and its natural antagonists. Molecular Plant-Microbe Interactions, 26(10): 1249-1256. https://doi.org/10.1094/MPMI-02-13-0059-R
Bernaola L and Stout MJ. 2019. Effects of arbuscular mycorrhizal fungi on rice-herbivore interactions are soil-dependent. Scientific reports, 9(1): 1-12. https://doi.org/10.1038/s41598-019-50354-2
Bezemer TM and van Dam NM. 2005. Linking aboveground and belowground interactions via induced plant defenses. Trends in Ecology & Evolution, 20(11): 617-624. https://doi.org/10.1016/j.tree.2005.08.006
Biere A and Bennett AE. 2013. Three-way interactions between plants, microbes and insects. Functional Ecology, 27(3): 567-573. https://doi.org/10.1111/1365-2435.12100
Bramble BJ. 1989. An environmentalists's view of pest management and the green revolution. International Journal of Pest Management, 35(3): 228-230. https://doi.org/10.1080/09670878909371370
Cahill JF, Jr., Elle E, Smith GR and Shore BH. 2008. Disruption of a belowground mutualism alters interactions between plants and their floral visitors. Ecology, 89(7): 1791-1801. https://doi.org/10.1890/07-0719.1
Chen K, Kleijn D, Scheper J and Fijen TP. 2022. Additive and synergistic effects of arbuscular mycorrhizal fungi, insect pollination and nutrient availability in a perennial fruit crop. Agriculture, Ecosystems & Environment, 325: 107742. https://doi.org/10.1016/j.agee.2021.107742
Chen L and Liu Y. 2024. The function of root exudates in the root colonization by beneficial soil rhizobacteria. Biology, 13(2): 95. https://doi.org/10.3390/biology13020095
Clavijo Mccormick A, Irmisch S, Reinecke A, Boeckler GA, Veit D, Reichelt M, Hansson BS, Gershenzon J, Köllner TG and Unsicker SB. 2014. Herbivore‐induced volatile emission in black poplar: Regulation and role in attracting herbivore enemies. Plant, Cell & Environment, 37(8): 1909-1923. https://doi.org/10.1111/pce.12287
Commare RR, Nandakumar R, Kandan A, Suresh S, Bharathi M, Raguchander T and Samiyappan R. 2002. Pseudomonas fluorescens based bio-formulation for the management of sheath blight disease and leaffolder insect in rice. Crop Protection, 21(8): 671-677. https://doi.org/10.1016/S0261-2194(02)00020-0
Contreras-Cornejo HA, Macías-Rodríguez L, del-Val E and Larsen J. 2018. The root endophytic fungus Trichoderma atroviride induces foliar herbivory resistance in maize plants. Applied Soil Ecology, 124: 45-53. https://doi.org/10.1016/j.apsoil.2017.10.004
Contreras-Cornejo HA, Macías-Rodríguez L, del-Val E and Larsen J. 2020. Interactions of Trichoderma with plants, insects, and plant pathogen microorganisms: chemical and molecular bases. In: Mérillon J and Ramawat K (eds). Co-evolution of secondary metabolites. Springer, Cham, pp. 263-290. https://doi.org/10.1007/978-3-319-96397-6_23
Contreras-Cornejo HA, Macias-Rodriguez L, Real-Santillan RO, Lopez-Carmona D, Garcia-Gomez G, Galicia-Gallardo AP, Alfaro-Cuevas R, González-Esquivel CE, Najera-Rincón MB, Adame-Garnica SG et al. 2021a. In a belowground multitrophic interaction, Trichoderma harzianum induces maize root herbivore tolerance against Phyllophaga vetula. Pest Management Science, 77(9): 3952-3963.
https://doi.org/10.1002/ps.6415
Contreras-Cornejo HA, Viveros-Bremauntz F, del-Val E, Macías-Rodríguez L, López-Carmona DA, Alarcón A, González-Esquivel CE and Larsen J. 2021b. Alterations of foliar arthropod communities in a maize agroecosystem induced by the root-associated fungus Trichoderma harzianum. Journal of Pest Science, 94(2): 363-374. https://doi.org/10.1007/s10340-020-01261-3
Coppola M, Cascone P, Chiusano ML, Colantuono C, Lorito M, Pennacchio F, Rao R, Lois Woo S, Guerrieri E and Digilio MC. 2017. Trichoderma harzianum enhances tomato indirect defense against aphids. Insect Science, 24(6): 1025-1033.
