Co-culture of Bacillus amyloliquefaciens ACCC11060 and Trichoderma asperellum GDFS1009 enhanced pathogen-inhibition and amino acid yield
Tóm tắt
Bacillus spp. are a genus of biocontrol bacteria widely used for antibiosis, while Trichoderma spp. are biocontrol fungi that are abundantly explored. In this study, a liquid co-cultivation of these two organisms was tried firstly. Through liquid chromatography-mass spectrometry/mass spectrometry (LC–MS/MS), it was discovered that with an inoculation in the ratio of 1.9:1, the antimicrobial effect of the co-cultured fermentation liquor of Bacillus amyloliquefaciens ACCC11060 and Trichoderma asperellum GDFS1009 was found to be significantly higher than that of pure-cultivation. A raise in the synthesis of antimicrobial substances contributed to this significant increase. Additionally, a co-culture with the inoculation of the two organisms in the ratio of 1:1 was found to enhance the production of specific amino acids. This technique could be further explored for either a large scale production of amino acids or could serve as a theoretical base for the generation of certain rare amino acids. This work clearly demonstrated that co-cultivation of B. amyloliquefaciens ACCC11060 and T. asperellum GDFS1009 could produce more specific biocontrol substances and amino acids.
Tài liệu tham khảo
Beneduzi A, Ambrosini A, Passaglia LM. Plant growth-promoting rhizobacteria (PGPR): their potential as antagonists and biocontrol agents. Genet Mol Biol. 2012;35(4 suppl):1044–51.
Haidar R, Fermaud M, Calvogarrido C, Roudet J, Deschamps A. Modes of action for biological control of Botrytis cinerea by antagonistic bacteria. Phytopathol Mediterr. 2016;55(3):301–22.
On A, Wong F, Ko Q, Tweddell RJ, Antoun H, Avis TJ. Antifungal effects of compost tea microorganisms on tomato pathogens. Biol Control. 2015;80:63–9.
Toure Y, Ongena M, Jacques P, Guiro AT, Thonart P. Role of lipopeptides produced by Bacillus subtilis GA1 in the reduction of grey mould disease caused by Botrytis cinerea on apple. J Appl Microbiol. 2004;96(5):1151–60.
Liu Y, Chen Z, Ng TB, Zhang J, Zhou M, Song F, Lu F, Liu Y. Bacisubin, an antifungal protein with ribonuclease and hemagglutinating activities from Bacillus subtilis strain B-916. Peptides. 2007;28(3):553–9.
Chakraborty K, Thilakan B, Raola VK. Antimicrobial polyketide furanoterpenoids from seaweed-associated heterotrophic bacterium Bacillus subtilis MTCC 10403. Phytochemistry. 2017;142:112–25.
Wise C, Novitsky L, Tsopmo A, Avis TJ. Production and antimicrobial activity of 3-hydroxypropionaldehyde from Bacillus subtilis strain CU12. J Chem Ecol. 2012;38(12):1521–7.
Harman GE. Overview of mechanisms and uses of Trichoderma spp. Phytopathology. 2006;96(2):190–4.
Bailey BA, Bae H, Strem MD, Crozier J, Thomas SE, Samuels GJ, Vinyard BT, Holmes KA. Antibiosis, mycoparasitism, and colonization success for endophytic Trichoderma isolates with biological control potential in Theobroma cacao. Biol Control. 2008;46(1):24–35.
Sharon E, Chet I, Viterbo A, Bareyal M, Nagan H, Samuels GJ, Spiegel Y. Parasitism of Trichoderma on Meloidogyne javanica and role of the gelatinous matrix. Eur J Plant Pathol. 2007;118(3):247–58.
Degenkolb T, Von Dohren H, Nielsen KF, Samuels GJ, Bruckner H. Recent advances and future prospects in peptaibiotics, hydrophobin, and mycotoxin research, and their importance for chemotaxonomy of Trichoderma and Hypocrea. Chem Biodivers. 2008;5(5):671–80.
Cutler HG, Cox RH, Crumley FG, Cole PD. 6-Pentyl-α-pyrone from Trichoderma harzianum: its plant growth inhibitory and antimicrobial properties. Agric Biol Chem. 1986;50(11):2943–5.
Soliman SSM, Raizada MN. Interactions between co-habitating fungi elicit synthesis of taxol from an endophytic fungus in host taxus plants. Front Microbiol. 2013;4:3.
