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Automatic In Situ Synthesis System for Polypeptide Biochip Based on Microfluidic Mixer

机译:基于微流体混合器的多肽Biochip自动原位合成系统

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摘要

Biochips have become a sophisticated analytical device in the fields of biochemical sensing and genetic analysis. However, the cumbersome preparation process and the high production cost limit the versatility of its application. Herein, we have developed an automated synthesis system for in situ preparation of biochip with peptide backbone based on the microfluidic mixer and micro reaction chamber. The microfluidic mixer was used as a key component to perform the real-time activation of the carboxylic groups, leading to an instant coupling reaction of monomers with high efficiency. The repeating synthesis procedure was realized without too much manual intervention with the help of flow control system based on programmable logical controller and LabVIEW. The real-time monitoring of synthesis process was realized using a low-cost solar cell coupled with simple ultraviolet absorption device. The photodeprotection experiment revealed that an exposure time of 4 min with 20 mW/cm(2) ultraviolet (UV) light at 365nm was sufficient for the complete removal of 2-(2-nitrophenyl) propyloxycarbonyl (NPPOC) groups from the synthetic sites in N, N-dimethylformamide (DMF). The practical capability performance of this synthesis system was further demonstrated by the synthesis of four cycles of aminocaproic acid, and the stepwise yield of coupling was measured to be about 96%, which was comparable with the result from literature, and indicated that this system may provide a new alternative for low-cost in situ synthesis of biochip.
机译:Biochips已成为生物化学传感和遗传分析领域的复杂分析装置。然而,繁琐的制备过程和高生产率的规模限制了其应用的多功能性。在此,我们开发了一种基于微流体混合器和微反应室的肽骨架的生物芯片的自动合成系统。微流体混合器用作关键组分以进行羧基的实时活化,导致单体具有高效率的即时偶联反应。在基于可编程逻辑控制器和LabVIEW的流量控制系统的帮助下,实现了重复综合程序而无需过多的手动干预。使用具有简单紫外线吸收装置的低成本太阳能电池实现了合成过程的实时监测。光电保护实验显示,在365nm处具有20mW / cm(2)紫外(UV)光的4分钟的暴露时间足以从合成位点完全除去2-(2-硝基苯基)丙氧基羰基(NPPoc)基团N,N-二甲基甲酰胺(DMF)。通过合成四个氨基己酸的合成进一步证明了该合成系统的实际能力性能,测量偶联的逐步产率为约96%,与文献的结果相当,并表明该系统可以为Biochip的低成本提供新的替代方案。

著录项

  • 来源
    《IEEE transactions on nanobioscience》 |2021年第1期|116-125|共10页
  • 作者单位

    Cent South Univ Sch Phys & Elect Dept Elect Informat Sci & Technol Hunan Key Lab Super Microstruct & Ultrafast Proc Changsha 410083 Peoples R China|Nanchang Hangkong Univ Sch Measuring & Opt Engn Dept Biomed Engn Nanchang 330063 Jiangxi Peoples R China;

    Cent South Univ Sch Phys & Elect Dept Elect Informat Sci & Technol Hunan Key Lab Super Microstruct & Ultrafast Proc Changsha 410083 Peoples R China;

    Cent South Univ Sch Phys & Elect Dept Elect Informat Sci & Technol Hunan Key Lab Super Microstruct & Ultrafast Proc Changsha 410083 Peoples R China;

    Cent South Univ Sch Phys & Elect Dept Elect Informat Sci & Technol Hunan Key Lab Super Microstruct & Ultrafast Proc Changsha 410083 Peoples R China;

    Cent South Univ Sch Phys & Elect Dept Elect Informat Sci & Technol Hunan Key Lab Super Microstruct & Ultrafast Proc Changsha 410083 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Microfluidics; Peptides; Couplings; Valves; Real-time systems; Probes; Solenoids; Peptide biochip; carboxylic group activation; coupling reaction; automation system;

    机译:微流体;肽;联轴器;阀门;实时系统;探针;螺线管;肽生物芯片;羧基激活;偶联反应;自动化系统;

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