Volatile organic compounds from Bacillus mojavensis I4 promote plant growth and inhibit phytopathogens

Physiological and Molecular Plant Pathology - Tập 121 - Trang 101887 - 2022
Imen Ghazala1, Nour Chiab1, Mohamed Najib Saidi2, Radhia Gargouri-Bouzid1
1Laboratory of Plant Improvement and Valorization of Agri-Resources, National Engineering School of Sfax, 3038, Sfax, Tunisia
2Laboratory of Biotechnology and Plant Improvement, Center of Biotechnology of Sfax, 3018, Sfax, Tunisia

Tài liệu tham khảo

Sukkasem, 2018, A multifaceted rhizobacterium Bacillus licheniformis functions as a fungal antagonist and a promoter of plant growth and abiotic stress tolerance, Environ. Exp. Bot., 155, 541, 10.1016/j.envexpbot.2018.08.005 Notununu, 2022, Effects of plant growth-promoting rhizobacteria on the molecular responses of maize under drought and heat stresses: a review, Pedosphere, 32, 90, 10.1016/S1002-0160(21)60051-6 Vacheron, 2013, Plant growth-promoting rhizobacteria and root system functioning, Front. Plant Sci., 4, 356, 10.3389/fpls.2013.00356 Beneduzi, 2012, Plant growth-promoting rhizobacteria (PGPR): their potential as antagonists and biocontrol agents, Genet. Mol. Biol., 35, 1044, 10.1590/S1415-47572012000600020 Philippot, 2013, Going back to the roots: the microbial ecology of the rhizosphere, Nat. Rev. Microbiol., 11, 789, 10.1038/nrmicro3109 Venturi, 2016, Signaling in the rhizosphere, Trends Plant Sci., 21, 187, 10.1016/j.tplants.2016.01.005 Dotaniya, 2015, Rhizosphere effect on nutrient availability in soil and its uptake by plants: a Review, Proc. Natl. Acad. Sci. India B Biol. Sci., 85 Lee, 2012, Induced resistance by a long-chain bacterial volatile: elicitation of plant systemic defense by a C13 volatile produced by Paenibacillus polymyxa, PLoS One, 7, 10.1371/journal.pone.0048744 Ryu, 2003, Bacterial volatiles promote growth in Arabidopsis, Proc. Natl. Acad. Sci. U.S.A., 100, 4927, 10.1073/pnas.0730845100 Veselova, 2019, Volatile compounds of bacterial origin: structure, biosynthesis, and biological activity, Microbiol., 88, 261, 10.1134/S0026261719030160 Sharifi, 2016, Are bacterial volatile compounds Poisonous odors to a fungal pathogen Botrytis cinerea, alarm signals to Arabidopsis seedlings for eliciting induced resistance, or both?, Front. Microbiol., 7, 10.3389/fmicb.2016.00196 Tyagi, 2018, VOCs-mediated hormonal signaling and crosstalk with plant growth promoting microbes, Crit. Rev. Biotechnol., 38, 1277, 10.1080/07388551.2018.1472551 Poveda, 2021, Beneficial effects of microbial volatile organic compounds (MVOCs) in plants, Appl. Soil Ecol., 168, 10.1016/j.apsoil.2021.104118 Morath, 2012, Fungal volatile organic compounds: a review with emphasis on their biotechnological potential, Fungal Biol. Rev., 26, 73, 10.1016/j.fbr.2012.07.001 Schmidt, 2015, Volatile affairs in microbial interactions, ISME J., 9, 2329, 10.1038/ismej.2015.42 Tenorio-Salgado, 2013, Identification of volatile compounds produced by the bacterium Burkholderia tropica that inhibit the growth of fungal pathogens, Bioengineered, 4, 236, 10.4161/bioe.23808 Wu, 2019, Antifungal and plant growth promotion activity of volatile organic compounds produced by Bacillus amyloliquefaciens, Microbiol., 8 Li, 2020, Antifungal effect of volatile organic compounds from Bacillus velezensis CT32 against Verticillium dahliae and Fusarium oxysporum, Processes, 8, 10.3390/pr8121674 Ghazala, 2016, Screening and molecular identification of new microbial strains for production of enzymes of biotechnological interest, Braz. Arch. Biol. Technol., 59, 10.1590/1678-4324-2016150152 Ghazala, 2017, Anionic lipopeptides from Bacillus mojavensis I4 as effective antihypertensive agents: production, characterization, and identification, Eng. Life Sci., 17, 1244, 10.1002/elsc.201700020 Huang, 2021, Antagonistic properties and screening of Bacillus Velezensis Nhw-B72 against wood fungal decay, Forests, 12, 10.3390/f12060785 Gao, 2017, Identification of endophytic Bacillus velezensis ZSY-1 strain and antifungal activity of its volatile compounds against Alternaria solani and Botrytis cinerea, Biol. Control, 105, 27, 10.1016/j.biocontrol.2016.11.007 Park, 2015, Promotion of plant growth by Pseudomonas fluorescens strain SS101 via novel volatile organic compounds, Biochem. Biophys. Res. Commun., 461, 361, 10.1016/j.bbrc.2015.04.039 Arnon, 1949, Copper enzymes in isolated chloroplasts. Polyphenoloxidase in Beta vulgaris, Plant Physiol., 24, 1, 10.1104/pp.24.1.1 Ajilogba, 2019, GC–MS analysis of volatile organic compounds from Bambara groundnut rhizobacteria and their antibacterial properties, World J. Microbiol. Biotechnol., 35, 83, 10.1007/s11274-019-2660-7 