https://doi.org/10.1111/1744-7917.12475
Coppola M, Cascone P, Lelio ID, Woo SL, Lorito M, Rao R, Pennacchio F, Guerrieri E and Digilio MC. 2019a. Trichoderma atroviride P1 colonization of tomato plants enhances both direct and indirect defense barriers against insects. Frontiers in Physiology, 10: 813. https://doi.org/10.3389/fphys.2019.00813
Coppola M, Diretto G, Digilio MC, Woo SL, Giuliano G, Molisso D, Pennacchio F, Matteo L and Rao R. 2019b. Transcriptome and metabolome reprogramming in tomato plants by Trichoderma harzianum strain T22 primes and enhances defence responses against aphids. Frontiers in Physiology, 10: 745. https://doi.org/10.3389/fphys.2019.00745
Courtney S and Forsberg J. 1988. Host use by two pierid butterflies varies with host density. Functional Ecology, 2(1): 67-75. https://doi.org/10.2307/2389462
Cusumano A, Bella P, Peri E, Rostás M, Guarino S, Lievens B and Colazza S. 2022. Nectar-inhabiting bacteria affect olfactory responses of an insect parasitoid by altering nectar odors. Microbial Ecology, 86(1): 364-376. https://doi.org/10.1007/s00248-022-02078-6
Delory BM, Schempp H, Spachmann SM, Störzer L, van Dam NM, Temperton VM and Weinhold A. 2021. Soil chemical legacies trigger species‐specific and context‐dependent root responses in later arriving plants. Plant, Cell & Environment, 44(4): 1215-1230. https://doi.org/10.1111/pce.13999
Dhaliwal G, Jindal V and Dhawan A. 2010. Insect pest problems and crop losses: changing trends. Indian Journal of Ecology, 37(1): 1-7.
Di Lelio I, Coppola M, Comite E, Molisso D, Lorito M, Woo SL, Pennacchio F, Rao R and Digilio MC. 2021. Temperature Differentially Influences the Capacity of Trichoderma Species to Induce Plant Defense Responses in Tomato Against Insect Pests. Frontiers in Plant Science, 12: 678830. https://doi.org/10.3389/fpls.2021.678830
Dicke M, van Loon JJA and Soler R. 2009. Chemical complexity of volatiles from plants induced by multiple attack. Nature Chemical Biology, 5(5): 317-324. https://doi.org/10.1038/nchembio.169
Eichmann R, Richards L and Schäfer P. 2021. Hormones as go‐betweens in plant microbiome assembly. The Plant Journal, 105(2): 518-541. https://doi.org/10.1111/tpj.15135
El-Maraghy S, Tohamy A and Hussein K. 2021. Plant protection properties of the Plant Growth-Promoting Fungi (PGPF): Mechanisms and potentiality. Current Research in Environmental & Applied Mycology (Journal of Fungal Biology), 11(1): 391-415. https://doi.org/10.5943/cream/11/1/29
Erb M, Lenk C, Degenhardt J and Turlings TCJ. 2009. The underestimated role of roots in defense against leaf attackers. Trends in Plant Science, 14(12): 653-659. https://doi.org/10.1016/j.tplants.2009.08.006
Erb M and Reymond P. 2019. Molecular interactions between plants and insect herbivores. Annual Review of Plant Biology, 70: 527-557. https://doi.org/10.1146/annurev-arplant-050718-095910
FAO (Food and Agriculture Organization of the United Nations). 2018. Shaping the future of livestock sustainably, responsibly, efficiently [Paper presention]. The 10th Global Forum for Food and Agriculture, Germany, Berlin. https://openknowledge.fao.org/handle/20.500.14283/i8384en. Accessed on 12 June 2023.
FAO (Food and Agriculture Organization of the United Nations). 2021. The state of food security and nutrition in the world 2021, Rome, Italy. https://policycommons.net/artifacts/1850109/the-state-of-food-security-and-nutrition-in-the-world-2021/2596732/. Accessed on 02 February 2022.
