4.6 Article

Response Surface Methodology Optimization of Fermentation Conditions for Rapid and Efficient Accumulation of Macrolactin A by Marine Bacillus amyloliquefaciens ESB-2

期刊

MOLECULES
卷 18, 期 1, 页码 408-417

出版社

MDPI
DOI: 10.3390/molecules18010408

关键词

macrolactin A; fermentation; Bacillus amyloliquefaciens; response surfaces methodology; marine antibiotics

资金

  1. Qianjiang Talent Plan [2012R10068]
  2. National Natural Science Foundation of China [40906080, 81273386]
  3. Zhejiang Marine Biotechnology Innovation Team [2012R10029-2]
  4. Ningbo Marine Algae Biotechnology Team [2011B81007]
  5. Subject Project of Ningbo University [XKL11D2103, XKC11002]
  6. Creative Open Experiment Project of Ningbo University [Cxxkf-201226]
  7. K.C. Wong Magna Fund in Ningbo University

向作者/读者索取更多资源

In the present work, an antibiotic-producing marine bacterium was isolated from a seawater sample collected from Yuhuan, Zhejiang, China, identified and named as Bacillus amyloliquefaciens ESB-2 on the basis of phenotypic characteristics and 16S rRNA gene sequencing. Response surface methodology was applied to optimize the fermentation conditions for rapid and efficient accumulation of macrolactin A, a pharmacologically important marine antibiotic. Eight fermentation conditions were examined for their significance on macrolactin A production using Plackett-Burman factorial design, where peptone, medium volume and temperature significantly improved production rate. Further optimization was carried out using Box-Behnken design of experiments to study the influence of process variables. The optimized fermentation condition for maximum production was peptone 14.8 mg/mL, yeast extract 1 mg/mL, FePO4 0.01 mg/mL, temperature 26.3 degrees C, initial pH value 6.0, medium volume 72.4%, rotation speed 150 r/min, inoculation 5% and fermented for 2 days. Under the optimized conditions, the concentration of macrolactin A reached 21.63 mg/L, representing a 2.4-fold increase compared to the original standard condition, which was also 17% higher than previous highest report of 18.5 mg/L and three times higher in terms of daily productivity.

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