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微尺度下的生物过程控制:可扩展的一次性和用户友好型微流控系统发酵。

Bioprocess control in microscale: scalable fermentations in disposable and user-friendly microfluidic systems.

机构信息

AVT-Biochemical Engineering, RWTH Aachen University, Worringerweg 1, D-52074 Aachen, Germany.

出版信息

Microb Cell Fact. 2010 Nov 13;9:86. doi: 10.1186/1475-2859-9-86.

Abstract

BACKGROUND

The efficiency of biotechnological production processes depends on selecting the best performing microbial strain and the optimal cultivation conditions. Thus, many experiments have to be conducted, which conflicts with the demand to speed up drug development processes. Consequently, there is a great need for high-throughput devices that allow rapid and reliable bioprocess development. This need is addressed, for example, by the fiber-optic online-monitoring system BioLector which utilizes the wells of shaken microtiter plates (MTPs) as small-scale fermenters. To further improve the application of MTPs as microbioreactors, in this paper, the BioLector technology is combined with microfluidic bioprocess control in MTPs. To realize a user-friendly system for routine laboratory work, disposable microfluidic MTPs are utilized which are actuated by a user-friendly pneumatic hardware.

RESULTS

This novel microfermentation system was tested in pH-controlled batch as well as in fed-batch fermentations of Escherichia coli. The pH-value in the culture broth could be kept in a narrow dead band of 0.03 around the pH-setpoint, by pneumatically dosing ammonia solution and phosphoric acid to each culture well. Furthermore, fed-batch cultivations with linear and exponential feeding of 500 g/L glucose solution were conducted. Finally, the scale-up potential of the microscale fermentations was evaluated by comparing the obtained results to that of fully controlled fermentations in a 2 L laboratory-scale fermenter (working volume of 1 L). The scale-up was realized by keeping the volumetric mass transfer coefficient kLa constant at a value of 460 1/h. The same growth behavior of the E. coli cultures could be observed on both scales.

CONCLUSION

In microfluidic MTPs, pH-controlled batch as well as fed-batch fermentations were successfully performed. The liquid dosing as well as the biomass growth kinetics of the process-controlled fermentations agreed well both in the microscale and laboratory scale. In conclusion, a user-friendly and disposable microfluidic system could be established which allows scaleable, fully controlled and fully monitored fermentations in working volumes below 1 milliliter.

摘要

背景

生物技术生产工艺的效率取决于选择表现最佳的微生物菌株和最佳的培养条件。因此,必须进行许多实验,这与加快药物开发过程的需求相冲突。因此,非常需要高通量设备,以实现快速可靠的生物过程开发。光纤在线监测系统 BioLector 就是满足这一需求的设备之一,它利用摇床微孔板(MTP)的孔作为小规模发酵罐。为了进一步提高 MTP 作为微生物反应器的应用,本文将 BioLector 技术与 MTP 中的微流控生物过程控制相结合。为了实现适用于常规实验室工作的用户友好型系统,本文利用用户友好型气动硬件驱动的一次性微流控 MTP。

结果

该新型微发酵系统在 pH 控制批式和大肠杆菌补料分批发酵中进行了测试。通过向每个培养孔气动加注氨水溶液和磷酸溶液,可以将培养液的 pH 值保持在 pH 设定值的 0.03 窄死带内。此外,还进行了线性和指数补料 500 g/L 葡萄糖溶液的补料分批培养。最后,通过将微尺度发酵的体积传质系数 kLa 保持在 460 1/h 的恒定值来评估微尺度发酵的放大潜力,并与在 2 L 实验室规模发酵罐(工作体积为 1 L)中进行的完全控制发酵的结果进行比较。在放大过程中,通过保持体积传质系数 kLa 值为 460 1/h 来实现相同的生长行为。

结论

在微流控 MTP 中,成功地进行了 pH 控制批式和补料分批发酵。在微尺度和实验室尺度上,过程控制发酵的液体剂量和生物量生长动力学都非常吻合。总之,建立了一种用户友好且一次性的微流控系统,该系统允许在低于 1 毫升的工作体积下进行可扩展、完全控制和全面监测的发酵。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/888b/3000389/193c8587e8ab/1475-2859-9-86-1.jpg

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