Fernandez‐Conradi P, Jactel H, Robin C, Tack AJ and Castagneyrol B. 2018. Fungi reduce preference and performance of insect herbivores on challenged plants. Ecology, 99(2): 300-311. https://doi.org/10.1002/ecy.2044
Figueiredo MdVB, Seldin L, de Araujo FF and Mariano RdLR. 2010. Plant Growth Promoting Rhizobacteria: Fundamentals and Applications. In: Maheshwari D (ed). Plant Growth and Health Promoting Bacteria. Microbiology Monographs. Springer, Berlin, Heidelberg, pp. 21-43. https://doi.org/10.1007/978-3-642-13612-2_2
Fontana A, Reichelt M, Hempel S, Gershenzon J and Unsicker SB. 2009. The Effects of Arbuscular Mycorrhizal Fungi on Direct and Indirect Defense Metabolites of Plantago lanceolata L. Journal of Chemical Ecology, 35(7): 833-843. https://doi.org/10.1007/s10886-009-9654-0
Fried G, Chauvel B, Reynaud P and Sache I. 2017. Decreases in Crop Production by Non-native Weeds, Pests, and Pathogens. In: Vilà M and Hulme P (eds). Impact of Biological Invasions on Ecosystem Services. Invading Nature - Springer Series in Invasion Ecology, vol 12. Springer, Cham, pp. 83-101. https://doi.org/10.1007/978-3-319-45121-3_6
Friman J, Karssemeijer PN, Haller J, de Kreek K, van Loon JJ and Dicke M. 2021. Shoot and root insect herbivory change the plant rhizosphere microbiome and affects cabbage–insect interactions through plant–soil feedback. New Phytologist, 232(6): 2475-2490. https://doi.org/10.1111/nph.17746
Gandhi PI, Gunasekaran K and Sa T. 2006. Neem oil as a potential seed dresser for managing Homopterous sucking pests of Okra (Abelmoschus esculentus (L.) Moench). Journal of Pest Science, 79(2): 103-111. https://doi.org/10.1007/s10340-006-0122-0
Gange AC, Brown VK and Aplin DM. 2003. Multitrophic links between arbuscular mycorrhizal fungi and insect parasitoids. Ecology Letters, 6(12): 1051-1055. https://doi.org/10.1046/j.1461-0248.2003.00540.x
Gange AC, Brown VK and Aplin DM. 2005. Ecological specificity of arbuscular mycorrhizae: evidence from foliar- and seed-feeding insects. Ecology, 86(3): 603-611. https://doi.org/10.1890/04-0967
Gange AC and Smith AK. 2005. Arbuscular mycorrhizal fungi influence visitation rates of pollinating insects. Ecological Entomology, 30(5): 600-606. https://doi.org/10.1111/j.0307-6946.2005.00732.x
Gehring C and Bennett A. 2009. Mycorrhizal fungal–plant–insect interactions: the importance of a community approach. Environmental Entomology, 38(1): 93-102. https://doi.org/10.1603/022.038.0111
Ghosh SK and Pal S. 2016. Entomopathogenic potential of Trichoderma longibrachiatum and its comparative evaluation with malathion against the insect pest Leucinodes orbonalis. Environmental Monitoring and Assessment, 188: 37. https://doi.org/10.1007/s10661-015-5053-x
Good AP, Gauthier M-PL, Vannette RL and Fukami T. 2014. Honey bees avoid nectar colonized by three bacterial species, but not by a yeast species, isolated from the bee gut. PLOS One, 9(1): e86494. https://doi.org/10.1371/journal.pone.0086494
Grabka R, d’Entremont TW, Adams SJ, Walker AK, Tanney JB, Abbasi PA and Ali S. 2022. Fungal endophytes and their role in agricultural plant protection against pests and pathogens Plants, 11(3): 384. https://doi.org/10.3390/plants11030384
Grayston SJ, Dawson LA, Treonis AM, Murray PJ, Ross J, Reid EJ and MacDougall R. 2001. Impact of root herbivory by insect larvae on soil microbial communities. European Journal of Soil Biology, 37(4): 277-280. https://doi.org/10.1016/S1164-5563(01)01098-6
