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低成本富营养油棕渣水解液用于生物琥珀酸生产

Low cost nutrient-rich oil palm trunk bagasse hydrolysate for bio-succinic acid production by .

机构信息

Department of Chemical and Process Engineering, Faculty of Engineering and Built Environment, Universiti Kebangsaan Malaysia, Bangi, Malaysia.

Centre for Sustainable Process Technology (CESPRO), Faculty of Engineering and Built Environment, Universiti Kebangsaan Malaysia, Bangi, Malaysia.

出版信息

Prep Biochem Biotechnol. 2022;52(8):950-960. doi: 10.1080/10826068.2021.2015692. Epub 2021 Dec 22.

DOI:10.1080/10826068.2021.2015692
PMID:34935581
Abstract

Economical source of succinic acid (SA) is most sought-after as a key platform chemical for a wide range of applications. Low-cost production of bio-succinic acid (bio-SA) from a renewable biomass resource i.e., oil palm trunk (OPT) is reported in this paper. Apart from carbon source, nitrogen source and mineral salts are other important nutrients affecting microbial cell growth and bio-SA biosynthesis by 130Z. In order to access and optimize nutrient requirement of the latter two sources, their effects in terms of types and concentrations were investigated. The findings highlighted the importance of selecting proper nitrogen source in fermentation. The possibility of producing bio-SA from OPT economically can be achieved through minimal supply of 5 g/L yeast extract compared to that generally supplemented 15 g/L with a similar yield (0.47 g/g). In addition, a higher bio-SA yield (0.49 g/g) was achieved without adding mineral salts, which could further reduce fermentation cost. The use of minimally supplemented hydrolysate resulted in 21.1 g/L of bio-SA with a satisfactory yield (0.58 g/g) in a batch bioreactor system with an estimated 56.4% in cost savings. Conclusively, OPT bagasse hydrolysate is a nutrient-rich feedstock that can be practically utilized for bio-SA production.

摘要

作为广泛应用的关键平台化学品,人们最希望获得经济实惠的琥珀酸(SA)来源。本文报道了从可再生生物质资源——油棕树干(OPT)低成本生产生物琥珀酸(bio-SA)的方法。除碳源外,氮源和无机盐也是影响 130Z 微生物细胞生长和生物-SA 生物合成的重要营养物质。为了了解并优化后两种来源的营养需求,研究了它们在类型和浓度方面的影响。研究结果强调了在发酵中选择合适氮源的重要性。与通常添加 15g/L 的酵母提取物相比,通过最小供应 5g/L 的酵母提取物,就可以经济地从 OPT 生产生物-SA,同时产量相似(0.47g/g)。此外,在不添加无机盐的情况下,可以实现更高的生物-SA 产量(0.49g/g),这可以进一步降低发酵成本。在分批生物反应器系统中,使用最小补充的水解物可产生 21.1g/L 的生物-SA,产率(0.58g/g)令人满意,估计可节省 56.4%的成本。总之,OPT 蔗渣水解物是一种营养丰富的原料,可实际用于生物-SA 生产。

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