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Correction published on 8 September 2023, see Antibiotics 2023, 12(9), 1420.
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Article

Antimicrobial Properties of Bacillus Probiotics as Animal Growth Promoters

1
Griffith Institute for Drug Discovery (GRIDD), Griffith University, Brisbane, QLD 4111, Australia
2
Institute for Future Farming Systems, Central Queensland University, Rockhampton, QLD 4702, Australia
3
Bioproton Pty Ltd., Brisbane, QLD 4110, Australia
4
School of Environment and Science, Griffith University, Brisbane, QLD 4111, Australia
*
Author to whom correspondence should be addressed.
Antibiotics 2023, 12(2), 407; https://doi.org/10.3390/antibiotics12020407
Submission received: 30 January 2023 / Revised: 14 February 2023 / Accepted: 17 February 2023 / Published: 17 February 2023 / Corrected: 8 September 2023

Abstract

Antibiotic growth promoters (AGPs) suppress the growth of infectious pathogens. These pathogens negatively impact agricultural production worldwide and often cause health problems if left untreated. Here, we evaluate six Bacillus strains (BPR-11, BPR-12, BPR-13, BPR-14, BPR-16 and BPR-17), which are known for their ability to survive harsh environmental conditions, as AGP replacements in animal feed. Four of these Bacillus strains (BPR-11, BPR-14, BPR-16 and BPR-17) showed antimicrobial activity against the pathogenic strains Clostridium perfringens, Escherichia coli and Staphylococcus aureus at 25 μg/mL, with BPR-16 and BPR-17 also able to inhibit Pseudomonas aeruginosa and Salmonella enterica at 100 μg/mL. Further chemical investigation of BPR-17 led to the identification of eight metabolites, namely C16, C15, C14 and C13 surfactin C (1–4), maculosin (5), maculosine 2 (6), genistein (7) and daidzein (8). Purified compounds (1–4) were able to inhibit all the tested pathogens with MIC values ranging from 6.25 to 50 μg/mL. Maculosin (5) and maculosine 2 (6) inhibited C. perfringens, E. coli and S. aureus with an MIC of 25 μg/mL while genistein (7) and daidzein (8) showed no activity. An animal trial involving feeding BPR-11, BPR-16 and BPR-17 to a laboratory poultry model led to an increase in animal growth, and a decrease in feed conversion ratio and mortality. The presence of surfactin C analogues (3–4) in the gut following feeding with probiotics was confirmed using an LC–MS analysis. The investigation of these Bacillus probiotics, their metabolites, their impacts on animal performance indicators and their presence in the gastrointestinal system illustrates that these probiotics are effective alternatives to AGPs.
Keywords: animal feed; antimicrobials; Bacillus; omics; probiotics; spore-forming animal feed; antimicrobials; Bacillus; omics; probiotics; spore-forming

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MDPI and ACS Style

Tran, C.; Horyanto, D.; Stanley, D.; Cock, I.E.; Chen, X.; Feng, Y. Antimicrobial Properties of Bacillus Probiotics as Animal Growth Promoters. Antibiotics 2023, 12, 407. https://doi.org/10.3390/antibiotics12020407

AMA Style

Tran C, Horyanto D, Stanley D, Cock IE, Chen X, Feng Y. Antimicrobial Properties of Bacillus Probiotics as Animal Growth Promoters. Antibiotics. 2023; 12(2):407. https://doi.org/10.3390/antibiotics12020407

Chicago/Turabian Style

Tran, Charlie, Darwin Horyanto, Dragana Stanley, Ian E. Cock, Xiaojing Chen, and Yunjiang Feng. 2023. "Antimicrobial Properties of Bacillus Probiotics as Animal Growth Promoters" Antibiotics 12, no. 2: 407. https://doi.org/10.3390/antibiotics12020407

APA Style

Tran, C., Horyanto, D., Stanley, D., Cock, I. E., Chen, X., & Feng, Y. (2023). Antimicrobial Properties of Bacillus Probiotics as Animal Growth Promoters. Antibiotics, 12(2), 407. https://doi.org/10.3390/antibiotics12020407

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