ARTICLE
13 August 2024
Isolation and Experimental Study on Bacteriostasis of Bacillus haynesii
Jiedan Liao Mengbo Yu Jiaming Li Zhiheng Xie Wanjun Gu Shuzhen Zhou Yi Ma
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1 College of Animal Science and Technology, Foshan University, Foshan 528225, Guangdong Province, China,
2 Foshan City Nanhai Eastern Along Pharmaceutical Co., Ltd, Foshan 528234, Guangdong Province, China; Department of Veterinary Medicine, College of Coastal Agricultural Sciences, Guangdong Ocean University, Zhanjiang 524088, Guangdong Province, China,
3 Foshan City Nanhai Eastern Along Pharmaceutical Co., Ltd, Foshan 528234, Guangdong Province, China,
4 College of Animal Science and Technology, Foshan University, Foshan 528225, Guangdong Province, China; Foshan City Nanhai Eastern Along Pharmaceutical Co., Ltd, Foshan 528234, Guangdong Province, China,
5 Department of Veterinary Medicine, College of Coastal Agricultural Sciences, Guangdong Ocean University, Zhanjiang 524088, Guangdong Province, China,
JCNR 2024 , 8(7), 219–227; https://doi.org/10.26689/jcnr.v8i7.7874
© 2024 by the Authors. Licensee Whioce Publishing, Singapore. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution 4.0 International License ( https://creativecommons.org/licenses/by/4.0/ )
Abstract

This experiment aims to isolate and inhibit three bacteria strains to provide candidate strains for the development and application of probiotics. Using bacterial morphological identification, 16S rDNA sequence alignment, and genetic evolution analysis, three strains were identified as Bacillus haynesii, named HP01, HD02, and HK03. Through biosurfactant activity tests, C-TAB tests, hemolysis tests, and antibacterial activity analyses, the results showed that all three strains of B. haynesii exhibited significant biosurfactant activity. Additionally, the solutions of the three strains demonstrated a pronounced antibacterial effect on Staphylococcus aureus. The resistance and safety of commonly used drugs were evaluated using the tablet diffusion method and a mouse feeding test. The results indicated that the three strains were not resistant to commonly used antibacterial drugs, and the oral bacterial solution was not pathogenic and had high safety in mice. The study concluded that all three B. haynesii strains met the basic conditions for use, with B. haynesii HP01 being the most promising candidate.

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