关于维生素B9生产的首次报道,包括酵母中维生素B9的定量分析。

Luca Mastella, Vittorio G Senatore, Lorenzo Guzzetti, Martina Coppolino, Luca Campone, Massimo Labra, Tiziana Beltrani, Paola Branduardi
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引用次数: 1

摘要

背景:对天然衍生产品的需求不断增长。在这种情况下,诸如前生物制剂和后生物制剂、抗氧化剂和维生素等营养保健品是突出的例子,但其中许多主要是通过化学合成生产的。从2019年到2024年,全球叶酸市场预计将以5.3%的复合年增长率增长,到2024年底将达到10.2亿美元。维生素B9,俗称叶酸,是人体必需的微量营养素。作为一碳转移反应的辅助因子,它参与了许多生化途径,其中包括核苷酸和氨基酸的合成。除了植物外,许多微生物也能自然地生产它,这可以为建立生产过程铺平道路。在这项工作中,我们探索了利用刺舍弗somyces stipitis通过微生物发酵生产天然维生素B9,作为化学合成的可持续替代品。结果:几种木质纤维素残质生物质(如玉米秸秆、麦秸或甘蔗渣)在预处理和水解过程中释放的糖主要为葡萄糖和木糖。我们优化了用这些糖配制的最小培养基的生长条件,并研究了氧合和氮源对叶酸生成的关键作用。首先在摇瓶中评估维生素B9的产量,然后在生物反应器中评估,获得叶酸产量高达3.7±0.07 mg/L,这是迄今为止文献中考虑野生型微生物时发现的最高产量。此外,叶酸的生产几乎完全转向了减少维生素,这是对人类代谢活跃的。结论:首次利用非酵母菌stipitis生产叶酸。这些结果证实了它作为生产叶酸的微生物细胞工厂的潜力,这也可以通过基因工程策略和微调发酵条件和营养需求来改善。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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First report on Vitamin B9 production including quantitative analysis of its vitamers in the yeast Scheffersomyces stipitis.

Background: The demand for naturally derived products is continuously growing. Nutraceuticals such as pre- and post-biotics, antioxidants and vitamins are prominent examples in this scenario, but many of them are mainly produced by chemical synthesis. The global folate market is expected to register a CAGR of 5.3% from 2019 to 2024 and reach USD 1.02 billion by the end of 2024. Vitamin B9, commonly known as folate, is an essential micronutrient for humans. Acting as a cofactor in one-carbon transfer reactions, it is involved in many biochemical pathways, among which the synthesis of nucleotides and amino acids. In addition to plants, many microorganisms can naturally produce it, and this can pave the way for establishing production processes. In this work, we explored the use of Scheffersomyces stipitis for the production of natural vitamin B9 by microbial fermentation as a sustainable alternative to chemical synthesis.

Results: Glucose and xylose are the main sugars released during the pretreatment and hydrolysis processes of several residual lignocellulosic biomasses (such as corn stover, wheat straw or bagasse). We optimized the growth conditions in minimal medium formulated with these sugars and investigated the key role of oxygenation and nitrogen source on folate production. Vitamin B9 production was first assessed in shake flasks and then in bioreactor, obtaining a folate production up to 3.7 ± 0.07 mg/L, which to date is the highest found in literature when considering wild type microorganisms. Moreover, the production of folate was almost entirely shifted toward reduced vitamers, which are those metabolically active for humans.

Conclusions: For the first time, the non-Saccharomyces yeast S. stipitis was used to produce folate. The results confirm its potential as a microbial cell factory for folate production, which can be also improved both by genetic engineering strategies and by fine-tuning the fermentation conditions and nutrient requirements.

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