Imran Jakir Hossain, Kim Jung Kyung
Department of Integrative Biomedical Science and Engineering, Graduate School, Kookmin University, 77 Jeongneung-ro, Seongbuk-gu, Seoul 02707, Korea.
School of Mechanical Engineering and Department of Integrative Biomedical Science and Engineering, Graduate School, Kookmin University, 77 Jeongneung-ro, Seongbuk-gu, Seoul 02707, Korea.
Micromachines (Basel). 2020 Mar 9;11(3):280. doi: 10.3390/mi11030280.
A nut-and-bolt microfluidic system was previously developed for a point-of-care (POC) human immunodeficiency virus (HIV) test and was able to acquire images of CD4 (cluster of differentiation 4) + T-lymphocytes in a sample drop of blood followed by image analysis. However, as the system was not fully integrated with a sample reaction module, the mixing of the sample with the antibody reagent was carried out manually. To achieve a rapid reaction with a reduced amount of costly reagent in a POC diagnostic system, an efficient sample mixing function must be implemented. Here, we propose a novel method to drastically accelerate the process of sample mixing and increase the reaction rate in the nut-and-bolt microfluidic system, where the sample is mixed with the reagent in a reaction chamber formed by connecting a nut with a bolt-like sample cartridge. The mixing is facilitated by rotating the sample cartridge bidirectionally using a DC motor, which agitates the sample in a chaotic manner. A microbead complex formed by the avidin-biotin interaction was used as a model reaction system to examine the feasibility of our mixing module. We found that the reaction time for the avidin-biotin binding by mixing was 7.5 times shorter than in the incubation method, achieving a reaction efficiency of over 95%. The performance of our mixing system was further demonstrated by measuring the concentration of CD4 cells labeled with a fluorescent antibody in the blood sample. The antigen-antibody reaction mixing was faster by a factor of 20, reaching a reaction efficiency comparable to the conventional incubation method.
先前开发了一种螺母-螺栓微流控系统用于即时检测(POC)人类免疫缺陷病毒(HIV),该系统能够获取血样滴中CD4(分化簇4)+ T淋巴细胞的图像,随后进行图像分析。然而,由于该系统未与样品反应模块完全集成,样品与抗体试剂的混合是手动进行的。为了在POC诊断系统中实现使用少量昂贵试剂的快速反应,必须实现高效的样品混合功能。在此,我们提出一种新方法,可大幅加速螺母-螺栓微流控系统中的样品混合过程并提高反应速率,在该系统中,样品在由螺母与螺栓状样品盒连接形成的反应室中与试剂混合。通过使用直流电机双向旋转样品盒来促进混合,这会以混沌方式搅动样品。由抗生物素蛋白-生物素相互作用形成的微珠复合物用作模型反应系统来检验我们混合模块的可行性。我们发现,通过混合进行抗生物素蛋白-生物素结合的反应时间比孵育法短7.5倍,反应效率达到95%以上。通过测量血样中用荧光抗体标记的CD4细胞浓度,进一步证明了我们混合系统的性能。抗原-抗体反应混合速度快了20倍,达到了与传统孵育法相当的反应效率。