College of Food Science and Nutritional Engineering, China Agricultural University, Beijing 100083, China; National Engineering Research Center for Fruits and Vegetables Processing, Beijing 100193, China; Key Laboratory of Fruits and Vegetables Processing, Ministry of Agriculture, Beijing 100083, China.
Beijing Advanced Innovation Center for Food Nutrition and Human Health, China Agricultural University, Yuanmingyuan West Road 2, Beijing 100193, China; College of Food Science and Nutritional Engineering, China Agricultural University, Beijing 100083, China; National Engineering Research Center for Fruits and Vegetables Processing, Beijing 100193, China; Key Laboratory of Fruits and Vegetables Processing, Ministry of Agriculture, Beijing 100083, China.
Int J Biol Macromol. 2018 Dec;120(Pt A):665-672. doi: 10.1016/j.ijbiomac.2018.08.124. Epub 2018 Aug 28.
The efficiency of enzymatic hydrolysis is reduced by the naturally recalcitrant complex polymers comprising lignocellulose. Increasing enzymatic conversion, which the complex macromolecules converted into simpler molecules, is still had to be overcome. High hydrostatic pressure (HHP), an emerging technology, is expected to ameliorate the situation. The effects of enzymatic hydrolysis after HHP pretreatment on pumpkin lignocellulose were studied and compared with hydrothermal and alkaline pretreatment. Further investigation was performed to evaluate the effect of enzymatic hydrolysis of pumpkin combined with HHP treatment. The samples underwent HHP treatment simultaneously exhibited overall better performance in enzymatic hydrolysis than the untreated. The highest glucose yield of 91.2% and xylose yield of 84.2% was achieved when 400 MPa HHP with high enzyme loading was applied. HHP exerted positive effects on enzyme-substrate interactions during the enzymatic hydrolysis of lignocellulose, which implied that HHP technology combined with enzymatic hydrolysis could be used to pretreat pumpkin pomace.
天然抗性复杂聚合物使木质纤维素的酶水解效率降低。仍需要提高酶转化率,将复杂的大分子转化为更简单的分子。高静压(HHP)是一种新兴技术,有望改善这种情况。研究了 HHP 预处理后对南瓜木质纤维素进行酶水解的效果,并与水热处理和碱处理进行了比较。进一步研究了评估 HHP 处理与酶水解相结合对南瓜的影响。与未经处理的相比,同时进行 HHP 处理的样品在酶水解中表现出整体更好的性能。当施加 400 MPa HHP 和高酶负荷时,葡萄糖得率最高为 91.2%,木糖得率最高为 84.2%。HHP 对木质纤维素酶解过程中的酶-底物相互作用产生了积极影响,这意味着 HHP 技术与酶解相结合可用于预处理南瓜渣。