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Effect of Particle Size on the Kinetics of Enzymatic Hydrolysis of Microcrystalline Cotton Cellulose: a Modeling and Simulation Study

机译:粒径对微晶棉纤维素酶水解动力学的影响:建模与仿真研究

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摘要

As the bioconversion of cellulosic substrate to fuels is essential to suppress the dependence on conventional fossil fuels, development of new improved bioprocess engineering techniques are requisite for fulfilling the rising demand of biofuels throughout the world. For this purpose, the effect of particle size on enzymatic hydrolysis of cotton cellulose has been explored in great detail. The model simulations for the enzymatic hydrolysis of microcrystalline cotton cellulose of different concentrations (0.25-20mg/ml) were performed for the average particle size ranging from 0.78 to 25.52m. A highest glucose yield (99.8%) was observed for the smallest particle size of 0.78m in 50h of enzymatic hydrolysis. Effect of inhibition (competitive and non-competitive) on glucose yield was analyzed through the incorporation of product inhibition in the kinetic model. The extent of cleaving of 1-4 glycosidic bonds by cellulase was quantified by degree of polymerization (DP) of cotton polymers which also indicates that faster scission of bonds can be observed under competitive inhibition and, hence, more glucose yield. The model simulations shows that particle size reduction may be useful for reducing the long residence time required for the hydrolysis step in the bioconversion of cellulose to ethanol.
机译:由于纤维素基材的生物转化燃料是必不可抑制常规化石燃料的依赖性,新改善的生物过程技术的发展是满足全世界生物燃料的不断增长的必要条件。为此目的,精细探讨了粒度对棉纤维素酶水解的影响。对不同浓度(0.25-20mg / ml)的微晶棉纤维素酶水解的模型模拟,用于平均粒度为0.78-25.52m。在酶水解50H中,观察到最小葡萄糖产率(99.8%)为0.78m的最小粒径。通过在动力学模型中掺入产物抑制来分析抑制(竞争和非竞争性)对葡萄糖产量的影响。通过纤维素酶裂解1-4糖苷键的程度,通过棉花聚合物的聚合度(DP)量化,这也表明可以在竞争性抑制下观察到键的更快的粘合,并且因此,更葡萄糖产率。模型模拟表明,粒度降低可用于减少水解步骤在纤维素的生物转化率至乙醇中所需的长停留时间。

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