Heinzler Raphael, Hübner Jonas, Fischöder Thomas, Elling Lothar, Franzreb Matthias
Institute of Functional Interfaces, Karlsruhe Institute of Technology, Karlsruhe, Germany.
Laboratory for Biomaterials, Institute for Biotechnology and Helmholtz Institute for Biomedical Engineering, RWTH Aachen University, Aachen, Germany.
Front Bioeng Biotechnol. 2018 Dec 4;6:189. doi: 10.3389/fbioe.2018.00189. eCollection 2018.
In the course of their development, industrial biocatalysis processes have to be optimized in small-scale, e. g., within microfluidic bioreactors. Recently, we introduced a novel microfluidic reactor device, which can handle defined reaction compartments of up to 250 μL in combination with magnetic micro carriers. By transferring the magnetic carriers between subsequent compartments of differing compositions, small scale synthesis, and bioanalytical assays can be conducted. In the current work, this device is modified and extended to broaden its application range to the screening and optimization of bioprocesses applying immobilized enzymes. Besides scaling the maximum compartment volume up to 3 mL, a temperature control module, as well as a focused infrared spot were integrated. By adjusting the pump rate, compartment volumes can be accurately dosed with an error <5% and adjusted to the requested temperature within less than a minute. For demonstration of bioprocess parameter optimization within such compartments, the influence of pH, temperature, substrate concentration, and enzyme carrier loading was automatically screened for the case of transferring UDP-Gal onto N-acetylglucosamine linked to a tert-butyloxycarbonyl protected amino group using immobilized β1,4-galactosyltransferase-1. In addition, multiple recycling of the enzyme carriers and the use of increased compartment volumes also allows the simple production of preparative amounts of reaction products.
在其发展过程中,工业生物催化过程必须在小规模下进行优化,例如在微流控生物反应器中。最近,我们推出了一种新型微流控反应器装置,它可以结合磁性微载体处理高达250μL的特定反应隔室。通过在不同组成的后续隔室之间转移磁性载体,可以进行小规模合成和生物分析测定。在当前工作中,对该装置进行了改进和扩展,以将其应用范围扩大到应用固定化酶的生物过程的筛选和优化。除了将最大隔室体积扩大到3 mL外,还集成了一个温度控制模块以及一个聚焦红外光斑。通过调整泵速,可以精确计量隔室体积,误差<5%,并在不到一分钟的时间内将其调整到所需温度。为了证明在这样的隔室内进行生物过程参数优化,在使用固定化β1,4-半乳糖基转移酶-1将UDP-Gal转移到与叔丁氧羰基保护的氨基连接的N-乙酰葡糖胺的情况下,自动筛选了pH、温度、底物浓度和酶载体负载的影响。此外,酶载体的多次循环利用以及增加隔室体积的使用还允许简单地制备制备量的反应产物。