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超声辅助纤维素酶-水-N-甲基吗啉-N-氧化物体系中甘蔗渣的相容原位水解以提高糖化效率。

Ultrasound-assisted compatible in situ hydrolysis of sugarcane bagasse in cellulase-aqueous-N-methylmorpholine-N-oxide system for improved saccharification.

机构信息

Jiangsu University of Science and Technology, Zhenjiang 212003, PR China.

出版信息

Bioresour Technol. 2012 Mar;107:251-7. doi: 10.1016/j.biortech.2011.12.068. Epub 2011 Dec 22.

Abstract

To fully exploit the benefits of N-methylmorpholine-N-oxide (NMMO) in lignocelluloses bioconversion, a compatible system was established for efficient in situ saccharification of cellulose in NMMO-aqueous media in which the NMMO is able to activate and solubilize the cellulose, and the cellulases possess high stability and activity. Cellulase retained its original activity after being pre-incubated in 15% and 20% (w/v) NMMO solutions. After optimization of reaction parameters, high saccharification rate (96.5%) was obtained in aqueous-NMMO media by ultrasound assisted treatment of cellulose. The viscosity and FTIR analysis revealed that NMMO-treated cellulose under ultrasonic condition was porous and amorphous, which led to improved saccharification. The addition of trifle lignin in lower concentration improved the saccharification efficiency of sugarcane bagasse, while higher concentration interferes with hydrolysis. In conclusion, these findings provided great implications to develop a continuous process NMMO-cellulases system for transformation of native biomass.

摘要

为了充分利用 N-甲基吗啉-N-氧化物 (NMMO) 在木质纤维素生物转化中的益处,建立了一个相容的系统,用于在 NMMO-水介质中高效原位糖化纤维素,其中 NMMO 能够激活和溶解纤维素,而纤维素酶具有高稳定性和活性。纤维素酶在 15%和 20%(w/v)NMMO 溶液中预先孵育后保留其原始活性。通过超声辅助处理纤维素对反应参数进行优化后,在水-NMMO 介质中获得了 96.5%的高糖化率。粘度和傅里叶变换红外(FTIR)分析表明,超声条件下处理的 NMMO 纤维素是多孔无定形的,这导致糖化率提高。少量木质素的添加在较低浓度下提高了甘蔗渣的糖化效率,而较高浓度则干扰水解。总之,这些发现为开发用于转化天然生物质的连续 NMMO-纤维素酶系统提供了重要启示。

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