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A system for accurate on-line measurement of total gas consumption or production rates in microbioreactors

机译:用于精确在线测量微生物反应器中总气体消耗或生产率的系统

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A system has been developed, based on pressure controlled gas pumping, for accurate measurement of total gas consumption or production rates in the nmol/min range, applicable for on-line monitoring of bioconversions in microbioreactors. The system was validated by carrying out a bioconversion with known stoichiometric relation between gas consumption and substrate conversion, that is, the enzymatic oxidation of glucose to gluconic acid. The reaction was carried out in a stirred microreactor with a working volume of 100 mu L, whereby the oxygen consumption was monitored on-line. Subsequently the system was applied to determine the oxygen transfer capacity of the microbioreactor. The dissolved oxygen concentration was measured with an optical dissolved oxygen sensor, which was integrated near the bottom of the reactor. Different stirrer sizes and geometries were investigated for their effect on the mass transfer of oxygen. A maximal k(L)a of 156 +/- 10 h(-1), allowing a maximal O-2-transfer rate up to 50 mmol O-2/L/h, was reached which is sufficient to grow cells aerobically in (fed-)batch mode at relatively high biomass concentrations. (C) 2008 Elsevier Ltd. All rights reserved.
机译:已经开发了一种基于压力控制气体泵送的系统,用于精确测量nmol / min范围内的总气体消耗或生产率,适用于在线监测微生物反应器中的生物转化。该系统通过在气体消耗和底物转化之间进行化学转化(已知化学计量关系)进行生物验证,即将葡萄糖酶促氧化为葡萄糖酸。反应在工作体积为100μL的搅拌微反应器中进行,由此在线监测氧消耗。随后将该系统应用于确定微生物反应器的氧气转移能力。用光学溶解氧传感器测量溶解氧浓度,该传感器集成在反应器底部附近。研究了不同搅拌器尺寸和几何形状对氧气传质的影响。达到的最大k(L)a为156 +/- 10 h(-1),允许最大的O-2-转移速率高达50 mmol O-2 / L / h,足以在有氧条件下生长细胞。较高生物量浓度的(补料)分批模式。 (C)2008 Elsevier Ltd.保留所有权利。

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