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Antifouling Potential of Bacteria Isolated from a Marine Biofilm 被引量:1

Antifouling Potential of Bacteria Isolated from a Marine Biofilm
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摘要 Marine microorganisms are a new source of natural antifouling compounds. In this study, two bacterial strains, Kytococcus sedentarius QDG-B506 and Bacillus cereus QDG-B509, were isolated from a marine biofilm and identified. The bacteria fermentation broth could exert inhibitory effects on the growth of Skeletonema costatum and barnacle larvae. A procedure was employed to extract and identify the antifouling compounds. Firstly, a toxicity test was conducted by graduated pH and liquid-liquid extraction to determine the optimal extraction conditions. The best extraction conditions were found to be pH 2 and 100% petroleum ether. The EC50 value of the crude extract of K. sedentarius against the test microalgae was 236.7 ± 14.08 μg mL-1, and that of B. cereus was 290.6 ± 27.11 μg mL-1. Secondly, HLB SPE columns were used to purify the two crude extracts. After purification, the antifouling activities of the two extracts significantly increased: the EC50 of the K. sedentarius extract against the test microalgae was 86.4 ± 3.71 μg mL-1, and that of B. cereus was 92.6 ± 1.47 μg mL-1. These results suggest that the metabolites produced by the two bacterial strains are with high antifouling activities and they should be fatty acid compounds. Lastly, GC-MS was used for the structural elucidation of the compounds. The results show that the antifouling compounds produced by the two bacterial strains are myristic, palmitic and octadecanoic acids. Marine microorganisms are a new source of natural antifouling compounds. In this study, two bacterial strains, Kytococcus sedentarius QDG-B506 and Bacillus cereus QDG-B509, were isolated from a marine biofilm and identified. The bacteria fermentation broth could exert inhibitory effects on the growth of Skeletonema costatum and barnacle larvae. A procedure was employed to extract and identify the antifouling compounds. Firstly, a toxicity test was conducted by graduated pH and liquid-liquid extraction to determine the optimal extraction conditions. The best extraction conditions were found to be pH 2 and 100% petroleum ether. The EC50 value of the crude extract of K. sedentarius against the test microalgae was 236.7 ± 14.08 μg mL-1, and that of B. cereus was 290.6 ± 27.11 μg mL-1. Secondly, HLB SPE columns were used to purify the two crude extracts. After purification, the antifouling activities of the two extracts significantly increased: the EC50 of the K. sedentarius extract against the test microalgae was 86.4 ± 3.71 μg mL-1, and that of B. cereus was 92.6 ± 1.47 μg mL-1. These results suggest that the metabolites produced by the two bacterial strains are with high antifouling activities and they should be fatty acid compounds. Lastly, GC-MS was used for the structural elucidation of the compounds. The results show that the antifouling compounds produced by the two bacterial strains are myristic, palmitic and octadecanoic acids.
出处 《Journal of Ocean University of China》 SCIE CAS 2014年第5期799-804,共6页 中国海洋大学学报(英文版)
基金 supported by the National Basic Research Program of China (973 program, No. 2010CB735806)
关键词 marine biofilm BACTERIA antifouling activity fatty acids 细菌发酵液 海洋生物膜 防污 蜡状芽孢杆菌 粗提取物 生长抑制作用 提取条件 EC50
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  • 1Alzieu, C., 1998. Tributyltin: Case study of a chronic contami- nant in the coastal environment. Ocean and Coastal Man- agement, 40: 23-26.
  • 2Armstrong, E., Boyd, K. G., and Burgess, J. G., 2000. Preven- tion of marine biofouling using natural compounds from ma- rine organisms. Biotechnology Annual Review, 6:221-241.
  • 3Bazes, A., Silkina, A., Douzenel, P., Fa, F., Kervarec, N., Morin, D., Berge, J. P., and Bourgougnon, N., 2009. Investigation of the antifouling constituents from the brown alga Sargassum muticum (Yendo) Fensholt. Journal of Applied Phycology, 10: 1573-1576.
  • 4Bhagavathy, S., Sumathi, P., and Jancy, S. B., 2011. Green al- gae Chlorococcum humicola-A new source of bioactive compounds with antimicrobial activity. Asian Pacific Journal of Tropical Biomedicine, 1: S 1-S7.
  • 5Bhattarai, H. D., Ganti, V. S., and Paudel, B., 2006. Isolation of antifouling compounds from the marine bacterium, She- wanella oneidensis SCH0402. Worm Journal of Microbiol- ogy and Biotechnology, 23: 243-249.
  • 6Buma, A. G. J., Sjollema, S. B., van de Poll, W. H., K.lamer, H. J. C., and Bakker, J. F., 2009. Impact of the antifouling agent Irgarol 1051 on marine phytoplankton species. Journal of Sea Research, 61: 133-139.
  • 7Callow, M. E., and Callow, J. A., 2002. Marine biofouling: A sticky problem. Biologist, 49: 1-5.
  • 8Clare, A. S., 1996. Marine naeral product antifoulants: Status and potential. Biofouling, 9:221-229.
  • 9Daffom, K. A., Lewis, J. A., and Johnston, E. L., 2011. Anti- fouling strategies: History and regulation, ecological impacts and mitigation. Marine Pollution Bulletin, 62 (3): 453-465.
  • 10Dahlstrom, M., Martensson, L., Jonsson, P., Amebrant, T., and Elwing, H., 2002. Surface active adrenoreceptor compounds prevent the settlement of cyprid larvae ofBalanus improvisus. Biofouling, 16: 191-198.

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