School of Mechanical Engineering, College of Engineering, University of Tehran, Tehran, Iran.
Biotechnology Department, Iranian Research Organization for Science and Technology, Tehran, Iran.
Biosens Bioelectron. 2024 Feb 1;245:115789. doi: 10.1016/j.bios.2023.115789. Epub 2023 Nov 3.
Centrifugal microfluidics holds the potential to revolutionize point-of-care (POC) testing by simplifying laboratory tests through automating fluid and cell manipulation within microfluidic channels. This technology can facilitate blood testing, the most frequent clinical test, at the POC. However, an integrated centrifugal microfluidic device for complete blood counting (CBC) has not yet been fully realized. To address this, we propose an integrated portable system comprising a centrifuge and a hybrid microfluidic disc specifically designed for CBC analysis at the POC. The disc enables the implementation of various spin profiles in different stages of CBC to facilitate in-situ cell separation, solution metering and mixing, and differential cell counting. Furthermore, our system is coupled with a custom script that automates the process and ensures precise quantification of cells using light and fluorescent images captured from the detection chamber of the disc. We demonstrate a close correlation between the proposed method and the hematology analyzer, considered the gold standard, for quantifying hematocrit (R = 0.99), white blood cell count (R = 0.98), white blood cell differential count (granulocyte/agranulocyte; R = 0.89), red blood cell count (R = 0.97), and mean corpuscular volume (R = 0.94). The integration of our portable system offers significant advantages, enabling more accessible and affordable CBC testing at the POC. Considering the simplicity, affordability (∼$250 capital cost and <$2 operational cost per test), as well as low power consumption (>100 tests using a typical 24 V/10 Ah battery), this system has the potential to enhance healthcare delivery, particularly in resource-limited settings and remote areas where access to traditional laboratory facilities is limited.
离心微流控技术通过在微流道内自动进行流体和细胞操作,有潜力简化实验室检测,从而彻底改变即时检测(POC)。该技术可以促进最常见的临床检测——血液检测,在 POC 进行。然而,一个完整的用于全血细胞计数(CBC)的集成离心微流控设备尚未完全实现。为了解决这个问题,我们提出了一个集成的便携式系统,包括一个离心机和一个专门为 POC 的 CBC 分析设计的混合微流控盘。该圆盘可以在 CBC 的不同阶段实施各种离心轮廓,以促进细胞的就地分离、溶液计量和混合以及细胞的差异计数。此外,我们的系统与一个自定义脚本相结合,该脚本可以自动执行该过程,并确保使用从圆盘检测室捕获的光和荧光图像精确地定量细胞。我们展示了所提出的方法与被认为是金标准的血液分析仪之间的密切相关性,用于定量血细胞比容(R=0.99)、白细胞计数(R=0.98)、白细胞差异计数(粒细胞/无粒细胞;R=0.89)、红细胞计数(R=0.97)和平均红细胞体积(R=0.94)。我们的便携式系统的集成具有显著的优势,可以在 POC 进行更便捷和更实惠的 CBC 检测。考虑到其简便性、可负担性(∼$250 的资本成本和每个测试低于$2 的运营成本)以及低功耗(使用典型的 24V/10Ah 电池可以进行>100 次测试),该系统有潜力改善医疗保健服务,特别是在资源有限和传统实验室设施受限的偏远地区。