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Cellulase stability, adsorption/desorption profiles and recycling during successive cycles of hydrolysis and fermentation of wheat straw

机译:纤维素秸秆水解和发酵连续循环中的纤维素酶稳定性,吸附/解吸特性和回收

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摘要

The potential of enzymes recycling after hydrolysis and fermentation of wheat straw under a variety of conditions was investigated, monitoring the activity of the enzymes in the solid and liquid fractions, using low molecular weight substrates. A significant amount of active enzymes could be recovered by recycling the liquid phase. In the early stage of the process, enzyme adsorb to the substrate, then gradually returning to the solution as the saccharification proceeds. At 50℃, normally regarded as an acceptable operational temperature for saccharification, the enzymes (Celluclast) significantly undergo thermal deactivation. The hydrolysis yield and enzyme recycling efficiency in consecutive recycling rounds can be increased by using high enzyme loadings and moderate temperatures. Indeed, the amount of enzymes in the liquid phase increased with its thermostability and hydrolytic efficiency. This study contributes towards developing effective enzymes recycling strategies and helping to reduce the enzyme costs on bioethanol production.
机译:研究了小麦秸秆在多种条件下水解和发酵后酶回收的潜力,使用低分子量底物监测了固体和液体部分中酶的活性。通过回收液相可以回收大量的活性酶。在该过程的早期,酶吸附到底物上,然后随着糖化的进行逐渐回到溶液中。在50℃(通常被认为是糖化的可接受操作温度)下,酶(Celluclast)会显着热失活。通过使用较高的酶负载量和适中的温度,可以提高连续循环中的水解产量和酶的循环效率。实际上,液相中酶的数量随其热稳定性和水解效率而增加。这项研究有助于开发有效的酶回收策略,并有助于降低生物乙醇生产中的酶成本。

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