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中国生物工程杂志

China Biotechnology
China Biotechnology  2022, Vol. 42 Issue (3): 47-54    DOI: 10.13523/j.cb.2108024
    
Research on a Fed-batch of Nitrogen Source Fermentation Process to Improve the Spores of Bacillus Licheniformis BF-002
XU Hui,DING Jian,SHI Zhong-ping**()
Key Laboratory of Industrial Biotechnology, Ministry of Education, School of Biotechnology, Jiangnan University, Wuxi 214122, China
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Abstract  

Objective: Base on spore products of Bacillus licheniformis can be produced comparatively easily and incorporated into everyday foods/feeds with high stability retaining their viability. The spore production with a good sporulation efficiency is a key step in bio-products development. It is important to study a production method that can reduce manufacturing costs and realize automatic control to enhance the productivity of Bacillus licheniformis and provide a way for other bacilli to heighten the productivity of spores. Methods: The optimal culture temperature, carbon sources and nitrogen sources of Bacillus licheniformis BF-002 were determined by the single factor experiment in shake flasks. On this basis, the experiment of the 5 L fermentor was carried out. It explored the relationship between spore formation and nitrogen sources that different concentrations of nitrogen sources were added initially. It controlled relative amino nitrogen level by fed-batch, constant speed of fed-batch and fed-batch on tail gas CO2 concentration feedback. The computer control program was written in Python language to realize automatic control. Results: The optimal culture temperature, carbon source and nitrogen source determined by the single factor experiment were: 37℃, glucose and peptone from fish: soybean meal=1∶1. The results showed that the lower the relative amino nitrogen was, the higher the spore rate was. The relative amino nitrogen was controlled at the level of 8.42 mg / OD600 by fed-batch on tail gas CO2 concentration feedback, and the number of spores can reach 4.25×10 9 cfu/ mL. The number of spores can get 1.87×1010 cfu / mL by using an automatic fed-batch of ammonium chloride, 4.4 times the optimal batch in the early stage. Conclusion: There was a correlation between spore rate and relative amino nitrogen. The strategy of using an automatic fed-batch of ammonium chloride can reduce the production cost and realize automatic control, which provides an idea for the study of Bacillus.



Key wordsBacillus licheniformis      Spore      Relative amino nitrogen      Automatic control     
Received: 10 August 2021      Published: 07 April 2022
ZTFLH:  Q819  
Corresponding Authors: Zhong-ping SHI     E-mail: zpshi@jiangnan.edu.cn
Cite this article:

XU Hui, DING Jian, SHI Zhong-ping. Research on a Fed-batch of Nitrogen Source Fermentation Process to Improve the Spores of Bacillus Licheniformis BF-002. China Biotechnology, 2022, 42(3): 47-54.

URL:

https://manu60.magtech.com.cn/biotech/10.13523/j.cb.2108024     OR     https://manu60.magtech.com.cn/biotech/Y2022/V42/I3/47

Fig.1 Culture temperature, carbon sources and nitrogen sources effects on the cells number,spores and spore rate of BF-002 (a) Culture temperature (b) Carbon sources (c) Nitrogen sources (d) Ratio of peptone from fish and soybean meal
Fig.2 Effect of initial nitrogen source on spores (a), (b) Different initial nitrogen source concentration effects on the cells number, spores and spore rate of BF-002 in shake flask experiment and in 5 L fermentor (c) Relative amino nitrogen and spore rate of BF-002
Fig.3 Effect of different flow rates on the cells number, spores, spore rate and relative amino nitrogen (a) Growth curve of BF-002 (b)The cells number, spores, spore rate and relative amino nitrogen of different speed
Fig.4 Fermentation performance of fed-batch (a) Fed-batch based on carbon dioxide in the first 9 hours (b) The cells number, spores, spore rate and relative amino nitrogen of fed-batch. The red arrow points to the time of nitrogen supplement source.
Fig.5 Fermentation performance of fed-batch with CO2 variable feedback (a) The cells number, spores, spore rate and relative amino nitrogen of fed-batch with CO2 variable feedback (b) CO2 variable of fed-batch
Fig.6 Fermentation performance of automatic fed ammonium chloride
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