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利用同步糖化发酵和解毒工艺将蒸汽爆破雪松转化为乙醇。

Conversion of steam-exploded cedar into ethanol using simultaneous saccharification, fermentation and detoxification process.

机构信息

Department of Life System, Institute of Technology and Science, The University of Tokushima, 2-1 Minamijosanjima-cho, Tokushima 770-8506, Japan.

Department of Life System, Institute of Technology and Science, The University of Tokushima, 2-1 Minamijosanjima-cho, Tokushima 770-8506, Japan.

出版信息

Bioresour Technol. 2015 Jan;176:203-9. doi: 10.1016/j.biortech.2014.11.039. Epub 2014 Nov 15.

Abstract

In this study, we investigated the simultaneous saccharification, fermentation and detoxification SSDF process of steam-exploded cedar using a detoxification microorganism, Ureibacillus thermosphaericus A1, to facilitate efficient ethanol production. Steam explosion was applied as a pretreatment before enzymatic saccharification followed by alcohol fermentation. The highest glucose conversion rate was observed in the sample pretreated with a steam pressure of 45atm for 5min. Alcohol production by a heat-tolerant yeast, Saccharomyces cerevisiae BA11, was inhibited strongly by inhibitory materials present in the steam-exploded cedar, such as formic acid, furfural, and 5-hydroxymethylfurfural. The maximum amount of ethanol, i.e., 0.155g ethanol/g dry steam-exploded cedar, which corresponded to 74% of the theoretical ethanol yield, was obtained using the SSDF when U. thermosphaericus A1 degraded the inhibitory materials. A fed batch SSDF culture, in which U. thermosphaericus A1 was used to maintain low concentrations of inhibitory materials, was effective for increasing the ethanol concentration.

摘要

在这项研究中,我们使用一种解毒微生物——嗜热解淀粉芽孢杆菌 A1 对蒸汽爆破雪松进行了同步糖化、发酵和解毒(SSDF)处理,以促进高效乙醇生产。蒸汽爆破作为酶解前的预处理,然后进行酒精发酵。在蒸汽压力为 45atm 、处理时间为 5min 的条件下,样品的葡萄糖转化率最高。耐热酵母酿酒酵母 BA11 的酒精生产受到蒸汽爆破雪松中存在的抑制物质(如甲酸、糠醛和 5-羟甲基糠醛)的强烈抑制。当嗜热解淀粉芽孢杆菌 A1 降解抑制物质时,通过 SSDF 获得了最大乙醇量,即 0.155g 乙醇/g 干蒸汽爆破雪松,相当于理论乙醇产量的 74%。使用嗜热解淀粉芽孢杆菌 A1 维持低浓度抑制物质的分批补料 SSDF 培养,可有效提高乙醇浓度。

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