Insights into plant beneficial microorganism-triggered induced systemic resistance

Plant Stress - Tập 7 - Trang 100140 - 2023
Richa Salwan1, Monica Sharma1, Amit Sharma1, Vivek Sharma2
1College of Horticulture and Forestry (Dr. YS Parmar University of Horticulture and Forestry), Neri, Hamirpur, H.P. 177 001, India
2University Centre for Research and Development, Chandigarh University, Gharuan, Mohali PB. 140 413, India

Tài liệu tham khảo

Abdelkhalek, 2022, Enhancing systemic resistance in faba bean (Vicia faba L.) to Bean yellow mosaic virus via soil application and foliar spray of nitrogen-fixing Rhizobium leguminosarum bv. viciae strain 33504-Alex1, Front. Plant Sci., 13, 10.3389/fpls.2022.933498 Abreu, 2013, Coping with abiotic stress: proteome changes for crop improvement, J. Proteomics, 93, 145, 10.1016/j.jprot.2013.07.014 Ahn, 2007, Rhizobacteria-induced priming in Arabidopsis is dependent on ethylene, jasmonic acid, and NPR1, Mol. Plant Microbe Interact., 20, 759, 10.1094/MPMI-20-7-0759 Ahn, 2002, Rhizobacteria-induced resistance perturbs viral disease progress and triggers defense-related gene expression, Mol. Cells, 13, 302 Angelella, 2018, Endosymbionts differentially alter exploratory probing behavior of a non-persistent plant virus vector, Microb. Ecol., 76, 453, 10.1007/s00248-017-1133-5 Bai, 2002, An inducible activator produced by a Serratia proteamaculans strain and its soybean growth-promoting activity under greenhouse conditions, J. Exp. Bot., 53, 1495 Bakker, 2013, Induced systemic resistance and the rhizosphere microbiome, Plant Pathol. J., 29, 136, 10.5423/PPJ.SI.07.2012.0111 Bakker, 2018, The Soil-Borne Legacy, Cell, 172, 1178, 10.1016/j.cell.2018.02.024 Bakker, 1991, Suppression of soil-borne plant pathogens by fluorescent pseudomonads: mechanisms and prospects, Dev. Agric. Managed For. Ecol., 23, 217 Beneduzi, 2012, Plant growth-promoting rhizobacteria (PGPR): their potential as antagonists and biocontrol agents, Genet. Mol. Biol., 35, 1044, 10.1590/S1415-47572012000600020 Berendsen, 2012, The rhizosphere microbiome and plant health, Trends Plant Sci., 17, 478, 10.1016/j.tplants.2012.04.001 Bhattacharyya, 2012, Plant growth-promoting rhizobacteria (PGPR): emergence in agriculture, World J. Microbiol. Biotechnol., 28, 1327, 10.1007/s11274-011-0979-9 Blubaugh, 2018, Bacteria and competing herbivores weaken top-down and bottom-up aphid suppression, Front. Plant Sci., 9, 1239, 10.3389/fpls.2018.01239 Boutard-Hunt, 2009, Impact of plant growth-promoting rhizobacteria and natural enemies on Myzus persicae (Hemiptera: aphididae) infestations in pepper, J. Econ. Entomol., 102, 2183, 10.1603/029.102.0622 Cao, 2011, The effects of the combination of Pichia membranefaciens and BTH on controlling of blue mould decay caused by Penicillium expansum in peach fruit, Food Chem., 124, 991, 10.1016/j.foodchem.2010.07.041 Chiriboga, 2018, Root-colonizing bacteria enhance the levels of (E)-β-caryophyllene produced by maize roots in response to rootworm feeding, Oecologia, 187, 459, 10.1007/s00442-017-4055-5 Choudhary, 2009, Interactions of Bacillus spp. and plants–with special reference to induced systemic resistance (ISR), Microbiol. Res., 164, 493, 10.1016/j.micres.2008.08.007 Choudhary, 2007, Induced systemic resistance (ISR) in plants: mechanism of action, Indian J. Microbiol., 47, 289, 10.1007/s12088-007-0054-2 Conrath, 2002, Priming in plant-pathogen interactions, Trends Plant Sci., 7, 210, 10.1016/S1360-1385(02)02244-6 Currie, 2011, Is a specialist root-feeding insect affected by arbuscular mycorrhizal fungi?, App. Soil