Guerrieri E, Lingua G, Digilio MC, Massa N and Berta G. 2004. Do interactions between plant roots and the rhizosphere affect parasitoid behaviour? Ecological Entomology, 29(6): 753-756. https://doi.org/10.1111/j.0307-6946.2004.00644.x
Harman GE, Howell CR, Viterbo A, Chet I and Lorito M. 2004. Trichoderma species - Opportunistic, avirulent plant symbionts. Nature Reviews Microbiology, 2(1): 43-56. https://doi.org/10.1038/nrmicro797
Harman GE. 2006. Overview of mechanisms and uses of Trichoderma spp. Phytopathology, 96(2): 190-194. https://doi.org/10.1094/PHYTO-96-0190
Hauser TP, Christensen S, Heimes C and Kiær LP. 2013. Combined effects of arthropod herbivores and phytopathogens on plant performance. Functional Ecology, 27(3): 623-632. https://doi.org/10.1111/1365-2435.12053
Heil M. 2014. Herbivore‐induced plant volatiles: targets, perception and unanswered questions. New Phytologist, 204: 297-306. https://doi.org/10.1111/nph.12977
Hempel S, Stein C, Unsicker SB, Renker C, Auge H, Weisser WW and Buscot F. 2009. Specific bottom–up effects of arbuscular mycorrhizal fungi across a plant–herbivore–parasitoid system. Oecologia, 160: 267-277. https://doi.org/10.1007/s00442-009-1294-0
Herman MAB, Nault BA and Smart CD. 2008. Effects of plant growth-promoting rhizobacteria on bell pepper production and green peach aphid infestations in New York. Crop Protection, 27(6): 996-1002. https://doi.org/10.1016/j.cropro.2007.12.004
Huang P-C, Yuan P, Grunseich JM, Taylor J, Tiénébo E-O, Pierson EA, Bernal JS, Kenerley CM and Kolomiets MV. 2024. Trichoderma virens and Pseudomonas chlororaphis Differentially Regulate Maize Resistance to Anthracnose Leaf Blight and Insect Herbivores When Grown in Sterile versus Non-Sterile Soils. Plants, 13(9): 1240. https://doi.org/10.3390/plants13091240
IFPRI (The International Food Policy Research Institute). 2016. Global Nutrition Report 2016: From Promise to Impact: Ending Malnutrition by 2030. Washington, DC: International Food Policy Research Institute. 156pp.
Jaber LR and Vidal S. 2010. Fungal endophyte negative effects on herbivory are enhanced on intact plants and maintained in a subsequent generation. Ecological Entomology, 35(1): 25-36. https://doi.org/10.1111/j.1365-2311.2009.01152.x
Jafarbeigi F, Samih M, Alaei H and Shirani H. 2020. Induced tomato resistance against Bemisia tabaci triggered by salicylic acid, β-Aminobutyric Acid, and Trichoderma. Neotropical Entomology, 49(3): 456-467. https://doi.org/10.1007/s13744-020-00771-0
Johnson SN, Hawes C and Karley AJ. 2009. Reappraising the role of plant nutrients as mediators of interactions between root- and foliar-feeding insects. Functional Ecology, 23(4): 699-706. https://doi.org/10.1111/j.1365-2435.2009.01550.x
Kempel A, Brandl R and Schadler M. 2009. Symbiotic soil microorganisms as players in aboveground plant-herbivore interactions - the role of rhizobia. Oikos, 118(4): 634-640. https://doi.org/10.1111/j.1600-0706.2008.17418.x
Kessler A and Halitschke R. 2009. Testing the potential for conflicting selection on floral chemical traits by pollinators and herbivores: predictions and case study. Functional Ecology, 23(5): 901-912. http://www.jstor.org/stable/40407699. Accessed on 12 July 2022.