Netzker T, Fischer J, Weber J, Mattern DJ, Konig CC, Valiante V, Schroeckh V, Brakhage AA. Microbial communication leading to the activation of silent fungal secondary metabolite gene clusters. Front Microbiol. 2015;6:299.
Marmann A, Aly AH, Lin W, Wang B, Proksch P. Co-cultivation—a powerful emerging tool for enhancing the chemical diversity of microorganisms. Mar Drugs. 2014;12(2):1043–65.
Sher D, Thompson JW, Kashtan N, Croal L, Chisholm SW. Response of Prochlorococcus ecotypes to co-culture with diverse marine bacteria. ISME J. 2011;5(7):1125–32.
Wendisch VF, Jorge JMP, Perez-Garcia F, Sgobba E. Updates on industrial production of amino acids using Corynebacterium glutamicum. World J Microbiol Biotechnol. 2016;32(6):10.
Ahsan T, Chen JG, Zhao XX, Irfan M, Wu YH. Extraction and identification of bioactive compounds (eicosane and dibutyl phthalate) produced by Streptomyces strain KX852460 for the biological control of Rhizoctonia solani AG-3 strain KX852461 to control target spot disease in tobacco leaf. AMB Express. 2017;7:1–9.
In Y, Kim J, Kim H, Oh S. Antimicrobial activities of acetic acid, citric acid and lactic acid against Shigella species. J Food Saf. 2013;33(1):79–85.
Dong Y, Dong K, Zheng Y, Tang L, Yang ZX. Faba bean fusarium wilt (Fusarium oxysporum) control and its mechanism in different wheat varieties and faba bean intercropping system. Ying Yong Sheng Tai Xue Bao. 2014;25(7):1979–87.
Schisler DA, Slininger PJ, Olsen NL. Appraisal of selected osmoprotectants and carriers for formulating Gram-negative biocontrol agents active against Fusarium dry rot on potatoes in storage. Biol Control. 2016;98:1–10.
Rania AB, Jabnoun-Khiareddine H, Nefzi A, Mokni-Tlili S, Daami-Remadi M. Endophytic bacteria from Datura metel for plant growth promotion and bioprotection against Fusarium wilt in tomato. Biocontrol Sci Technol. 2016;26(8):1139–65.
Cho JY, Moon JH, Seong KY, Park KH. Antimicrobial activity of 4-hydroxybenzoic acid and trans 4-hydroxycinnamic acid isolated and identified from rice hull. Biosci Biotechnol Biochem. 1998;62(11):2273–6.
Keawsa-ard S, Natakankitkul S, Liawruangrath S, Teerawutgulrag A, Trisuwan K, Charoenying P, Pyne SG, Liawruangrath B. Anticancer and antibacterial activities of the isolated compounds from Solanum spirale Roxb. leaves. Chiang Mai J Sci. 2012;39(3):445–54.
Ljung K, Östin A, Lioussanne L, Sandberg G. Developmental regulation of indole-3-acetic acid turnover in Scots pine seedlings. Plant Physiol. 2001;125(1):464–75.
Dunn WB, Broadhurst D, Begley P, Zelena E, Francismcintyre S, Anderson N, Brown M, Knowles JD, Halsall A, Haselden JN. Procedures for large-scale metabolic profiling of serum and plasma using gas chromatography and liquid chromatography coupled to mass spectrometry. Nat Protoc. 2011;6(7):1060–83.
Zelena E, Dunn WB, Broadhurst D, Francismcintyre S, Carroll KM, Begley P, Ohagan S, Knowles JD, Halsall A, Wilson ID. Development of a robust and repeatable UPLC–MS method for the long-term metabolomic study of human serum. Anal Chem. 2009;81(4):1357–64.
Sangster T, Major H, Plumb RS, Wilson A, Wilson ID. A pragmatic and readily implemented quality control strategy for HPLC–MS and GC–MS-based metabonomic analysis. Analyst. 2006;131(10):1075–8.
Want EJ, Masson P, Michopoulos F, Wilson ID, Theodoridis G, Plumb RS, Shockcor JP, Loftus N, Holmes E, Nicholson JK. Global metabolic profiling of animal and human tissues via UPLC–MS. Nat Protoc. 2012;8(1):17–32.
Smith CA, Want EJ, Omaille G, Abagyan R, Siuzdak G. XCMS: processing mass spectrometry data for metabolite profiling using nonlinear peak alignment, matching, and identification. Anal Chem. 2006;78(3):779–87.
