利用非常规酵母热带假丝酵母生产生物乙醇的工艺

L. Jamai, M. Ettayebi
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引用次数: 3

摘要

为了通过消除单独的糖化步骤来简化发酵过程,已经开发了许多能够分泌葡萄糖淀粉酶和/或α-淀粉酶的转基因酿酒葡萄球菌菌株。这项工作采用了一种不同的方法来消除糖化步骤。培养基中添加a-淀粉酶,淀粉发酵成乙醇由非常规酵母热带假丝酵母完成。酵母细胞是游离的或固定在海藻酸钙等支撑基质中。发酵后也可回收除乙醇以外的产品;这使得这个过程在经济上更加可行。我们对热带植物的兴趣是基于其代谢大量碳的能力,它作为唯一的碳和能量来源生长,产生高生物量产量,因为当培养基中提供足够的氧气时,它的代谢变成纯粹的氧化。在淀粉培养基中添加a-淀粉酶足以促使热带镰刀菌将淀粉发酵成乙醇。这些结果表明,产生a-淀粉酶的重组热带葡萄球菌对从富含淀粉的植物副产品中生产乙醇有价值。这种发酵过程证明了乙醇生产成本的降低。我们能够达到与一些最好的系统所获得的乙醇产量相当,例如那些使用细胞表面工程的酿酒葡萄球菌,同时显示淀粉酶和葡萄糖淀粉酶。这种非传统的酵母品种为第一代(谷物)和第二代(纤维素)原料带来了更多的经济价值。通过整合对燃料乙醇业务盈利能力至关重要的发酵副产物,进一步增加这一过程的价值是可行的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bioethanol production process using the non-conventional yeast Candida tropicalis
To simplify the fermentationprocess by eliminating the separate saccharificationstep, numerous genetically engineered S. cerevisiaestrains capable of secreting glucoamylase and /or α-amylase have been developed. This work undertakes a different approach to eliminate the saccharificationstep. The culture medium is supplemented with a-amylase and the fermentation of starch to ethanol is done by the non-conventional yeast Candida tropicalis. Yeast cells are free or immobilized in a supporting substrate like calcium alginate. Products other than ethanol are also recovered after fermentation; which makes this process more economically feasible.Our interest inC. tropicalisis based on its ability to metabolize a large variety of carbon on which it grows as a sole carbon and energy source, generating high biomass yields since its metabolism becomes purely oxidative when enough oxygen is supplied in the culture medium. Supplementation of the starch medium with a-amylase is sufficient to drive the fermentation of starch to ethanol by C. tropicalis. These results show that a recombinant C. tropicalis producing a-amylase is valuable for ethanol production from starch-rich plant byproducts. This fermentation process demonstrated a reduction in ethanol production costs. We were able to reach ethanol yields comparable to those obtained by some of the best systems such as those using cell surface-engineered S. cerevisiaedisplaying both aamylase and glucoamylase. This non-conventional yeast species brings more economical value to both first generation (cereal grains) and second generation (Iignocelluloses) feedstock. It is feasible to add further value to this process by integrating fermentation co-products that are essential to the profitability of the fuel ethanol business.
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