Ecol., 47, 77, 10.1016/j.apsoil.2010.12.002 De Vos, 2007, Plants under attack: multiple interactions with insects and microbes, Plant Signal Behav., 2, 527, 10.4161/psb.2.6.4663 Desoignies, 2013, Systemic resistance induced by Bacillus lipopeptides in Beta vulgaris reduces infection by the rhizomania disease vector Polymyxa betae, Mol. Plant Pathol., 14, 416, 10.1111/mpp.12008 Disi, 2018, Seed inoculation with beneficial rhizobacteria affects European corn borer (Lepidoptera: pyralidae) oviposition on maize plants, Entomol. Sci., 21, 48, 10.1111/ens.12280 Duijff, 1996, Involvement of induced systemic resistance in the control of fusarium wilt of tomato by Fusarium oxysporum strain FO47 and Pseudomonas fluorescens strain WCS417r, Bull. OILB SROP (France) Duijff, 1994, Suppression of fusarium wilt of carnation by Pseudomonas putida WCS358 at different levels of disease incidence and iron availability, Biocontrol Sci. Technol., 4, 279, 10.1080/09583159409355336 Duijff, 1998, Implication of systemic induced resistance in the suppression of fusarium wilt of tomato by Pseudomonas fluorescens WCS417r and by nonpathogenic Fusarium oxysporum Fo47, Eur. J. Plant Pathol., 104, 903, 10.1023/A:1008626212305 Dutta, 2010, Plant growth promoting rhizobacteria (PGPR): the bugs to debug the root zone, Crit. Rev. Microbiol., 36, 232, 10.3109/10408411003766806 Elsen, 2008, AMF-induced biocontrol against plant parasitic nematodes in Musa sp.: a systemic effect, Mycorrhiza, 18, 251, 10.1007/s00572-008-0173-6 Eyles, 2007, Cross-induction of systemic induced resistance between an insect and a fungal pathogen in Austrian pine over a fertility gradient, Oecologia, 153, 365, 10.1007/s00442-007-0741-z Fahimi, 2014, Effect of PGPR on population growth parameters of cotton aphid, Arch. Phytopathol. Pflanzenschutz., 47, 1274, 10.1080/03235408.2013.840099 Fan, 2021, Characterization of selected plant growth-promoting rhizobacteria and their non-host growth promotion effects, Microbiol. Spectr., 9, 10.1128/Spectrum.00279-21 Frago, 2017, Symbionts protect aphids from parasitic wasps by attenuating herbivore-induced plant volatiles, Nat. Commun., 8, 1860, 10.1038/s41467-017-01935-0 Fürstenberg-Hägg, 2013, Plant defense against insect herbivores, Int. J. Mol. Sci., 14, 10242, 10.3390/ijms140510242 Gadhave, 2016, Plant-associated B acillus spp. alter life-history traits of the specialist insect B revicoryne brassicae L, Agric. For. Entomol., 18, 35, 10.1111/afe.12131 Gamir, 2012, Identification of indole-3-carboxylic acid as mediator of priming against Plectosphaerella cucumerina, Plant Physiol. Biochem., 61, 169, 10.1016/j.plaphy.2012.10.004 Gange, 2001, Species‐specific responses of a root‐and shoot‐feeding insect to arbuscular mycorrhizal colonization of its host plant, New Phytol., 150, 611, 10.1046/j.1469-8137.2001.00137.x Garnica-Vergara, 2016, The volatile 6-pentyl-2H-pyran-2-one from Trichoderma atroviride regulates Arabidopsis thaliana root morphogenesis via auxin signaling and ETHYLENE INSENSITIVE 2 functioning, New Phytol., 209, 1496, 10.1111/nph.13725 Glick, 1995, The enhancement of plant growth by free-living bacteria, Can. J. Microbiol., 41, 109, 10.1139/m95-015 Goswami, 2016, Portraying mechanics of plant growth promoting rhizobacteria (PGPR): a review, Cogent. Food Agric., 2 Guo, 2017, Nine facultative endosymbionts in aphids. A review, J. Asia-Pac. Entomol., 20, 794, 10.1016/j.aspen.2017.03.025 Guyomar, 2018, Multi-scale characterization of symbiont diversity in the pea aphid complex through metagenomic approaches, Microbiome, 6, 181, 