Kızılkan ND, Konuş M, Rişvanlı MR, Yılmaz C, Kara H, Özgökçe MS, Çetin D and Atlıhan R. 2025. Impact of Beneficial Microorganisms Inoculated Cotton Plants on Spodoptera exigua (Lepidoptera: Noctuidae). Neotropical Entomology, 54(1): 7. https://doi.org/10.1007/s13744-024-01221-x
Kim WI, Cho WK, Kim SN, Chu HS, Ryu KY, Yun JC and Park CS. 2011. Genetic diversity of cultivable plant growth-promoting rhizobacteria in Korea. Journal of Microbiology and Biotechnology, 21(8): 777-790. https://doi.org/10.4014/jmb.1101.01031
Knauer AC and Schiestl FP. 2015. Bees use honest floral signals as indicators of reward when visiting flowers. Ecology Letters, 18(2): 135-143. https://doi.org/10.1111/ele.12386
Kostenko O and Bezemer TM. 2020. Abiotic and biotic soil legacy effects of plant diversity on plant performance. Frontiers in Ecology and Evolution, 8: 87. https://doi.org/10.3389/fevo.2020.00087
Lazebnik J, Frago E, Dicke M and van Loon JJ. 2014. Phytohormone mediation of interactions between herbivores and plant pathogens. Journal of Chemical Ecology, 40(7): 730-741. https://doi.org/10.1007/s10886-014-0480-7
Leroy PD, Sabri A, Verheggen FJ, Francis F, Thonart P and Haubruge E. 2011. The semiochemically mediated interactions between bacteria and insects. Chemoecology, 21: 113-122. https://doi.org/10.1007/s00049-011-0074-6
Liu Z, Jiang C, Zhai T, Chang Y, Yao Z, Liu Z and Zhang R. 2018. Effects of Trichoderma asperellum combined application on growth and photosynthesis characteristics of Populus davidiana × P. alba var. pyramidlis. Bulletin of Botanical Research, 38(1): 64-74. https://doi.org/10.7525/j.issn.1673-5102.2018.01.008
Lugtenberg B and Kamilova F. 2009. Plant-growth-promoting rhizobacteria. Annual Review of Microbiology, 63: 541-556. https://doi.org/10.1146/annurev.micro.62.081307.162918
Macías-Rodríguez L, Contreras-Cornejo HA, Adame-Garnica SG, Del-Val E and Larsen J. 2020. The interactions of Trichoderma at multiple trophic levels: Inter-kingdom communication. Microbiological Research, 240: 126552. https://doi.org/10.1016/j.micres.2020.126552
Maffei ME, Arimura G-I and Mithöfer A. 2012. Natural elicitors, effectors and modulators of plant responses. Natural Product Reports, 29(11): 1288-1303. https://doi.org/10.1039/C2NP20053H
Metwally RA. 2020. Arbuscular mycorrhizal fungi and Trichoderma viride cooperative effect on biochemical, mineral content, and protein pattern of onion plants. Journal of Basic Microbiology, 60(8): 712-721. https://doi.org/10.1002/jobm.202000087
Mogren CL and Shikano I. 2021. Microbiota, pathogens, and parasites as mediators of tritrophic interactions between insect herbivores, plants, and pollinators. Journal of Invertebrate Pathology, 186: 107589. https://doi.org/10.1016/j.jip.2021.107589
Muvea AM, Meyhöfer R, Subramanian S, Poehling H-M, Ekesi S and Maniania NKJP. 2014. Colonization of onions by endophytic fungi and their impacts on the biology of Thrips tabaci. PLOS One, 9(9): e108242. https://doi.org/10.1371/journal.pone.0108242
Noman A, Aqeel M, Qasim M, Haider I and Lou Y. 2020. Plant-insect-microbe interaction: A love triangle between enemies in ecosystem. Science of the Total Environment, 699: 134181. https://doi.org/10.1016/j.scitotenv.2019.134181
Nordlund DA and Lewis W. 1976. Terminology of chemical releasing stimuli in intraspecific and interspecific interactions. Journal of Chemical Ecology, 2: 211-220. https://doi.org/10.1007/BF00987744
Oljira AM, Hussain T, Waghmode TR, Zhao H, Sun H, Liu X, Wang X and Liu B. 2020. Trichoderma enhances net photosynthesis, water use efficiency, and growth of wheat (Triticum aestivum L.) under salt stress. Microorganisms, 8(10): 1565.
