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撤回:用于离心微流控免疫分析系统芯片的表面亲水化改性

RETRACTED: Surface Hydrophilic Modification for Chip of Centrifugal Microfluidic Immunoassay System.

作者信息

Shi Yuxing, Ye Peng, Wang Chuang, Yang Kuojun, Guo Jinhong

机构信息

School of Automation Engineering, University of Electronic Science and Technology of China, Chengdu 611731, China.

The M.O.E. Key Laboratory of Laboratory Medical Diagnostics, The College of Laboratory Medicine, Chongqing Medical University, No. 1 Yixueyuan Road, Chongqing 400016, China.

出版信息

Micromachines (Basel). 2022 May 26;13(6):831. doi: 10.3390/mi13060831.

Abstract

The surface of a centrifugal microfluidic immunoassay system chip such as polymethyl methacrylate (PMMA) is often hydrophobic, which leads to problems such as poor liquid transfer efficiency and easy-to-block siphon channels, leading to bad fluid control. Therefore, surface hydrophilic modification for such chips is necessary to improve the rapidity and sensitivity of the system. Chemical modification is commonly used, but there is little research on the hydrophilic effect of different concentrations of hydrophilic reagents. According to function requirements for different microchannels of the chip (some only need to ensure the liquid can flow into the next chamber, and some also need to ensure the function of "closing the door" during immunoassay incubation), we explored the best combination of hydrophilic reagent and concentration through experiments. Firstly, three hydrophilic reagents were used for modification. Secondly, the hydrophilic effects of different reagents and concentrations were explored by contact angle test, the influence of different modification methods on liquid transfer efficiency was characterized by residual liquid calculation in the chamber. Finally, the effect of different hydrophilic reagents on absorbance was also tested. By experimental results and comprehensively considering the stability of the modification effect and the function requirements, Tween-20 (2.0% /) was chosen as the modifying reagents of the first siphon valve and the second siphon valve, and TritonX-100 (2.0% /) was chosen for the third siphon valve, which effectively reduces the contact angle and improves the liquid transfer efficiency, leading to further improvement of the rapidity and sensitivity of the centrifugal microfluidic immunoassay system by efficient siphoning and high plasma separation efficiency (99%).

摘要

聚甲基丙烯酸甲酯(PMMA)等离心式微流控免疫分析系统芯片的表面通常具有疏水性,这会导致液体转移效率低下和虹吸通道易堵塞等问题,进而影响流体控制。因此,对这类芯片进行表面亲水化改性对于提高系统的快速性和灵敏度是必要的。化学改性是常用方法,但对于不同浓度亲水性试剂的亲水效果研究较少。根据芯片不同微通道的功能需求(有些仅需确保液体能流入下一个腔室,有些还需在免疫分析孵育过程中确保“关门”功能),我们通过实验探索了亲水性试剂与浓度的最佳组合。首先,使用三种亲水性试剂进行改性。其次,通过接触角测试探究不同试剂和浓度的亲水效果,通过计算腔室内的残留液体来表征不同改性方法对液体转移效率的影响。最后,还测试了不同亲水性试剂对吸光度的影响。通过实验结果并综合考虑改性效果的稳定性和功能需求,选择吐温 -20(2.0% /)作为第一虹吸阀和第二虹吸阀的改性试剂,选择曲拉通X -100(2.0% /)用于第三虹吸阀,这有效降低了接触角并提高了液体转移效率,通过高效虹吸和高血浆分离效率(99%)进一步提高了离心式微流控免疫分析系统的快速性和灵敏度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9071/9229454/1d4954c37a94/micromachines-13-00831-g001.jpg

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