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少孢根霉NTU 5在塑料复合载体生物反应器中对黑豆奶中两种异黄酮苷元的富集

Enrichment of two isoflavone aglycones in black soymilk by Rhizopus oligosporus NTU 5 in a plastic composite support bioreactor.

作者信息

Liu Chi-Te, Erh Mei-Hui, Lin Shin-Pin, Lo Kai-Yin, Chen Kuan-I, Cheng Kuan-Chen

机构信息

Institute of Biotechnology, National Taiwan University, No. 1, Sec. 4, Roosevelt Road, Taipei, Taiwan.

Graduate Institute of Food Science & Technology, National Taiwan University, No. 1, Sec. 4, Roosevelt Road, Taipei, Taiwan.

出版信息

J Sci Food Agric. 2016 Aug;96(11):3779-86. doi: 10.1002/jsfa.7569. Epub 2016 Feb 8.

Abstract

BACKGROUND

A plastic composite support (PCS) bioreactor was implemented to evaluate the effects on isoflavone deglycosylation in black soymilk fermented by Rhizopus oligosporus NTU 5.

RESULTS

Evaluation for the optimal PCS for mycelia immobilisation was conducted, which led to the significant results that the most mycelium weight (0.237 g per PCS, P < 0.05) is held by an S-type PCS; therefore, it was selected for black soymilk fermentation. It was found that the PCS fermentation system without pH control exhibits better efficiency of isoflavone bioconversion (daidzin to daidzein, and genistin to genistein) than the one with pH control at pH 6.5. As for the long-run fermentation, those without pH control indeed accelerate the isoflavone bioconversion by continuously releasing β-glucosidase into soymilk. Deglycosylation can be completed in 8 to 24 h and sustained for at least 34 days as 26 batches. The non-pH-control fermentation system also exhibits the highest total phenolic content (ranged from 0.147 to 0.340 mg GAE mL(-1) sample) when compared to the pH-controlled and suspended ones. Meanwhile, the black soymilk from the 22nd batch with 8 h fermentation demonstrated the highest DPPH radical scavenging effect (54.7%).

CONCLUSION

A repeated-batch PCS fermentation system was established to accelerate the deglycosylation rate of isoflavone in black soymilk. © 2015 Society of Chemical Industry.

摘要

背景

采用塑料复合载体(PCS)生物反应器评估少孢根霉NTU 5发酵黑豆乳中异黄酮去糖基化的效果。

结果

对用于固定菌丝体的最佳PCS进行了评估,结果显示S型PCS固定的菌丝体重量最高(每个PCS为0.237 g,P < 0.05),因此被选用于黑豆乳发酵。结果发现,不控制pH的PCS发酵系统在异黄酮生物转化(黄豆苷转化为黄豆黄素,染料木苷转化为染料木素)方面比在pH 6.5控制pH的系统效率更高。对于长期发酵,不控制pH的系统确实通过持续向豆乳中释放β-葡萄糖苷酶加速了异黄酮的生物转化。去糖基化可在8至24小时内完成,并可持续至少34天,共26批次。与控制pH和悬浮发酵的系统相比,不控制pH的发酵系统还具有最高的总酚含量(范围为0.147至0.340 mg GAE mL(-1)样品)。同时,发酵8小时的第22批次黑豆乳表现出最高的DPPH自由基清除效果(54.7%)。

结论

建立了重复批次的PCS发酵系统以加速黑豆乳中异黄酮的去糖基化速率。© 2015化学工业协会。

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