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Improving quantitative control and homogeneous distribution of samples on paper-based analytical devices via drop-on-demand inkjet printing

机译:通过按需喷墨印刷改善基于纸张分析装置上样品的定量控制和均匀分布

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摘要

A standard desktop printer with multiple ink cartridges can accurately deposit a broad variety of biomaterials on microfluidic paper-based analytical devices (mu PADs) which have been extensively applied to environmental monitoring and screening of food and beverage contamination. Finding ways to realize sample quantitative control by tuning the CMYK value, however, remains challenging. Herein, we studied the influence of the CMYK value on the ink volume jetted by ink cartridges. The regularity research on a single-color and two-colors was performed in two print mode-grayscale printing and color printing. The results demonstrated that the number of ink dots increased with the increase of the gray value and opacity value, which means that the amount of the bio-ink increases with the increase of the CMYK value. The 3,3 ',5,5 '-tetramethylbenzidine-horseradish peroxidase-hydrogen peroxide, glucose oxidase-horseradish peroxidase and bull serum albumin-citrate buffer-tetrabromophenol blue systems were chosen as examples to prove the print regularity. Samples and assay reagents can be quantitatively deposited on a substrate by adjusting the CMYK value with as many as four ink cartridges. The present approach has been successfully applied to assay the targets in real serum samples, showing the potential application of the most common office piezoelectric printer in mu PADs.
机译:具有多个墨盒的标准台式机可以在微流体纸张的分析装置(MU PADS)上准确地存放各种生物材料,这些模拟装置(MU PADS)广泛应用于环境监测和筛选食品和饮料污染。然而,通过调整CMYK值,找到实现样本定量控制的方法仍然具有挑战性。这里,我们研究了CMYK值对由墨盒喷射的墨水量的影响。在两个打印模式 - 灰度打印和彩色印刷中执行对单色和两种颜色的规律性研究。结果表明,墨点的数量随着灰度值和不透明度值的增加而增加,这意味着生物墨水的量随CMYK值的增加而增加。选择3,3',5,5'-甲基苯胺 - 辣根过氧化物酶 - 氢过氧化物,葡萄糖氧化酶 - 辣根过氧化物酶和熊血清白蛋白 - 柠檬酸盐缓冲酶和牛血清白蛋白 - 柠檬酸盐缓冲 - 四溴酚蓝系统作为例子,以证明普遍规律性。可以通过用多达四个墨盒调节CMYK值来定量地沉积样品和测定试剂。本方法已成功应用于测定真实血清样本中的目标,显示MU垫中最常见的办公压电打印机的潜在应用。

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    Fujian Med Univ Fac Pharm Higher Educ Key Lab Nano Biomed Technol Fujian Pr Dept Pharmaceut Anal Fuzhou 350122 Fujian Peoples R China;

    Fujian Med Univ Fac Pharm Higher Educ Key Lab Nano Biomed Technol Fujian Pr Dept Pharmaceut Anal Fuzhou 350122 Fujian Peoples R China;

    Fujian Med Univ Fac Pharm Higher Educ Key Lab Nano Biomed Technol Fujian Pr Dept Pharmaceut Anal Fuzhou 350122 Fujian Peoples R China;

    Fujian Med Univ Fac Pharm Higher Educ Key Lab Nano Biomed Technol Fujian Pr Dept Pharmaceut Anal Fuzhou 350122 Fujian Peoples R China;

    Fujian Med Univ Fac Pharm Higher Educ Key Lab Nano Biomed Technol Fujian Pr Dept Pharmaceut Anal Fuzhou 350122 Fujian Peoples R China;

    Fujian Med Univ Fac Pharm Higher Educ Key Lab Nano Biomed Technol Fujian Pr Dept Pharmaceut Anal Fuzhou 350122 Fujian Peoples R China;

    Fujian Med Univ Fac Pharm Higher Educ Key Lab Nano Biomed Technol Fujian Pr Dept Pharmaceut Anal Fuzhou 350122 Fujian Peoples R China;

    Fujian Med Univ Fac Pharm Higher Educ Key Lab Nano Biomed Technol Fujian Pr Dept Pharmaceut Anal Fuzhou 350122 Fujian Peoples R China;

    Fujian Med Univ Fac Pharm Higher Educ Key Lab Nano Biomed Technol Fujian Pr Dept Pharmaceut Anal Fuzhou 350122 Fujian Peoples R China;

    Nanjing Univ Sch Chem &

    Chem Engn State Key Lab Analyt Chem Life Sci Nanjing 210023 Jiangsu Peoples R China;

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  • 正文语种 eng
  • 中图分类 分析化学;
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