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Conversion of rice straw to bio-based chemicals: an integrated process using Lactobacillus brevis

机译:稻草转化为生物基化学品:使用短乳杆菌的整合工艺

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摘要

Commercialization of lignocellulosic biomass as a feedstock for bio-based chemical production is problematic due to the high processing costs of pretreatment and saccharifying enzymes combined with low product yields. Such low product yield can be attributed, in large part, to the incomplete utilization of the various carbohydrate sugars found in the lignocellulosic biomass. In this study, we demonstrate that Lactobacillus brevis is able to simultaneously metabolize all fermentable carbohydrates in acid pre-processed rice straw hydrolysate, thereby allowing complete utilization of all released sugars. Inhibitors present in rice straw hydrolysate did not affect lactic acid production. Moreover, the activity of exogenously added cellulases was not reduced in the presence of growing cultures of L. brevis. These factors enabled the use of L. brevis in a process termed simultaneous saccharification and mixed sugar fermentation (SSMSF). In SSMSF with L. brevis, sugars present in rice straw hydrolysate were completely utilized while the cellulase maintained its maximum activity due to the lack of feedback inhibition from glucose and/or cellobiose. By comparison to a sequential hydrolysis and fermentation process, SSMSF reduced operation time and the amount of cellulase enzyme necessary to produce the same amount of lactic acid.
机译:由于预处理和糖化酶的高处理成本以及较低的产品收率,木质纤维素生物质作为用于基于生物的化学生产的原料的商业化存在问题。如此低的产物产率在很大程度上可归因于木质纤维素生物质中发现的各种碳水化合物糖的不完全利用。在这项研究中,我们证明了短乳杆菌能够在酸预处理的稻草水解物中同时代谢所有可发酵的碳水化合物,从而完全利用所有释放的糖。稻草水解物中存在的抑制剂不会影响乳酸的产生。此外,在短乳杆菌生长的培养物中,外源添加的纤维素酶的活性没有降低。这些因素使短乳杆菌可以在同时糖化和混合糖发酵(SSMSF)的过程中使用。在带有短乳杆菌的SSMSF中,稻草水解物中存在的糖被完全利用,而纤维素酶由于缺乏葡萄糖和/或纤维二糖的反馈抑制作用而保持其最大活性。与连续水解和发酵过程相比,SSMSF减少了操作时间,并减少了产生相同量乳酸所需的纤维素酶量。

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