Cheng, 2019, Characterization of antagonistic Bacillus methylotrophicus isolated from Rhizosphere and its biocontrol effects on maize stalk rot, Phytopathology, 109, 571, 10.1094/PHYTO-07-18-0220-R Slama, 2019, Screening for Fusarium antagonistic bacteria from contrasting niches designated the endophyte Bacillus halotolerans as plant warden against Fusarium, Front. Microbiol., 9, 10.3389/fmicb.2018.03236 Chen, 2020, Characterization of volatile organic compounds emitted from endophytic Burkholderia cenocepacia ETR-B22 by SPME-GC-MS and their inhibitory activity against various plant fungal pathogens, Molecules, 25, 10.3390/molecules25173765 Morita, 2019, Antifungal spectrum characterization and identification of strong volatile organic compounds produced by Bacillus pumilus TM-R, Heliyon, 5, 10.1016/j.heliyon.2019.e01817 Zalila-Kolsi, 2016, Antagonist effects of Bacillus spp. strains against Fusarium graminearum for protection of durum wheat (Triticum turgidum L. subsp. durum), Microbiol. Res., 192, 148, 10.1016/j.micres.2016.06.012 Sinuco León, 2020, Fungicidal activity of volatile organic compounds from Paenibacillus bacteria against Colletotrichum gloeosporioides, Rev. Colomb. Quím., 49, 20, 10.15446/rev.colomb.quim.v1n49.81996 Schmidt, 2015, Microbial small talk: volatiles in fungal-bacterial interactions, Front. Microbiol., 6, 1495 Sun, 2020, The volatile organic compounds of Floccularia luteovirens modulate plant growth and metabolism in Arabidopsis thaliana, Plant Soil, 456, 207, 10.1007/s11104-020-04709-8 Tahir, 2017, Plant growth promotion by volatile organic compounds produced by Bacillus subtilis SYST2, Front. Microbiol., 8, 171, 10.3389/fmicb.2017.00171 Estrada-Rivera, 2019, Trichoderma histone deacetylase HDA-2 modulates multiple responses in Arabidopsis, Plant Physiol., 179, 1343, 10.1104/pp.18.01092 Lazar, 2003, Plant physiology, Ann. Bot., 91, 750, 10.1093/aob/mcg079 Nieto-Jacobo, 2017, Environmental growth conditions of Trichoderma spp. affects indole acetic acid derivatives, volatile organic compounds, and plant growth promotion, Front. Plant Sci., 8, 102, 10.3389/fpls.2017.00102 Wonglom, 2020, Volatile organic compounds emitted from endophytic fungus Trichoderma asperellum T1 mediate antifungal activity, defense response and promote plant growth in lettuce (Lactuca sativa), Fungal Ecol, 43, 10.1016/j.funeco.2019.100867 Yuan, 2017, Emissions of volatile organic compounds (VOCs) from concentrated animal feeding operations (CAFOs): chemical compositions and separation of sources, Atmos. Chem. Phys., 17, 4945, 10.5194/acp-17-4945-2017 Cappellari, 2020, Microbial volatile organic compounds produced by Bacillus amyloliquefaciens GB03 ameliorate the Effects of Salt Stress in Mentha piperita principally through acetoin emission, J. Plant Growth Regul., 39, 764, 10.1007/s00344-019-10020-3 Rath, 2018, Volatiles produced by Bacillus mojavensis RRC101 act as plant growth modulators and are strongly culture-dependent, Microbiol. Res., 208, 76, 10.1016/j.micres.2017.12.014 Asari, 2016, Multiple effects of Bacillus amyloliquefaciens volatile compounds: plant growth promotion and growth inhibition of phytopathogens, FEMS Microbiol. Ecol., 92, 10.1093/femsec/fiw070 Ann, 2013, Growth promotion of tobacco plant by 3-hydroxy-2-butanone from Bacillus vallismortis EXTN-1, Korea J. Pesticide Sci., 17, 10.7585/kjps.2013.17.4.388 Toral, 2021, Identification of volatile organic compounds in extremophilic bacteria and their effective Use in biocontrol of postharvest fungal phytopathogens, Front. Microbiol., 12, 10.3389/fmicb.2021.773092 Gotor-Vila, 2017, Antifungal effect of volatile organic compounds produced by Bacillus amyloliquefaciens CPA-8 against fruit pathogen decays of cherry, Food Microbiol., 64, 219, 10.1016/j.fm.2017.01.006 Ren, 2019, Natural anti-phytopathogenic fungi compound phenol, 2, 4-bis (1, 1-dimethylethyl) from Pseudomonas fluorescens TL-1, Indian J. Biochem. Biophys., 56, 162 Zhang, 2011, Autotoxic compounds from rhizosphere soil of Humulus lupulus L. extracts: identification and biological activity, Agron. J., 103, 695, 10.2134/agronj2010.0425 Rangel-Sanchez, 2014, Avocado roots treated with salicylic acid produce phenol-2,4-bis (1,1-dimethylethyl), a compound with antifungal activity, J. Plant Physiol., 171, 189, 10.1016/j.jplph.2013.07.004 Groenhagen, 2013, Production of bioactive volatiles by different Burkholderia ambifaria strains, J. Chem. Ecol., 39, 892, 10.1007/s10886-013-0315-y Gutiérrez-Luna, 2010, Plant growth-promoting rhizobacteria modulate root-system architecture in Arabidopsis thaliana through volatile organic compound emission, Symbiosis, 51, 75, 10.1007/s13199-010-0066-2