论文标题

定义毛细管波微生物反应器中的传质

Defining mass transfer in a capillary wave micro-bioreactor

论文作者

Frey, Lasse Jannis, Vorländer, David, Rasch, Detlev, Meinen, Sven, Müller, Bernhard, Mayr, Torsten, Dietzel, Andreas, Grosch, Jan-Hendrik, Krull, Rainer

论文摘要

对于高通量细胞培养和相关的分析,基于液滴的培养系统为并行化和快速数据生成提供了机会。与连续流动的微流体相反,连续液滴方法可以通过通常减少操作的努力来增强流体操纵的灵活性。然而,由于传质的限制,生成生物学上有利的疾病并促进液滴中的细胞生长尤其具有挑战性,这必须通过实施有效的混合技术来解决。在这里,使用垂直振荡引起的毛细管波被用来混合在无柄液滴微生物反应器(MBR)系统中,避免了流体内部的其他运动部件。根据激发频率,在振荡的液体表面上形成了不同的模式,该模式由振动的无柄液滴的模型描述。分析混合时间和氧气转运到液体中,证明了传质对振荡参数的强烈依赖性,尤其是激发频率。在不同的毛细管波谐振频率下的振荡导致与2 s的混合时间和体积液相传质系数的快速均匀化,超过340 H-1。这表明液滴MBR中的传质可以通过毛细管波特异性控制,随后证明了这是用于培养大肠杆菌BL21细胞的。因此,提出的MBR与加强传质的垂直振荡混合结合使用,是高度平行培养和数据生成的有前途的工具。

For high-throughput cell culture and associated analytics, droplet-based cultivation systems open up the opportunities for parallelization and rapid data generation. In contrast to microfluidics with continuous flow, sessile droplet approaches enhance the flexibility for fluid manipulation with usually less operational effort. Generating biologically favorable conditions and promoting cell growth in a droplet, however, is particularly challenging due to mass transfer limitations, which has to be solved by implementing an effective mixing technique. Here, capillary waves induced by vertical oscillation are used to mix inside a sessile droplet micro-bioreactor (MBR) system avoiding additional moving parts inside the fluid. Depending on the excitation frequency, different patterns are formed on the oscillating liquid surface, which are described by a model of a vibrated sessile droplet. Analyzing mixing times and oxygen transport into the liquid, a strong dependency of mass transfer on the oscillation parameters, especially the excitation frequency, is demonstrated. Oscillations at distinct capillary wave resonant frequencies lead to rapid homogenization with mixing times of 2 s and volumetric liquid-phase mass transfer coefficients of more than 340 h-1. This shows that the mass transfer in a droplet MBR can be specifically controlled via capillary waves, what is subsequently demonstrated for cultivations of Escherichia coli BL21 cells. Therefore, the presented MBR in combination with vertical oscillation mixing for intensified mass transfer is a promising tool for highly parallel cultivation and data generation.

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