Wang Hai Kuan, Ng Yi Kai, Koh Eileen, Yao Lina, Chien Ang Sze, Lin Hui Xin, Lee Yuan Kun
Key Laboratory of Industrial Fermentation Microbiology, Ministry of Education, College of Biotechnology, Tianjin University of Science and Technology, Tianjin, People's Republic of China.
Department of Microbiology, National University of Singapore, Singapore.
Food Microbiol. 2015 Oct;51:25-32. doi: 10.1016/j.fm.2015.04.012. Epub 2015 May 6.
Bifidobacteria are anaerobes and are difficult to culture in conventional fermentation system. It was observed that Bacillus subtilis natto enhanced growth of Bifidobacterium animalis subsp. lactis v9 by about 3-fold in a whole soybean solid-state co-fermentation, in a non-anaerobic condition. For the purpose of understanding the metabolic interactions between Bif. animalis subsp. lactis v9 and Ba. subtilis natto, the transcriptome of Bif. animalis subsp. lactis v9 and Ba. subtilis natto was analyzed in single and mixed cultures using RNA-Seq. Compared with the single culture, 459 genes of Bif. animalis subsp. lactis v9 were up regulated and 21 were down regulated in the mixed culture with Ba. subtilis natto, with more than 2-fold difference. Predictive metagenomic analyses suggested that Ba. subtilis natto up regulated transport functions, complex carbohydrates and amino acid metabolism, DNA repair, oxydative stress-related functions, and cell growth of Bif. animalis subsp. lactis v9. In the mixed culture with Bif. animalis subsp. lactis v9, only 3 transcripts of Ba. subtilis natto were over-expressed and 3115 were under-expressed with more than 2-fold difference. The highest down-regulated genes were those involved in carbohydrate and amino acid metabolism. The data presented here demonstrated a parasitic-like interaction regulated at the transcription level, between Ba. subtilis natto and Bif. animalis subsp. lactis in the mixed culture. The over-expression of genes involved in substrate uptake and metabolism in Bif. animalis subsp. lactis in the mixed culture nevertheless, led to its higher cell concentration in the nutrient rich whole soybean medium.
双歧杆菌是厌氧菌,在传统发酵系统中难以培养。据观察,在非厌氧条件下的全豆固态共发酵中,纳豆芽孢杆菌可使动物双歧杆菌乳酸亚种v9的生长增强约3倍。为了了解动物双歧杆菌乳酸亚种v9与纳豆芽孢杆菌之间的代谢相互作用,使用RNA测序分析了动物双歧杆菌乳酸亚种v9和纳豆芽孢杆菌在单培养和混合培养中的转录组。与单培养相比,在与纳豆芽孢杆菌的混合培养中,动物双歧杆菌乳酸亚种v9有459个基因上调,21个基因下调,差异超过2倍。预测宏基因组分析表明,纳豆芽孢杆菌上调了动物双歧杆菌乳酸亚种v9的转运功能、复合碳水化合物和氨基酸代谢、DNA修复、氧化应激相关功能以及细胞生长。在与动物双歧杆菌乳酸亚种v9的混合培养中,纳豆芽孢杆菌只有3个转录本过度表达,3115个转录本表达不足,差异超过2倍。下调程度最高的基因是参与碳水化合物和氨基酸代谢的基因。此处给出的数据表明,在混合培养中,纳豆芽孢杆菌与动物双歧杆菌乳酸亚种之间存在转录水平调控的类似寄生的相互作用。然而,在混合培养中,动物双歧杆菌乳酸亚种中参与底物摄取和代谢的基因的过度表达导致其在营养丰富的全豆培养基中细胞浓度更高。