Laboratory for MEMS Applications, IMTEK - Department of Microsystems Engineering, University of Freiburg, Georges-Koehler-Allee 103, 79110 Freiburg, Germany.
Hahn-Schickard, Georges-Koehler-Allee 103, 79110 Freiburg, Germany.
Anal Chem. 2021 Jun 22;93(24):8508-8516. doi: 10.1021/acs.analchem.1c01041. Epub 2021 Jun 8.
We demonstrate microfluidic automation and parallelization of Limulus amebocyte lysate (LAL)-based bacterial endotoxin testing using centrifugal microfluidics. LAL is the standard reagent to test for endotoxin contaminations in injectable pharmaceuticals. The main features of the introduced system are more than 90% reduction of LAL consumption, from 100 μL/reaction to 9.6 μL/reaction, automated liquid handling to reduce opportunities for contamination and manual handling errors, and microfluidic parallelization by integrating 104 reactions into a single centrifugal microplate. In a single Eclipse microplate, 21 samples and their positive product controls are tested in duplicate. In addition, a standard curve with up to five points is generated, resulting in a total of 104 reactions. Test samples with a defined concentration of 0.5 endotoxin units per milliliter were tested, resulting in a coefficient of variation below 0.75%. A key feature for achieving a small coefficient of variation is ensuring the same path length along the microfluidic channels to the final reaction chambers for each sample and the reagent, so that any unspecific adsorption to the polymer surfaces does not affect the accuracy and precision. Analysis of a sample containing naturally occurring endotoxin with the developed microfluidic microplate yielded comparable results to the conventional testing method. A test with eight commercially available pharmaceuticals was found to pass all requirements for bacterial endotoxin testing as specified in the United States Pharmacopeia. The automated endotoxin testing system reveals specific advantages of centrifugal microfluidics for analytical biochemistry applications. Small liquid volumes are handled (metered, mixed, and aliquoted) in a very precise, highly integrated, and highly parallel manner within mass-fabricated microplates.
我们展示了基于鲎变形细胞溶解物(LAL)的细菌内毒素检测的微流控自动化和并行化,使用离心微流控技术。LAL 是检测注射用药物中内毒素污染的标准试剂。所介绍系统的主要特点是,将 LAL 的消耗量从 100μL/反应减少到 9.6μL/反应,超过 90%;采用自动化液体处理来减少污染和人工处理错误的机会;通过将 104 个反应集成到单个离心微板中实现微流控并行化。在单个 Eclipse 微板中,以两倍的重复测试了 21 个样品及其阳性产物对照物。此外,还生成了多达五个点的标准曲线,总共有 104 个反应。用规定浓度为每毫升 0.5 内毒素单位的测试样品进行测试,结果得出的变异系数低于 0.75%。实现低变异系数的一个关键特征是确保每个样品和试剂沿微流道到达最终反应室的路径长度相同,从而使聚合物表面的任何非特异性吸附不会影响准确性和精密度。用开发的微流控微板分析含有天然内毒素的样品,得到的结果与传统检测方法相当。对八种市售药物的测试发现,它们均符合美国药典规定的细菌内毒素检测的所有要求。自动化内毒素检测系统揭示了离心微流控技术在分析生物化学应用中的特定优势。在大规模制造的微板中,以非常精确、高度集成和高度并行的方式处理小体积的液体(计量、混合和分配)。