10.1186/s40168-018-0562-9 Haas, 2005, Biological control of soil-borne pathogens by fluorescent pseudomonads, Nat. Rev. Microbiol., 3, 307, 10.1038/nrmicro1129 Hackett, 2013, Unpredicted impacts of insect endosymbionts on interactions between soil organisms, plants and aphids, Proc. Biol. Sci., 280 Hao, 2012, Local and systemic mycorrhiza-induced protection against the ectoparasitic nematode Xiphinema index involves priming of defence gene responses in grapevine, J. Exp. Bot., 63, 3657, 10.1093/jxb/ers046 Hashem, 2019, Bacillus subtilis: a plant-growth promoting rhizobacterium that also impacts biotic stress, Saudi J. Biol. Sci., 26, 1291, 10.1016/j.sjbs.2019.05.004 He, 2017, Indirect interactions between arbuscular mycorrhizal fungi and Spodoptera exigua alter photosynthesis and plant endogenous hormones, Mycorrhiza, 27, 525, 10.1007/s00572-017-0771-2 Herman, 2008, Effects of plant growth-promoting rhizobacteria on bell pepper production and green peach aphid infestations in New York, Crop Protect., 27, 996, 10.1016/j.cropro.2007.12.004 Hogenhout, 2008, Insect vector interactions with persistently transmitted viruses, Annu. Rev. Phytopathol., 46, 327, 10.1146/annurev.phyto.022508.092135 Jankiewicz, 2012, The involvement of Pseudomonas bacteria in induced systemic resistance in plants (review), Prikl. Biokhim. Mikrobiol., 48, 276 Jiang, 2016, Transcription factors WRKY70 and WRKY11 served as regulators in rhizobacterium Bacillus cereus AR156-induced systemic resistance to Pseudomonas syringae pv. tomato DC3000 in Arabidopsis, J. Exp. Bot., 67, 157, 10.1093/jxb/erv445 Jiang, 2020, Bacillus cereus AR156 triggers induced systemic resistance against Pseudomonas syringae pv. tomato DC3000 by suppressing miR472 and activating CNLs-mediated basal immunity in Arabidopsis, Mol. Plant Pathol., 21, 854, 10.1111/mpp.12935 Jung, 2012, Mycorrhiza-induced resistance and priming of plant defenses, J. Chem. Ecol., 38, 651, 10.1007/s10886-012-0134-6 Kashyap, 2021, Screening and biocontrol potential of rhizobacteria native to gangetic plains and hilly regions to induce systemic resistance and promote plant growth in Chilli against bacterial wilt disease, Plants (Basel), 10, 2125, 10.3390/plants10102125 Kloepper, 1992, Plant growth-promoting rhizobacteria as biological control agents, Soil Microbial Ecol., 255 Kloepper, 2004, Induced systemic resistance and promotion of plant growth by Bacillus spp, Phytopathology, 94, 1259, 10.1094/PHYTO.2004.94.11.1259 Knoester, 1999, Systemic resistance in Arabidopsis induced by rhizobacteria requires ethylene-dependent signaling at the site of application, Mol. Plant Microbe Interact., 12, 720, 10.1094/MPMI.1999.12.8.720 Koricheva, 2009, Effects of mycorrhizal fungi on insect herbivores: a meta-analysis, Ecology, 90, 2088, 10.1890/08-1555.1 Kottb, 2015, Trichoderma volatiles effecting Arabidopsis: from inhibition to protection against phytopathogenic fungi, Front. Microbiol., 6, 995, 10.3389/fmicb.2015.00995 Lawton, 1996, Benzothiadiazole induces disease resistance in Arabidopsis by activation of the systemic acquired resistance signal transduction pathway, Plant J., 10, 71, 10.1046/j.1365-313X.1996.10010071.x Lawton, 1995, Systemic acquired resistance in Arabidopsis requires salicylic acid but not ethylene, Mol. Plant Microbe Interact., 8, 863, 10.1094/MPMI-8-0863 Leeman, 1995, Induction of systemic resistance by Pseudomonas fluorescens in radish cultivars differing in susceptibility to fusarium wilt, using a novel bioassay, Eur. J. Plant Pathol., 101, 655, 10.1007/BF01874869 Li, 2020, Mediation of induced