https://doi.org/10.3390/microorganisms8101565
Papantoniou D, Vergara F, Weinhold A, Quijano T, Khakimov B, Pattison DI, Bak S, van Dam NM and Martínez-Medina A. 2021. Cascading Effects of Root Microbial Symbiosis on the Development and Metabolome of the Insect Herbivore Manduca sexta L. Metabolites, 11(11): 731. https://doi.org/10.3390/metabo11110731
Pappas ML, Broekgaarden C, Broufas GD, Kant MR, Messelink GJ, Steppuhn A, Wäckers F and Van Dam NM. 2017. Induced plant defences in biological control of arthropod pests: a double‐edged sword. Pest Management Science, 73(9): 1780-1788. https://doi.org/10.1002/ps.4587
Pappas ML, Samaras K, Koufakis I and Broufas GD. 2021. Beneficial soil microbes negatively affect spider mites and aphids in pepper. Agronomy, 11(9): 1831. https://doi.org/10.3390/agronomy11091831
Parrilli M, Sommaggio D, Tassini C, Di Marco S, Osti F, Ferrari R, Metruccio E, Masetti A and Burgio G. 2019. The role of Trichoderma spp. and silica gel in plant defence mechanisms and insect response in vineyard. Bulletin of Entomological Research, 109(6): 771-780. https://doi.org/ 10.1017/S0007485319000075
Pieterse CMJ, Zamioudis C, Berendsen RL, Weller DW, Van Wees SCM and Bakker PAHM. 2014. Induced Systemic Resistance by Beneficial Microbes. Annual Review of Phytopathology, 52: 347-375. https://doi.org/10.1146/annurev-phyto-082712-102340
Pineda A, Zheng S-J, Van Loon JJ, Pieterse CM and Dicke M. 2010. Helping plants to deal with insects: the role of beneficial soil-borne microbes. Trends in Plant Science, 15(9): 507-514. https://doi.org/10.1016/j.tplants.2010.05.007
Pineda A, Soler R, Weldegergis BT, Shimwela MM, Van Loon JJ and Dicke M. 2013. Non‐pathogenic rhizobacteria interfere with the attraction of parasitoids to aphid‐induced plant volatiles via jasmonic acid signalling. Plant, Cell & Environment, 36(2): 393-404. https://doi.org/10.1111/j.1365-3040.2012.02581.x
Pineda A, Soler R, Pozo MJ, Rasmann S and Turlings TC. 2015. Above-belowground interactions involving plants, microbes and insects. Frontiers in plant science, 6: 318. https://doi.org/10.3389/fpls.2015.00318
Pozo MI, Lievens B and Jacquemyn H. 2015. Impact of microorganisms on nectar chemistry, pollinator attraction and plant fitness. In: Peck RL (ed). Nectar: Production, Chemical Composition and Benefits to Animals and Plants. Nova Science Publishers Hauppauge, NY, USA, pp. 1-140.
Raps A and Vidal S. 1998. Indirect effects of an unspecialized endophytic fungus on specialized plant - herbivorous insect interactions. Oecologia, 114(4): 541-547. https://doi.org/10.1007/s004420050478
Rashid M, Khan A, Hossain MT and Chung YR. 2017. Induction of systemic resistance against aphids by endophytic Bacillus velezensis YC7010 via expressing PHYTOALEXIN DEFICIENT4 in Arabidopsis. Frontiers in Plant Science, 8: 211.
https://doi.org/10.3389/fpls.2017.00211
Risvanli MR. 2022. Determination of Population Performance and Feeding Capacity of Spodoptera Exigua on Trichoderma harzianum Applied Potato and Cotton Plant. Ph.D. Thesis. Van Yuzuncu Yil University, Faculty of Agriculture, Department of Plant Protection, Van, Türkiye. 131pp. https://tez.yok.gov.tr/UlusalTezMerkezi/TezGoster?key=sELqxhTlFGAjsbjOuuiyCOilWwmlXOaNvwbarU9-GY-4DrpbMCP6X9druMnXS6H7. Accessed on 12 June 2023.
Rişvanlı M and Fidan E. 2024. Beneficial Soil-Born Microorganisms for Weed and Insect Pest Management in Agriculture: Potential and Limitations [Paper presention]. 7th International Food, Agriculture and Veterinary Sciences Congress, Adana, Türkiye. https://www.gthk.org/_files/ugd/614b1f_652d00e07368401890fa186982547f32.pdf. Accessed on 12 April 2024.
Rudrappa T, Czymmek KJ, Pare PW and Bais HP. 2008. Root-Secreted Malic Acid Recruits Beneficial Soil Bacteria. Plant Physiology, 148(3): 1547-1556. https://doi.org/ 10.1104/pp.108.127613
Saharan B and Nehra V. 2011. Plant growth promoting rhizobacteria: a critical review. Life Sciences and Medicine Research, 21(1): 1-30.
