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推进磁流 cytometry 以在高血细胞比容条件下进行定量表位分析,用于即时检测。

Advancing magnetic flow cytometry to quantitative epitope analysis in high hematocrit conditions for point-of-care testing.

机构信息

Heinz-Nixdorf-Chair of Biomedical Electronics, School of Computation, Information and Technology & Munich Institute of Biomedical Engineering, Technical University of Munich, TranslaTUM, Einsteinstraße 25, 81675 Munich, Germany.

EarlyBio GmbH, Bottroper Weg 2, 13507 Berlin, Germany.

出版信息

Biosens Bioelectron. 2025 Jan 15;268:116867. doi: 10.1016/j.bios.2024.116867. Epub 2024 Oct 21.

Abstract

Quantitative cell function measurements are essential for many clinical decisions but are primarily tied to centralized laboratories. Limited access to these laboratories in low-resource settings or for immobile patients highlights the urgent need for Point-of-Care testing (POCT) infrastructure. Magnetic flow cytometers (MFC) offer a solution, albeit phenotyping is limited, and sample processing steps like cell lysis or washing increase MFC's workflow complexity. Here, we investigate conditions for novel phenotyping and direct cell concentration quantification in a streamlined workflow suitable for POCT in high hematocrit environments. We characterize magnetic nanoparticles (MNP) by their size, magnetic moment, and opportunities for high signal-to-noise ratios. With adapted theoretical models, we provide the framework for quantifying bound MNPs per cell. This reveals labeling quality and gives insight into system requirements for reliable cell detection and rational cell phenotyping. We investigate temporal labeling dynamics, which show suboptimal MNP binding kinetics in whole blood (WB), leading to long incubation periods and only 50% recovery concentrations. With our streamlined workflow favoring small (<50 nm) MNPs, we quantify CD14 monocytes in WB and achieve coefficients of variation of <11%. By simultaneously assessing quantitative epitope expression, we extend MFC's capabilities to clinical subtyping for POCT.

摘要

定量细胞功能测量对于许多临床决策至关重要,但主要与集中式实验室相关。在资源有限的环境中或对于无法移动的患者,有限的实验室访问权限突出了即时检验(POCT)基础设施的迫切需求。磁性流式细胞仪(MFC)提供了一种解决方案,尽管表型分析受到限制,并且细胞裂解或洗涤等样本处理步骤增加了 MFC 的工作流程复杂性。在这里,我们研究了在适用于高红细胞环境中的 POCT 的简化工作流程中进行新型表型分析和直接细胞浓度定量的条件。我们通过其大小、磁矩以及实现高信噪比的机会来表征磁性纳米颗粒(MNP)。通过适应的理论模型,我们提供了定量每个细胞结合的 MNP 的框架。这揭示了标记质量,并深入了解了用于可靠细胞检测和合理细胞表型分析的系统要求。我们研究了时间标记动力学,这表明全血(WB)中的 MNP 结合动力学不理想,导致孵育时间长,仅达到 50%的回收浓度。通过我们支持小尺寸(<50nm)MNP 的简化工作流程,我们在 WB 中定量 CD14 单核细胞,并实现<11%的变异系数。通过同时评估定量表位表达,我们将 MFC 的功能扩展到即时检验的临床亚型分析。

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