systemic resistance by the plant growth-promoting rhizobacteria Bacillus pumilus S2-3-2, Mol. Biol. Rep., 47, 8429, 10.1007/s11033-020-05883-9 Li, 2006, Plant Cell Physiol., 47, 154, 10.1093/pcp/pci231 Liu, 2007, Systemic resistance induced by biocontrol agents in plants and its biochemical and cytological mechanisms, Ying Yong Sheng tai xue bao J. Appl. Ecol., 18, 1861 Lugtenberg, 2009, Plant-growth-promoting rhizobacteria, Annu. Rev. Microbiol., 63, 541, 10.1146/annurev.micro.62.081307.162918 Mariutto, 2011, The elicitation of a systemic resistance by Pseudomonas putida BTP1 in tomato involves the stimulation of two lipoxygenase isoforms, BMC Plant Biol., 11, 29, 10.1186/1471-2229-11-29 Mariutto, 2015, Molecular patterns of rhizobacteria involved in plant immunity elicitation, Adv. Bot. Res., 75, 21, 10.1016/bs.abr.2015.07.002 Martínez-Medina, 2017, Shifting from priming of salicylic acid- to jasmonic acid-regulated defences by Trichoderma protects tomato against the root knot nematode Meloidogyne incognita, New Phytol., 213, 1363, 10.1111/nph.14251 Martinez-Medina, 2016, Recognizing plant defense priming, Trends Plant Sci., 21, 818, 10.1016/j.tplants.2016.07.009 Martinuz, 2012, Effectiveness of systemic resistance toward Aphis gossypii (Hom., Aphididae) as induced by combined applications of the endophytes Fusarium oxysporum Fo162 and Rhizobium etli G12, Biol. Control, 62, 206, 10.1016/j.biocontrol.2012.05.006 Maurhofer, 1994, Induction of systemic resistance of tobacco to tobacco necrosis virus by the root-colonizing Pseudomonas fluorescens strain CHA0: influence of the gacA gene and of pyoverdine production, Phytopathology (USA), 10.1094/Phyto-84-139 Meldau, 2012, A native plant growth promoting bacterium, Bacillus sp. B55, rescues growth performance of an ethylene-insensitive plant genotype in nature, Front. Plant Sci., 3, 112, 10.3389/fpls.2012.00112 Meziane, 2005, Determinants of Pseudomonas putida WCS358 involved in inducing systemic resistance in plants, Mol. Plant Pathol., 6, 177, 10.1111/j.1364-3703.2005.00276.x Mishra, 2014, Plant growth-promoting rhizobacterial strain-mediated induced systemic resistance in tea (Camellia sinensis (L.) O. Kuntze) through defense-related enzymes against brown root rot and charcoal stump rot, Appl. Biochem. Biotechnol., 174, 506, 10.1007/s12010-014-1090-0 Naeem, 2018, Plant growth promoting rhizobacteria reduce aphid population and enhance the productivity of bread wheat, Braz. J. Microbiol., 49, 9, 10.1016/j.bjm.2017.10.005 Nie, 2017, Induced Systemic Resistance against Botrytis cinerea by Bacillus cereus AR156 through a JA/ET- and NPR1-Dependent Signaling Pathway and Activates PAMP-Triggered Immunity in Arabidopsis, Front. Plant Sci., 8, 238, 10.3389/fpls.2017.00238 Ongena, 2008, Bacillus lipopeptides: versatile weapons for plant disease biocontrol, Trends Microbiol., 16, 115, 10.1016/j.tim.2007.12.009 Ongena, 2004, Stimulation of the lipoxygenase pathway is associated with systemic resistance induced in bean by a nonpathogenic Pseudomonas strain, Mol. Plant Microbe Interact., 17, 1009, 10.1094/MPMI.2004.17.9.1009 Orozco-Mosqueda, 2013, Arthrobacter agilis UMCV2 induces iron acquisition in Medicago truncatula (Strategy I plant) in vitro via dimethylhexadecylamine emission, Plant Soil, 362, 51, 10.1007/s11104-012-1263-y Pangesti, 2016, Jasmonic acid and ethylene signaling pathways regulate glucosinolate levels in plants during rhizobacteria-induced systemic resistance against a leaf-chewing herbivore, J. Chem. Ecol., 42, 1212, 10.1007/s10886-016-0787-7 Pieterse, 1996, Systemic resistance