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Application of mass transfer theory to biomarker capture by surface functionalized magnetic beads in microcentrifuge tubes

机译:大规模转移理论在微量离心管中用表面官能化磁珠捕获生物标志物的应用

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In many diagnostic assays, specific biomarker extraction and purification from a patient sample is performed in microcentrifuge tubes using surface-functionalized magnetic beads. Although assay binding times are known to be highly dependent on sample viscosity, sample volume, capture reagent, and fluid mixing, the theoretical mass transport framework that has been developed and validated in engineering has yet to be applied in this context. In this work, we adapt this existing framework for simultaneous mass transfer and surface reaction and apply it to the binding of biomarkers in clinical samples to surface-functionalized magnetic beads. We discuss the fundamental fluid dynamics of vortex mixing within microcentrifuge tubes as well as describe how. particles and biomolecules interact with the fluid. The model is solved over a wide range of parameters, and we present scenarios when a simplified analytical expression would be most accurate. Next, we review of some relevant techniques for model parameter estimation. Finally, we apply the mass transfer theory to practical use-case scenarios of immediate use to clinicians and assay developers. Throughout, we highlight where further characterization is necessary to bridge the gap between theory and practical application. (C) 2017 Published by Elsevier B.V.
机译:在许多诊断测定中,使用表面官能化的磁珠在微量离心管中进行患者样品的特异性生物标志物提取和纯化。虽然已知测定结合时间高度依赖于样品粘度,样品体积,捕获试剂和流体混合,但在工程中开发和验证的理论大规模运输框架尚未适用于此环境中。在这项工作中,我们适应具有同时传质和表面反应的现有框架,并将其应用于生物标志物在临床样品中的生物标志物的结合到表面官能化磁珠。我们讨论微量离心管内涡流混合的基本流体动力学以及描述如何。颗粒和生物分子与流体相互作用。该模型在广泛的参数范围内得到解决,并且当简化的分析表达式最准确时,我们存在场景。接下来,我们回顾一些用于模型参数估计的相关技术。最后,我们将大规模转移理论应用于临床医生和测定开发商立即使用的实际用途情况。在整个过程中,我们突出了进一步表征来弥合理论和实际应用之间的差距。 (c)2017年由Elsevier B.V发布。

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