Saini I, Aggarwal A and Kaushik P. 2019. Inoculation with mycorrhizal fungi and other microbes to improve the morpho-physiological and floral traits of Gazania rigens (L.) Gaertn. Agriculture, 9(3): 51. https://doi.org/10.3390/agriculture9030051
Samaras K, Mourtiadou S, Arampatzis T, Kakagianni M, Feka M, Wäckers F, Papadopoulou KK, Broufas GD and Pappas ML. 2023. Plant-mediated effects of beneficial microbes and a plant strengthener against spider mites in tomato. Plants, 12(4): 938. https://doi.org/10.3390/plants12040938
Sánchez-Sánchez H and Morquecho-Contreras A. 2017. Chemical plant defense against herbivores. In: Shields VDC. Herbivores. IntechOpen. http://dx.doi.org/10.5772/67346
Saravanakumar D, Lavanya N, Muthumeena B, Raguchander T, Suresh S and Samiyappan R. 2008. Pseudomonas fluorescens enhances resistance and natural enemy population in rice plants against leaffolder pest. Journal of Applied Entomology, 132(6): 469-479. https://doi.org/10.1111/j.1439-0418.2008.01278.x
Saravanakumar D, Muthumeena K, Lavanya N, Suresh S, Rajendran L, Raguchander T and Samiyappan R. 2007. Pseudomonas-induced defence molecules in rice plants against leaffolder (Cnaphalocrocis medinalis) pest. Pest Management Science, 63(7): 714-721. https://doi.org/ 10.1002/ps.1381
Schaeffer RN, Phillips CR, Duryea MC, Andicoechea J and Irwin RE. 2014. Nectar yeasts in the tall larkspur Delphinium barbeyi (Ranunculaceae) and effects on components of pollinator foraging behavior. PLOS One, 9(10): e108214. https://doi.org/10.1371/journal.pone.0108214
Seminara M, Atlihan R, Britton NF, Demir S, Risvanli MR and Venturino E. 2021. A more refined mathematical model for the Mycorrhiza-potato plant-Colorado potato beetle interactions. Ecological Complexity, 46: 100924. https://doi.org/10.1016/j.ecocom.2021.100924
Shikano I, Rosa C, Tan C-W and Felton GW. 2017. Tritrophic interactions: microbe-mediated plant effects on insect herbivores. Annual Review of Phytopathology, 55: 313-331. https://doi.org/10.1146/annurev-phyto-080516-035319
Silva BB, Banaay CG and Salamanez K. 2019. Trichoderma-Induced Systemic Resistance Against the Scale Insect (Unaspis Mabilis Lit Barbecho) in Lanzones (Lansium Domesticum CORR.). Agriculture & Forestry, 65(2): 59-78.
https://doi.org/10.17707/AgricultForest.65.2.05
Singh BK, Liu H and Trivedi P. 2020. Eco‐holobiont: a new concept to identify drivers of host‐associated microorganisms. Environmental microbiology, 22(2): 564-567. https://doi.org/10.1111/1462-2920.14900
Snoeren TAL, Van Poecke RMP and Dicke M. 2009. Multidisciplinary Approach to Unravelling the Relative Contribution of Different Oxylipins in Indirect Defense of Arabidopsis thaliana. Journal of Chemical Ecology, 35(9): 1021-1031. https://doi.org/10.1007/s10886-009-9696-3
Soler R, Bezemer TM, Cortesero AM, Van der Putten WH, Vet LE and Harvey JA. 2007. Impact of foliar herbivory on the development of a root-feeding insect and its parasitoid. Oecologia, 152(2): 257-264. https://doi.org/10.1007/s00442-006-0649-z
Soler R, Van der Putten WH, Harvey JA, Vet LE, Dicke M and Bezemer TM. 2012. Root herbivore effects on aboveground multitrophic interactions: patterns, processes and mechanisms. Journal of Chemical Ecology, 38: 755-767. https://doi.org/10.1007/s10886-012-0104-z
Song YY, Ye M, Li CY, Wang RL, Wei XC, Luo SM and Zeng RS. 2013. Priming of anti-herbivore defense in tomato by arbuscular mycorrhizal fungus and involvement of the jasmonate pathway. Journal of Chemical Ecology, 39(7): 1036-1044.
https://doi.org/10.1007/s10886-013-0312-1
Steppuhn A and Baldwin IT. 2008. Induced defenses and the cost-benefit paradigm. In: Schaller A (ed). Induced Plant Resistance to Herbivory. Springer, Dordrecht, pp. 61-83. https://doi.org/10.1007/978-1-4020-8182-8_3
Tahir M, Mirza MS, Hameed S, Dimitrov MR and Smidt H. 2015. Cultivation-based and molecular assessment of bacterial diversity in the rhizosheath of wheat under different crop rotations. PLOS One, 10(6): e0130030. https://doi.org/10.1371/journal.pone.0130030
UN (United Nation). 2022. World Population Prospects 2022: Summary of Results. UN DESA/POP/2022/TR/NO. 3. United Nations Population Division, New York, USA. 38pp.