in Arabidopsis induced by biocontrol bacteria is independent of salicylic acid accumulation and pathogenesis-related gene expression, Plant Cell, 8, 1225 Pieterse, 1998, A novel signaling pathway controlling induced systemic resistance in Arabidopsis, Plant Cell, 10, 1571, 10.1105/tpc.10.9.1571 Pieterse, 2014, Induced systemic resistance by beneficial microbes, Annu. Rev. Phytopathol., 52, 347, 10.1146/annurev-phyto-082712-102340 Pineda, 2012, Rhizobacteria modify plant-aphid interactions: a case of induced systemic susceptibility, Plant Biol. (Stuttg), 14, 83, 10.1111/j.1438-8677.2011.00549.x Pozo, 2008, Transcription factor MYC2 is involved in priming for enhanced defense during rhizobacteria-induced systemic resistance in Arabidopsis thaliana, New Phytol., 180, 511, 10.1111/j.1469-8137.2008.02578.x Press, 2001, Role of iron in rhizobacteria-mediated induced systemic resistance of cucumber, Phytopathology, 91, 593, 10.1094/PHYTO.2001.91.6.593 Press, 1997, Salicylic acid produced by Serratia marcescens 90-166 is not the primary determinant of induced systemic resistance in cucumber or tobacco, Mol. Plant-Microbe Interact., 10, 761, 10.1094/MPMI.1997.10.6.761 Pršić, 2020, Elicitors of plant immunity triggered by beneficial bacteria, Front. Plant Sci., 11, 10.3389/fpls.2020.594530 Rahman, 2015, Induced systemic resistance responses in perennial ryegrass against Magnaporthe oryzae elicited by semi-purified surfactin lipopeptides and live cells of Bacillus amyloliquefaciens, Mol. Plant Pathol., 16, 546, 10.1111/mpp.12209 Ramamoorthy, 2001, Induction of systemic resistance by plant growth promoting rhizobacteria in crop plants against pests and diseases, Crop Protect., 20, 1, 10.1016/S0261-2194(00)00056-9 Romero-Contreras, 2019, Tal6 from Trichoderma atroviride is a LysM effector involved in mycoparasitism and plant association, Front. Microbiol., 10, 2231, 10.3389/fmicb.2019.02231 Rosenblueth, 2006, Bacterial endophytes and their interactions with hosts, Mol. Plant Microbe Interact., 19, 827, 10.1094/MPMI-19-0827 Rudrappa, 2010, The rhizobacterial elicitor acetoin induces systemic resistance in Arabidopsis thaliana, Commun. Integr. Biol., 3, 130, 10.4161/cib.3.2.10584 Ryu, 2004, Bacterial volatiles induce systemic resistance in Arabidopsis, Plant Physiol., 134, 1017, 10.1104/pp.103.026583 Ryu, 2003, Different signaling pathways of induced resistance by rhizobacteria in Arabidopsis thaliana against two pathovars of Pseudomonas syringae, New Phytol., 160, 413, 10.1046/j.1469-8137.2003.00883.x Salwan, 2019, Bioactive volatile metabolites of Trichoderma: an overview, Secondary Metab. Plant Growth Promoting Rhizomicroorganisms, 87, 10.1007/978-981-13-5862-3_5 Salwan, 2022, The riddles of trichoderma induced plant immunity, Biol. Control, 10.1016/j.biocontrol.2022.105037 Salwan, 2020, Molecular imprints of plant beneficial Streptomyces sp. AC30 and AC40 reveal differential capabilities and strategies to counter environmental stresses, Microbiol. Res., 235, 10.1016/j.micres.2020.126449 Saravanakumar, 2007, PGPR-induced defense responses in the tea plant against blister blight disease, Crop Protect., 26, 556, 10.1016/j.cropro.2006.05.007 Schuhegger, 2006, Induction of systemic resistance in tomato by N-acyl-L-homoserine lactone-producing rhizosphere bacteria, Plant Cell Environ., 29, 909, 10.1111/j.1365-3040.2005.01471.x Serteyn, 2020, Induced systemic resistance by a plant growth-promoting rhizobacterium impacts development and feeding behavior of aphids, Insects, 11, 234, 10.3390/insects11040234 Shafi, 2017, Bacillus species as