极端嗜热菌 Caldicellulosiruptor bescii 发酵植物生物质联产绿色氢气和丙酮:技术经济分析。

Plant biomass fermentation by the extreme thermophile Caldicellulosiruptor bescii for co-production of green hydrogen and acetone: Technoeconomic analysis.

机构信息

Department of Chemical and Biomolecular Engineering, North Carolina State University, Raleigh, NC 27695, United States.

Department of Forestry and Environmental Resources, North Carolina State University, Raleigh, NC 27695, United States.

出版信息

Bioresour Technol. 2022 Mar;348:126780. doi: 10.1016/j.biortech.2022.126780. Epub 2022 Jan 29.

Abstract

A variety of chemical and biological processes have been proposed for conversion of sustainable low-cost feedstocks into industrial products. Here, a biorefinery concept is formulated, modeled, and analyzed in which a naturally (hemi)cellulolytic and extremely thermophilic bacterium, Caldicellulosiruptor bescii, is metabolically engineered to convert the carbohydrate content of lignocellulosic biomasses (i.e., soybean hulls, transgenic poplar) into green hydrogen and acetone. Experimental validation of C. bescii fermentative performance demonstrated 82% carbohydrate solubilization of soybean hulls and 55% for transgenic poplar. A detailed technical design, including equipment specifications, provides the basis for an economic analysis that establishes metabolic engineering targets. This robust industrial process leveraging metabolically engineered C. bescii yields 206 kg acetone and 25 kg H per metric ton of soybean hull, or 174 kg acetone and 21 kg H per metric ton transgenic poplar. Beyond this specific case, the model demonstrates industrial feasibility and economic advantages of thermophilic fermentation.

摘要

已经提出了多种化学和生物过程,用于将可持续的低成本原料转化为工业产品。在这里,我们提出了一个生物炼制概念,对其进行了建模和分析,其中一种天然(半)纤维素分解和极其耐热的细菌 Caldicellulosiruptor bescii 通过代谢工程进行改造,以将木质纤维素生物质(即大豆壳、转基因杨树)中的碳水化合物转化为绿色氢气和丙酮。C. bescii 发酵性能的实验验证表明,大豆壳的碳水化合物溶解率为 82%,转基因杨树的溶解率为 55%。详细的技术设计,包括设备规格,为经济分析提供了基础,从而确定了代谢工程的目标。利用经过代谢工程改造的 C. bescii 的这种强大的工业工艺可生产 206 公斤丙酮和 25 公斤每公吨大豆壳的氢气,或 174 公斤丙酮和 21 公斤每公吨转基因杨树的氢气。超出这一具体案例,该模型展示了高温发酵的工业可行性和经济优势。

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