淀粉类作物生产生物燃料:先进技术和当前前景

IF 2.6 3区 生物学 Q3 MICROBIOLOGY
Dharmendra Kumar, Gitika Thakur, Pradeep Singh, Som Dutt, Vikas Mangal, Dinesh Kumar, Brajesh Singh
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引用次数: 0

摘要

用淀粉类作物生产的生物乙醇可持续地替代传统化石燃料已经引起了极大的兴趣。这篇综述文章提供了该领域的当前观点和先进技术的概述,强调了高效和环境友好过程的重要性。淀粉类作物,如小麦、大麦、木薯、马铃薯和玉米,淀粉含量高,是生产生物乙醇的关键原料。先进技术对提高整个生产链的效率至关重要。酶水解已经成为一种创新的方法,利用酶将淀粉分解成可发酵的糖。与传统的酸法或热法相比,这种方法更精确、更有效。同步糖化和发酵(SSF)是另一种先进的技术,结合发酵和酶水解,简化生产和降低总体成本。基因工程的创新,特别是CRISPR/Cas9系统和菌株的改进,显著提高了发酵效率、底物耐受性和对抑制剂的抗性,从而提高了产量和工艺稳健性。这种方法符合循环生物经济原则,即废物流和副产品得到有效利用。综合生物精炼厂的出现支持循环生物经济原则,使生物乙醇和增值副产品的联合生产成为可能,最大限度地利用资源,最大限度地减少浪费。总之,尖端生物技术的融合和可持续的工艺整合正在重新定义淀粉类作物生物乙醇生产的未来,持续的研发准备推动进一步的创新和可扩展性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Biofuel production from starchy crops: advanced technology and current perspectives

The sustainable replacement of conventional fossil fuels with bioethanol produced from starchy crops has garnered significant interest. This review paper provides current perspectives in the field and an overview of advanced technologies, emphasising the importance of efficient and environmentally friendly processes. Starchy crops such as wheat, barley, cassava, potato, and maize possess high starch content, which serves as a key feedstock for bioethanol production. Advanced technologies are crucial in improving the efficiency of the entire production chain. Enzymatic hydrolysis has emerged as an innovative method, employing enzymes to break down starch into fermentable sugars. This approach is more precise and efficient compared to traditional acid or heat-based methods. Simultaneous Saccharification and Fermentation (SSF) is another advanced technique that combines fermentation and enzymatic hydrolysis, streamlining production and lowering overall costs. Innovations in genetic engineering, particularly the CRISPR/Cas9 system and strain improvement, have significantly enhanced fermentation efficiency, substrate tolerance, and resistance to inhibitors, resulting in higher yields and greater process robustness. This approach aligns with the circular bio-economy principle, where waste streams and by-products are efficiently utilised. The emergence of integrated biorefineries supports circular bioeconomy principles by enabling the co-production of bioethanol and value-added by-products, maximizing resource utilization and minimizing waste. In conclusion, the convergence of cutting-edge biotechnologies and sustainable process integration is redefining the future of bioethanol production from starchy crops, with ongoing R&D poised to drive further innovation and scalability.

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来源期刊
Archives of Microbiology
Archives of Microbiology 生物-微生物学
CiteScore
4.90
自引率
3.60%
发文量
601
审稿时长
3 months
期刊介绍: Research papers must make a significant and original contribution to microbiology and be of interest to a broad readership. The results of any experimental approach that meets these objectives are welcome, particularly biochemical, molecular genetic, physiological, and/or physical investigations into microbial cells and their interactions with their environments, including their eukaryotic hosts. Mini-reviews in areas of special topical interest and papers on medical microbiology, ecology and systematics, including description of novel taxa, are also published. Theoretical papers and those that report on the analysis or ''mining'' of data are acceptable in principle if new information, interpretations, or hypotheses emerge.
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