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首页> 外文期刊>Applied biochemistry and biotechnology, Part A. enzyme engineering and biotechnology >Enzymatic Hydrolysis of Pretreated Sugarcane Straw: Kinetic Study and Semi-Mechanistic Modeling
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Enzymatic Hydrolysis of Pretreated Sugarcane Straw: Kinetic Study and Semi-Mechanistic Modeling

机译:预处理甘蔗秸秆的酶水解:动力学研究和半力学建模

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摘要

Although there are already commercial-scale productions of second generation (2G) ethanol, focusing efforts on process optimization can be of key importance to make the production cost-effective in large scale. In this scenario, mathematical models may be useful in design, scale-up, optimization, and control of bioreactors. For this reason, the aim of this work was to study the kinetics of the enzymatic hydrolysis of cellulose from sugarcane straw. Experiments using hydrothermally pretreated sugarcane (HPS) straw (195 A degrees C, 10 min, 200 rpm) with and without alkaline delignification (4 % NaOH m/v, 30 min, 121 A degrees C) were carried out in shake flasks (50 A degrees C, pH 5.0, 200 rpm). Solid load was varied in a range of 0.8 to 10 % (m/v), in initial velocity and long-term assays. Enzyme concentration (CellicA (R) CTec2) was varied from 5 to 80 filter paper unit (FPU) g(cellulose) (-1). It was possible to fit Michaelis-Menten (MM), modified MM, with and without competitive inhibition by glucose, and Chrastil models. Chrastil model and modified MM with inhibition (both suitable for heterogeneous system, with high resistance to internal diffusion) showed more appropriate than pseudo-homogeneous MM model. The fitted models were able to identify key features of the hydrolysis process and can be very useful within the perspective of bioreactors engineering.
机译:尽管已经有商业规模的第二代(2G)乙醇生产,但是集中精力进行工艺优化对于使大规模生产具有成本效益至关重要。在这种情况下,数学模型可能对生物反应器的设计,放大,优化和控制有用。由于这个原因,这项工作的目的是研究从甘蔗秸秆中纤维素酶促水解的动力学。在摇瓶(50中)上进行了经过水热预处理的甘蔗(HPS)秸秆(195 A摄氏度,10分钟,200 rpm),有无碱脱木素(4%NaOH m / v,30分钟,121摄氏度)。摄氏度,pH 5.0,200 rpm)。在初始速度和长期测定中,固体负荷在0.8%至10%(m / v)的范围内变化。酶浓度(CellicA(R)CTec2)从5到80滤纸单位(FPU)g(纤维素)(-1)变化。有可能拟合具有和不具有葡萄糖竞争抑制作用和Chrastil模型的改良型MM Michaelis-Menten(MM)。 Chrastil模型和带抑制作用的改进型MM(均适用于异构系统,对内部扩散具有很高的抵抗力)比拟均质MM模型更合适。拟合的模型能够确定水解过程的关键特征,并且在生物反应器工程的角度来看可能非常有用。

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