versatile weapons for plant pathogens: a review, Biotechnol. Biotechnol. Equip., 31, 446, 10.1080/13102818.2017.1286950 Sharifi, 2018, Sniffing bacterial volatile compounds for healthier plants, Curr. Opin. Plant Biol., 44, 88, 10.1016/j.pbi.2018.03.004 Sharma, 2022, Extracellular proteins of Trichoderma and their role in plant health, South African J. Botany, 147, 359, 10.1016/j.sajb.2022.01.036 Sharma, 2019, A halotolerant growth promoting rhizobacteria triggers induced systemic resistance in plants and defends against fungal infection, Sci. Rep., 9, 4054, 10.1038/s41598-019-40930-x Sharma, 2017, Integrated translatome and proteome: approach for accurate portraying of widespread multifunctional aspects of Trichoderma, Front. Microbiol., 8, 1602, 10.3389/fmicb.2017.01602 Sharma, 2017, The comparative mechanistic aspects of Trichoderma and probiotics: scope for future research, Physiol. Mol. Plant Pathol., 100, 84, 10.1016/j.pmpp.2017.07.005 Sharma, 2020, Overview and challenges in the implementation of plant beneficial microbes, 1 Sowndhararajan, 2013, Integrated control of blister blight disease in tea using the biocontrol agent Ochrobactrum anthropi strain BMO-111 with chemical fungicides, J. Appl. Microbiol., 114, 1491, 10.1111/jam.12159 Su, 2015, The whitefly-associated facultative symbiont Hamiltonella defensa suppresses induced plant defences in tomato, Funct. Ecol., 29, 1007, 10.1111/1365-2435.12405 Thomashow, 1996, Current concepts in the use of introduced bacteria for biological disease control: mechanisms and antifungal metabolites, Plant-Microbe Interact., 187, 10.1007/978-1-4613-1213-0_6 Ton, 2001, The arabidopsis ISR1 locus controlling rhizobacteria-mediated induced systemic resistance is involved in ethylene signaling, Plant Physiol., 125, 652, 10.1104/pp.125.2.652 Ton, 2002, Differential effectiveness of salicylate-dependent and jasmonate/ethylene-dependent induced resistance in Arabidopsis, Mol. Plant Microbe Interact., 15, 27, 10.1094/MPMI.2002.15.1.27 Tyagi, 2018, VOCs-mediated hormonal signaling and crosstalk with plant growth promoting microbes, Crit. Rev. Biotechnol., 38, 1277, 10.1080/07388551.2018.1472551 Van der Ent, 2009, Jasmonate signaling in plant interactions with resistance-inducing beneficial microbes, Phytochemistry, 70, 1581, 10.1016/j.phytochem.2009.06.009 Van der Ent, 2008, MYB72 is required in early signaling steps of rhizobacteria-induced systemic resistance in Arabidopsis, Plant Physiol., 146, 1293, 10.1104/pp.107.113829 Van Loon, 1997, Induced resistance in plants and the role of pathogenesis-related proteins, Eur. J. Plant Pathol., 103, 753, 10.1023/A:1008638109140 van Loon, 1998, Systemic resistance induced by rhizosphere bacteria, Annu. Rev. Phytopathol., 36, 453, 10.1146/annurev.phyto.36.1.453 Van Oosten, 2008, Differential effectiveness of microbially induced resistance against herbivorous insects in Arabidopsis, Mol. Plant Microbe Interact., 21, 919, 10.1094/MPMI-21-7-0919 Van Peer, 1992, Lipopolysaccharides of plant-growth promoting Pseudomonas sp. strain WCS417r induce resistance in carnation to Fusarium wilt, Netherlands J. Plant Pathol., 98, 129, 10.1007/BF01996325 Van Peer, 1991, Induced resistance and phytoalexin accumulation in biological control of Fusarium wilt of carnation by Pseudomonas sp. strain WCS 417 r, Phytopathology, 81, 728, 10.1094/Phyto-81-728 van Wees, 2000, Enhancement of induced disease resistance by simultaneous activation of salicylate- and jasmonate-dependent defense pathways in Arabidopsis thaliana, Proc. Natl. Acad. Sci. U S A., 97, 8711, 10.1073/pnas.130425197 