Ushio M, Yamasaki E, Takasu H, Nagano AJ, Fujinaga S, Honjo MN, Ikemoto M, Sakai S and Kudoh H. 2015. Microbial communities on flower surfaces act as signatures of pollinator visitation. Scientific Reports, 5: 8695. https://doi.org/10.1038/srep08695
Vaello T, Sarde SJ, Marcos-García MÁ, de Boer JG and Pineda A. 2018. Modulation of plant-mediated interactions between herbivores of different feeding guilds: Effects of parasitism and belowground interactions. Scientific Reports, 8: 14424. https://doi.org/10.1038/s41598-018-32131-9
Valenzuela-Soto JH, Estrada-Hernandez MG, Ibarra-Laclette E and Delano-Frier JP. 2010. Inoculation of tomato plants (Solanum lycopersicum) with growth-promoting Bacillus subtilis retards whitefly Bemisia tabaci development. Planta, 231(2): 397-410. https://doi.org/10.1007/s00425-009-1061-9
van Dam NM and Heil M. 2011. Multitrophic interactions below and above ground: en route to the next level. Journal of Ecology, 99(1): 77-88. https://doi.org/10.1111/j.1365-2745.2010.01761.x
van Dijk LJ. 2021. Interactions between plants, microbes and insects. Department of Ecology, Environment and Plant Sciences, Stockholm University.
Van Oosten VR, Bodenhausen N, Reymond P, Van Pelt JA, Van Loon L, Dicke M and Pieterse CM. 2008. Differential effectiveness of microbially induced resistance against herbivorous insects in Arabidopsis. Molecular Plant-Microbe Interactions, 21(7): 919-930. https://doi.org/10.1094/MPMI-21-7-0919
Varone L, Logarzo GA, Briano JA, Hight SD and Carpenter JE. 2014. Cactoblastis cactorum (Berg)(Lepidoptera: Pyralidae) use of Opuntia host species in Argentina. Biological Invasions, 16: 2367-2380. https://doi.org/10.1007/s10530-014-0670-9
Verma PP, Shelake RM, Das S, Sharma P and Kim J-Y. 2019. Plant growth-promoting rhizobacteria (PGPR) and fungi (PGPF): potential biological control agents of diseases and pests. In: Singh D, Gupta V and Prabha R (eds). Microbial interventions in agriculture and environment. Springer, Singapore, pp. 281-311. https://doi.org/10.1007/978-981-13-8391-5_11
Vinale F, Manganiello G, Nigro M, Mazzei P, Piccolo A, Pascale A, Ruocco M, Marra R, Lombardi N, Lanzuise S et al. 2014. A novel fungal metabolite with beneficial properties for agricultural applications. Molecules, 19(7): 9760-9772.
https://doi.org/10.3390/molecules19079760
Wilkinson TD, Ferrari J, Hartley SE and Hodge A. 2019. Aphids can acquire the nitrogen delivered to plants by arbuscular mycorrhizal fungi. Functional Ecology, 33(4): 576-586. https://doi.org/10.1111/1365-2435.13283
Woo SL and Pepe O. 2018. Microbial consortia: promising probiotics as plant biostimulants for sustainable agriculture. Frontiers in Plant Science, 9: 1801. https://doi.org/10.3389/fpls.2018.01801
Zebelo SA and Maffei ME. 2015. Role of early signalling events in plant–insect interactions. Journal of Experimental Botany, 66(2): 435-448. https://doi.org/10.1093/jxb/eru480
Zehnder G, Kloepper J, Yao CB and Wei G. 1997. Induction of systemic resistance in cucumber against cucumber beetles (Coleoptera: Chrysomelidae) by plant growth-promoting rhizobacteria. Journal of economic entomology, 90(2): 391-396. https://doi.org/10.1093/jee/90.2.391
Zytynska SE. 2021. Embracing the complexity of plant–microbe–insect interactions under a changing climate for sustainable agriculture. Current Opinion in Insect Science, 44: 89-94. https://doi.org/10.1016/j.cois.2021.04.002
Section
Review Paper
License

This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.