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基于模型的蒸汽预处理木质纤维素多进料同步糖化和共发酵优化及放大可实现高浓度乙醇生产。

Model-based optimization and scale-up of multi-feed simultaneous saccharification and co-fermentation of steam pre-treated lignocellulose enables high gravity ethanol production.

作者信息

Wang Ruifei, Unrean Pornkamol, Franzén Carl Johan

机构信息

Division of Industrial Biotechnology, Department of Biology and Biological Engineering, Chalmers University of Technology, Gothenburg, Sweden.

Division of Industrial Biotechnology, Department of Biology and Biological Engineering, Chalmers University of Technology, Gothenburg, Sweden ; National Center for Genetic Engineering and Biotechnology (BIOTEC), Pathum Thani, Thailand.

出版信息

Biotechnol Biofuels. 2016 Apr 18;9:88. doi: 10.1186/s13068-016-0500-7. eCollection 2016.

Abstract

BACKGROUND

High content of water-insoluble solids (WIS) is required for simultaneous saccharification and co-fermentation (SSCF) operations to reach the high ethanol concentrations that meet the techno-economic requirements of industrial-scale production. The fundamental challenges of such processes are related to the high viscosity and inhibitor contents of the medium. Poor mass transfer and inhibition of the yeast lead to decreased ethanol yield, titre and productivity. In the present work, high-solid SSCF of pre-treated wheat straw was carried out by multi-feed SSCF which is a fed-batch process with additions of substrate, enzymes and cells, integrated with yeast propagation and adaptation on the pre-treatment liquor. The combined feeding strategies were systematically compared and optimized using experiments and simulations.

RESULTS

For high-solid SSCF process of SO2-catalyzed steam pre-treated wheat straw, the boosted solubilisation of WIS achieved by having all enzyme loaded at the beginning of the process is crucial for increased rates of both enzymatic hydrolysis and SSCF. A kinetic model was adapted to simulate the release of sugars during separate hydrolysis as well as during SSCF. Feeding of solid substrate to reach the instantaneous WIS content of 13 % (w/w) was carried out when 60 % of the cellulose was hydrolysed, according to simulation results. With this approach, accumulated WIS additions reached more than 20 % (w/w) without encountering mixing problems in a standard bioreactor. Feeding fresh cells to the SSCF reactor maintained the fermentation activity, which otherwise ceased when the ethanol concentration reached 40-45 g L(-1). In lab scale, the optimized multi-feed SSCF produced 57 g L(-1) ethanol in 72 h. The process was reproducible and resulted in 52 g L(-1) ethanol in 10 m(3) scale at the SP Biorefinery Demo Plant.

CONCLUSIONS

SSCF of WIS content up to 22 % (w/w) is reproducible and scalable with the multi-feed SSCF configuration and model-aided process design. For simultaneous saccharification and fermentation, the overall efficiency relies on balanced rates of substrate feeding and conversion. Multi-feed SSCF provides the possibilities to balance interdependent rates by systematic optimization of the feeding strategies. The optimization routine presented in this work can easily be adapted for optimization of other lignocellulose-based fermentation systems.

摘要

背景

同步糖化共发酵(SSCF)操作要达到符合工业规模生产技术经济要求的高乙醇浓度,需要高含量的水不溶性固体(WIS)。此类工艺的根本挑战与培养基的高粘度和抑制剂含量有关。传质不佳以及酵母受到抑制会导致乙醇产量、滴度和生产率降低。在本研究中,通过多进料SSCF对预处理的小麦秸秆进行高固形物SSCF,这是一种分批补料工艺,会添加底物、酶和细胞,并结合酵母在预处理液中的增殖和驯化。使用实验和模拟对组合进料策略进行了系统比较和优化。

结果

对于SO₂催化蒸汽预处理小麦秸秆的高固形物SSCF工艺,在工艺开始时加载所有酶实现的WIS增溶对提高酶水解和SSCF速率至关重要。采用动力学模型来模拟单独水解以及SSCF过程中糖的释放。根据模拟结果,当60%的纤维素被水解时,进料固体底物以使瞬时WIS含量达到13%(w/w)。通过这种方法,累积的WIS添加量超过20%(w/w),且在标准生物反应器中未出现混合问题。向SSCF反应器中补加新鲜细胞可维持发酵活性,否则当乙醇浓度达到40 - 45 g L⁻¹时发酵就会停止。在实验室规模下,优化后的多进料SSCF在72小时内产生了57 g L⁻¹乙醇。该工艺具有可重复性,在SP生物精炼示范工厂的10 m³规模下产生了52 g L⁻¹乙醇。

结论

采用多进料SSCF配置和模型辅助工艺设计,WIS含量高达22%(w/w)的SSCF具有可重复性和可扩展性。对于同步糖化发酵,整体效率取决于底物进料和转化的平衡速率。多进料SSCF通过系统优化进料策略提供了平衡相互依赖速率的可能性。本研究中提出的优化程序可轻松适用于其他基于木质纤维素的发酵系统的优化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aba9/4835939/d6b6e9b1e7fd/13068_2016_500_Fig1_HTML.jpg

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