Bacillus velezensis: A Valuable Member of Bioactive Molecules within Plant Microbiomes
Abstract
:1. Introduction
2. Emergence of B. velezensis from the B. subtilis Species Complex
3. Bioactive Molecules Synthesized by B. velezensis
3.1. Antibacterial Molecules
3.2. Antifungal Molecules
3.3. Nematocidal Molecules
3.4. Siderophore Production
3.5. Production of Volatile Organic Compounds (VOCs)
4. Stimulation of Induced Systemic Resistance (ISR) by B. velezensis
5. Biofilm Formation by B. velezensis
6. Conclusions and Future Prospects
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Metabolite | Genes and gene clusters | Enzyme | Size (kb) | Functions | Controlling Effects | References |
---|---|---|---|---|---|---|
Nonribosomal synthesis of lipopeptides (LP) | ||||||
Surfactin | srfABCD | NRPS | 32.0 | Biofilm, Induction of ISR | Fungi | [20] |
Fengycin | fenABCDE | NRPS | 38.2 | Induction of ISR | Fungi | [41] |
Bacillomycin-D | bmyCBAD | NRPS/PKS | 39.7 | Induction of ISR | Fungi | [33,41] |
Bacillibactin | dhbABCDEF | NRPS | 12.8 | Siderophore production | Microbial competitors | [53] |
Nonribosomal synthesis of polyketides (PK) | ||||||
Difficidin | dfnAYXBCDEFGHIJKLM | NRPS | 71.1 | Direct suppression | Bacteria | [7,40] |
Bacillaene | baeBCDE, acpK, baeGHIJLMNRS | PKS/NRPS | 74.3 | Direct suppression | Bacteria | [40] |
Macrolactin | mlnABCDEFGHI | NRPS | 53.9 | Direct suppression | Bacteria | [30,54] |
Nonribosomal synthesis of dipeptide antibiotics | ||||||
Bacilysin | bacABCDE, ywfG | NRPS | 6.9 | Direct suppression | Bacteria, Cyanobacteria | [55] |
Ribosomal synthesis of bacteriocins | ||||||
Plantazolicin | pznFKGHIAJC DBEL | - | 9.96 | Direct suppression | Bacteria, Nematodes | [37,56] |
Amylocyclicin | acnBACDEF | - | 4.49 | Direct suppression | Bacteria | [38] |
Synthesis of VOCs | ||||||
Acetoin and 2,3-butandiol | alsSD; bdhA | Acetolactate synthase/decarboxylase and 2,3-butanediol dehydrogenase | 3.6 | Induction of ISR | Bacteria, Fungi | [28,52] |
Bacillus Species | Bioactive Metabolites | References |
---|---|---|
B. velezensis | Amylocyclicin, Bacilysin, Bacillomycin-D, Bacillibactin, Bacillaene, Difficidin, Fengycin, Macrolactin, Plantazolicin, Surfactin | [15] |
B. subtilis | Bacillibactin, Bacillaene, Bacilysin, Difficidin, Bacitracin, Fengycin, Locillomycin, Subtilosin, Surfactin | [23,57] |
B. amyloliquefacienssubsp.amyloliquefaciens | Bacillibactin, Bacillaene, Bacillomycin-D, Bacilysin, Fengycin, Surfactin | [23,58] |
B. siamensis | Bacillomycin-D, Bacillaene, Difficidin, Fengycin, Surfactin | [59] |
B. licheniformis | Bacitracin, Lichenysin, Lichenin | [60] |
B. pumilus | Amicoumacin, Bacilysin, Bacircine, Pumilacidin | [61] |
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Rabbee, M.F.; Ali, M.S.; Choi, J.; Hwang, B.S.; Jeong, S.C.; Baek, K.-h. Bacillus velezensis: A Valuable Member of Bioactive Molecules within Plant Microbiomes. Molecules 2019, 24, 1046. https://doi.org/10.3390/molecules24061046
Rabbee MF, Ali MS, Choi J, Hwang BS, Jeong SC, Baek K-h. Bacillus velezensis: A Valuable Member of Bioactive Molecules within Plant Microbiomes. Molecules. 2019; 24(6):1046. https://doi.org/10.3390/molecules24061046
Chicago/Turabian StyleRabbee, Muhammad Fazle, Md. Sarafat Ali, Jinhee Choi, Buyng Su Hwang, Sang Chul Jeong, and Kwang-hyun Baek. 2019. "Bacillus velezensis: A Valuable Member of Bioactive Molecules within Plant Microbiomes" Molecules 24, no. 6: 1046. https://doi.org/10.3390/molecules24061046