School of Control Engineering, Northeastern University at Qinhuangdao, Qinhuangdao 066004, PR China.
Hebei Key Laboratory of Micro-Nano Precision Optical Sensing and Measurement Technology, Qinhuangdao, 066004, PR China.
Lab Chip. 2024 Mar 26;24(7):2058-2068. doi: 10.1039/d3lc00942d.
Marine microalgae play an increasingly significant role in addressing the issues of environmental monitoring and disease treatment, making the analysis of marine microalgae at the single-cell level an essential technique. For this, we put forward accurate and fast microfluidic impedance cytometry to analyze microalgal cells by assembling two cylindrical electrodes and microchannels to form a three-dimensional detection zone. Firstly, we established a mathematical model of microalgal cell detection based on Maxwell's mixture theory and numerically investigated the effects of the electrode gap, microalgal positions, and ion concentrations of the solution on detection to optimize detection conditions. Secondly, 80 μm stainless steel wires were used to construct flat-ended cylindrical electrodes and were then inserted into two collinear channels fabricated using standard photolithography techniques to form a spatially uniform electric field to promote the detection throughput and sensitivity. Thirdly, based on the validation of this method, we measured the impedance of living and to study parametric influences, including ion concentration, cell density and electrode gap. The throughput of this method was also investigated, which reached 1800 cells per s in the detection of . Fourthly, we analyzed live and dead to prove the ability of this method to detect the physiological status of cells and obtained impedances of 124.3 Ω and 31.0 Ω with proportions of 15.9% and 84.1%, respectively. Finally, this method was engineered for the analysis of marine microalgae, measuring living with an impedance of 159.61 Ω accounting for 3.9%, dead with an impedance of 36.43 Ω accounting for 10.1% and sp. with an impedance of 55.00 Ω accounting for about 81.0%. This method could provide a reliable tool to analyze marine microalgae for monitoring the marine environment and treatment of diseases owing to its outstanding advantages of low cost, high throughput and high corrosion resistance.
海洋微藻在解决环境监测和疾病治疗问题方面发挥着越来越重要的作用,因此对海洋微藻进行单细胞水平的分析成为一种必要的技术。为此,我们提出了精确快速的微流控阻抗细胞术,通过组装两个圆柱形电极和微通道来形成三维检测区域,对微藻细胞进行分析。首先,我们基于 Maxwell 混合理论建立了微藻细胞检测的数学模型,并通过数值研究了电极间隙、微藻位置和溶液中离子浓度对检测的影响,以优化检测条件。其次,使用 80μm 不锈钢丝构建平头圆柱形电极,并将其插入使用标准光刻技术制造的两个共线通道中,以形成空间均匀的电场,从而提高检测通量和灵敏度。第三,基于该方法的验证,我们测量了活的和死的 的阻抗,以研究参数影响,包括离子浓度、细胞密度和电极间隙。还研究了该方法的通量,在检测 时达到了 1800 个细胞/s。第四,我们分析了活的和死的 ,以证明该方法能够检测细胞的生理状态,并分别获得 124.3Ω 和 31.0Ω 的阻抗,比例分别为 15.9%和 84.1%。最后,该方法用于海洋微藻的分析,测量活的 ,其阻抗为 159.61Ω,占 3.9%,死的 ,其阻抗为 36.43Ω,占 10.1%, 和 sp.,其阻抗为 55.00Ω,占约 81.0%。由于该方法具有成本低、高通量和高耐腐蚀性等突出优点,因此可为海洋微藻的分析提供可靠的工具,用于监测海洋环境和治疗疾病。