Van Wees, 1997, Differential induction of systemic resistance in Arabidopsis by biocontrol bacteria, Mol. Plant Microbe Interact., 10, 716, 10.1094/MPMI.1997.10.6.716 Verbon, 2017, Iron and Immunity, Annu. Rev. Phytopathol., 55, 355, 10.1146/annurev-phyto-080516-035537 Villena, 2018, Receptors and signaling pathways for recognition of bacteria in livestock and crops: prospects for beneficial microbes in healthy growth strategies, Front. Immunol., 9, 2223, 10.3389/fimmu.2018.02223 Vishwanathan, 2020, Ectomycorrhizal fungi induce systemic resistance against insects on a nonmycorrhizal plant in a CERK1-dependent manner, New Phytol., 228, 728, 10.1111/nph.16715 Vlot, 2009, Salicylic Acid, a multifaceted hormone to combat disease, Annu. Rev. Phytopathol., 47, 177, 10.1146/annurev.phyto.050908.135202 Vos, 2012, Arbuscular mycorrhizal fungi affect both penetration and further life stage development of root-knot nematodes in tomato, Mycorrhiza, 22, 157, 10.1007/s00572-011-0422-y Vos, 2012, Arbuscular mycorrhizal fungi induce systemic resistance in tomato against the sedentary nematode Meloidogyne incognita and the migratory nematode Pratylenchus penetrans, Appl. Soil Ecol., 61, 1, 10.1016/j.apsoil.2012.04.007 Vurukonda, 2016, Enhancement of drought stress tolerance in crops by plant growth promoting rhizobacteria, Microbiol. Res., 184, 13, 10.1016/j.micres.2015.12.003 Walters, 2007, Costs and trade-offs associated with induced resistance, Physiol. Mol. Plant Pathol., 71, 3, 10.1016/j.pmpp.2007.09.008 Wei, 1991, Induction of systemic resistance of cucumber to Colletotrichum orbiculare by select strains of plant growth-promoting rhizobacteria, Phytopathology, 81, 1508, 10.1094/Phyto-81-1508 Weller, 2012, Induced systemic resistance in Arabidopsis thaliana against Pseudomonas syringae pv. tomato by 2,4-diacetylphloroglucinol-producing Pseudomonas fluorescens, Phytopathology, 102, 403, 10.1094/PHYTO-08-11-0222 Whipps, 2004, Prospects and limitations for mycorrhizas in biocontrol of root pathogens, Can. J. Bot., 82, 1198, 10.1139/b04-082 Wu, 2018, Exploring elicitors of the beneficial rhizobacterium Bacillus amyloliquefaciens SQR9 to induce plant systemic resistance and their interactions with plant signaling pathways, Mol. Plant Microbe Interact., 31, 560, 10.1094/MPMI-11-17-0273-R Yan, 2002, Induced systemic protection against tomato late blight elicited by plant growth-promoting rhizobacteria, Phytopathology, 92, 1329, 10.1094/PHYTO.2002.92.12.1329 Zamioudis, 2014, β-Glucosidase BGLU42 is a MYB72-dependent key regulator of rhizobacteria-induced systemic resistance and modulates iron deficiency responses in Arabidopsis roots, New Phytol., 204, 368, 10.1111/nph.12980 Zebelo, 2016, Rhizobacteria activates (+)-δ-cadinene synthase genes and induces systemic resistance in cotton against beet armyworm (Spodoptera exigua), Plant Cell Environ., 39, 935, 10.1111/pce.12704 Zhang, 1999, Interaction of NPR1 with basic leucine zipper protein transcription factors that bind sequences required for salicylic acid induction of the PR-1 gene, Proc. Natl. Acad. Sci. U S A., 96, 6523, 10.1073/pnas.96.11.6523 Zhou, 2021, Bacillus subtilis SL18r induces tomato resistance against Botrytis cinerea, involving activation of long non-coding RNA, MSTRG18363, to Decoy miR1918, Front. Plant Sci., 11, 10.3389/fpls.2020.634819 Zamioudis, 2015, Rhizobacterial volatiles and photosynthesis-related signals coordinate MYB72 expression in Arabidopsis roots during onset of induced systemic resistance and iron-deficiency responses, Plant J., 84, 309, 10.1111/tpj.12995