Gatto L, Christoforou A. Using R and Bioconductor for proteomics data analysis. BBA. 2014;1844(1):42–51.
Thevenot EA, Roux A, Xu Y, Ezan E, Junot C. Analysis of the human adult urinary metabolome variations with age, body mass index, and gender by implementing a comprehensive workflow for univariate and OPLS statistical analyses. J Proteome Res. 2015;14(8):3322–35.
Kanehisa M, Sato Y, Kawashima M, Furumichi M, Tanabe M. KEGG as a reference resource for gene and protein annotation. Nucleic Acids Res. 2016;44:457–62.
Rao G, Sui J, Zhang J. Metabolomics reveals significant variations in metabolites and correlations regarding the maturation of walnuts (Juglans regia L.). Biol Open. 2016;5(6):829–36.
Conlon JM, Al-Kharrge R, Ahmed E, Raza H, Galadari S, Condamine E. Effect of aminoisobutyric acid (Aib) substitutions on the antimicrobial and cytolytic activities of the frog skin peptide, temporin-1DRa. Peptides. 2007;28(10):2075–80.
Sasikala C, Ramana CV, Rao PR. 5-Aminolevulinic acid: a potential herbicide/insecticide from microorganisms. Biotechnol Prog. 1994;10(5):451–9.
Ahsan T, Chen J, Zhao X, Irfan M, Wu Y. Extraction and identification of bioactive compounds (eicosane and dibutyl phthalate) produced by Streptomyces strain KX852460 for the biological control of Rhizoctonia solani AG-3 strain KX852461 to control target spot disease in tobacco leaf. AMB Express. 2017;7(1):54.
Fukuda H, Hori S, Hiramatsu K. Antibacterial activity of gatifloxacin (AM-1155, CG5501, BMS-206584), a newly developed fluoroquinolone, against sequentially acquired Quinolone-resistant mutants and the norA transformant of Staphylococcus aureus. Antimicrob Agents Ch. 1998;42(8):1917–22.
Daly CG. Anti-bacterial effect of citric acid treatment of periodontally diseased root surfaces In vitro. J Clin Periodontol. 1982;9(5):386–92.
Liu R, Zhang H, Yuan M, Zhou J, Tu Q, Liu J, Wang J. Synthesis and biological evaluation of apigenin derivatives as antibacterial and antiproliferative agents. Molecules. 2013;18(9):11496–511.
Singh UP, Pandey VB, Singh KN, Singh RDN. Antifungal activity of some new fiavones and fiavone glycosides of Echinops echinatus. Botany. 1988;66(9):1901–3.
Naglah AM, Awad HM, Bhat MA, Alomar MA, Amr AEE. Microwave-assisted synthesis and antimicrobial activity of some novel isatin schiff bases linked to nicotinic acid via certain amino acid bridge. J Chem NY. 2015;2015:1–8.
Carlson LA. Nicotinic acid: the broad-spectrum lipid drug. A 50th anniversary review. J Intern Med. 2005;258(2):94–114.
Gamir J, Pastor V, Cerezo M, Flors V. Identification of indole-3-carboxylic acid as mediator of priming against Plectosphaerella cucumerina. Plant Physiol Biochem. 2012;61:169–79.
Bandyopadhaya A, Constantinou C, Psychogios N, Ueki R, Yasuhara S, Martyn JAJ, Wilhelmy J, Mindrinos MN, Rahme LG, Tzika AA. Bacterial-excreted small volatile molecule 2-aminoacetophenone induces oxidative stress and apoptosis in murine skeletal muscle. Int J Mol Med. 2016;37(4):867–78.
Şirikci Gökhan AN, Gül Öztaş S, Gül Öztaş S. Synthesis, spectral, theoretical studies and in vitro antimicrobial activities of novel diphenyltin(IV) complexes of Schiff bases derived from phenacylamine. Appl Organomet Chem. 2014;28(7):537–44.
Boz H. p-Coumaric acid in cereals: presence, antioxidant and antimicrobial effects. Int J Food Sci Technol. 2015;50(11):2323–8.
Bock CH, Shapiro-Ilan DI, Wedge DE, Cantrell CL. Identification of the antifungal compound, trans-cinnamic acid, produced by Photorhabdus luminescens, a potential biopesticide against pecan scab. J Pest Sci. 2013;87(1):155–62.
