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Carbon Mass Balance Evaluation of Cellulase Production on Soluble and Insoluble Substrates

机译:可溶性和不溶性底物上纤维素酶生产的碳质量平衡评估

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A methodology is described and applied for performing carbon mass balances across cellulase enzyme production processes using both soluble sugar and insoluble cellulose substrates. The fungus Trichoderma ressei was grown on either glucose, lactose, or cellulose in aerobic batch mode, and the evoltion of the main carbonaceous components (cell mass cellulose, soluble protein, adsorbed protein, sugars, and carbon dioxide) was followed. A variety of analytical techniques were utilized to measure these components, including (i) gravimetric analysis, (ii) near-nfrared spectroscopy, (iii) bicinchoninic acid based soluble protein measurment, (iv) gas mass spectrometry and flow rate, (v) CHNS/O elemental analyses, and (vi) high-performance liquid chromatography. The combined set of measurements allowed carbon mass balances across the cellulase production process to be assessed to determine the consistency of the underlying kinetic data. Results demonstrate the capability to determine the levels and distribution of all major carbonaceous components during the cellulase production process on both soluble and insoluble substrates. Average carbon mass balance closures were near 100% during early stages (< 72 h) of the cultivations using glucose, lactose, or cellulose as the substrates, but carbon mass closures trended high later in the cultivation. Analysis of carbon allocation results suggests that an error in the gas mass flow rate measurement was the primary cause for carbon mass balance closures to exceed 110% late in the process.
机译:描述了一种方法,该方法适用于使用可溶性糖和不溶性纤维素底物在纤维素酶生产过程中实现碳质量平衡的方法。将真菌木霉菌以需氧分批模式在葡萄糖,乳糖或纤维素上生长,然后进行主要碳质成分(细胞团纤维素,可溶性蛋白,吸附蛋白,糖和二氧化碳)的洗脱。利用各种分析技术来测量这些成分,包括(i)重量分析,(ii)近红外光谱,(iii)基于二辛可宁酸的可溶性蛋白测量,(iv)气体质谱和流速,(v) CHNS / O元素分析和(vi)高效液相色谱。组合的一组测量值可以评估整个纤维素酶生产过程中的碳质量平衡,从而确定基本动力学数据的一致性。结果证明了在纤维素酶生产过程中可溶和不可溶底物上确定所有主要碳质成分水平和分布的能力。在使用葡萄糖,乳糖或纤维素作为底物的培养的早期阶段(<72小时),平均碳质量平衡关闭率接近100%,但在培养后期,碳质量关闭率趋向较高。对碳分配结果的分析表明,气体质量流量测量中的错误是导致过程后期碳质量平衡关闭量超过110%的主要原因。

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