A bead-based immunogold-silver staining assay on capillary-driven microfluidics

被引:11
|
作者
Pham, Ngoc M. [1 ]
Rusch, Sebastian [2 ,3 ,4 ]
Temiz, Yuksel [5 ]
Lovchik, Robert D. [5 ]
Beck, Hans-Peter [2 ,3 ]
Karlen, Walter [1 ]
Delamarche, Emmanuel [5 ]
机构
[1] ETH, Mobile Hlth Syst Lab, Inst Robot & Intelligent Syst, Dept Hlth Sci & Technol,BAA, Lengghalde 5, CH-8092 Zurich, Switzerland
[2] Swiss Trop & Publ Hlth Inst, Socinstr 57, CH-4051 Basel, Switzerland
[3] Univ Basel, Petersgraben 1, CH-4001 Basel, Switzerland
[4] Kantonsspital Aarau AG, Inst Lab Med, Med Genet, Tellstr 25, CH-5001 Aarau, Switzerland
[5] IBM Res Zurich, Saumerstr 4, CH-8803 Ruschlikon, Switzerland
基金
瑞士国家科学基金会;
关键词
Microfluidics; Silver staining; Immunoassays; Microbeads; IMMUNOSORBENT-ASSAY; GOLD NANOPARTICLES; DETECTION SYSTEMS; RUBELLA-VIRUS; IMMUNOASSAY; BIOMARKERS; ANTIBODIES; CHIP;
D O I
10.1007/s10544-018-0284-6
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Point-of-care (POC) diagnostics are critically needed for the detection of infectious diseases, particularly in remote settings where accurate and appropriate diagnosis can save lives. However, it is difficult to implement immunoassays, and specifically immunoassays relying on signal amplification using silver staining, into POC diagnostic devices. Effective immobilization of antibodies in such devices is another challenge. Here, we present strategies for immobilizing capture antibodies (cAbs) in capillary-driven microfluidic chips and implementing a gold-catalyzed silver staining reaction. We illustrate these strategies using a species/anti-species immunoassay and the capillary assembly of fluorescent microbeads functionalized with cAbs in "bead lanes", which are engraved in microfluidic chips. The microfluidic chips are fabricated in silicon (Si) and sealed with a dry film resist. Rabbit IgG antibodies in samples are captured on the beads and bound by detection antibodies (dAbs) conjugated to gold nanoparticles. The gold nanoparticles catalyze the formation of a metallic film of silver, which attenuates fluorescence from the beads in an analyte-concentration dependent manner. The performance of these immunoassays was found comparable to that of assays performed in 96 well microtiter plates using "classical" enzyme-linked immunosorbent assay (ELISA). The proof-of-concept method developed here can detect 24.6 ng mL(-1) of rabbit IgG antibodies in PBS within 20 min, in comparison to 17.1 ng mL(-1) of the same antibodies using a similar to 140-min-long ELISA protocol. Furthermore, the concept presented here is flexible and necessitate volumes of samples and reagents in the range of just a few microliters.
引用
收藏
页数:9
相关论文
共 50 条
  • [21] Microfluidic devices integrated with permalloy micropatterns for bead-based assay
    Ichikawa, N
    Katsuyama, Y
    Nagasaki, Y
    Ichiki, T
    Micro Total Analysis Systems 2004, Vol 2, 2005, (297): : 384 - 386
  • [22] A magnetic bead-based protein kinase assay with dual detection techniques
    Zhou, Guangchang
    Sylvester, Juliesta E.
    Wu, Ding
    Veach, Darren R.
    Kron, Stephen J.
    ANALYTICAL BIOCHEMISTRY, 2011, 408 (01) : 5 - 11
  • [23] Quantum dot bead-based immunochromatographic assay for the quantitative detection of triazophos
    Wu, Qin
    Wu, Peiman
    Duan, Hong
    Liu, Beibei
    Shao, Yanna
    Li, Pan
    Zhang, Cunzheng
    Xiong, Yonghua
    FOOD AND AGRICULTURAL IMMUNOLOGY, 2019, 30 (01) : 955 - 967
  • [24] Capillary-Driven Flow Microfluidics Combined with Smartphone Detection: An Emerging Tool for Point-of-Care Diagnostics
    Sammer-ul Hassan
    Tariq, Aamira
    Noreen, Zobia
    Donia, Ahmed
    Zaidi, Syed Z. J.
    Bokhari, Habib
    Zhang, Xunli
    DIAGNOSTICS, 2020, 10 (08)
  • [25] Development of a bead-based multiplex assay for simultaneous quantification of cytokines in horses
    Wagner, Bettina
    Freer, Heather
    VETERINARY IMMUNOLOGY AND IMMUNOPATHOLOGY, 2009, 127 (3-4) : 242 - 248
  • [26] Disk-like hydrogel bead-based immunofluorescence staining toward identification and observation of circulating tumor cells
    Cai, Bo
    Guo, Feng
    Zhao, Libo
    He, Rongxiang
    Chen, Boran
    He, Zhaobo
    Yu, Xiaolei
    Guo, Shishang
    Xiong, Bin
    Liu, Wei
    Zhao, Xingzhong
    MICROFLUIDICS AND NANOFLUIDICS, 2014, 16 (1-2) : 29 - 37
  • [27] Smartphone-enabled green anthocyanin sensor for Fe(III) sensing on paper using capillary-driven microfluidics
    Aryal, Prakash
    Indrianingsih, Anastasia Wheni
    Henry, Charles S.
    GREEN ANALYTICAL CHEMISTRY, 2024, 8
  • [28] A low cost and high throughput magnetic bead-based immuno-agglutination assay in confined droplets
    Teste, Bruno
    Ali-Cherif, Anais
    Viovy, Jean Louis
    Malaquin, Laurent
    LAB ON A CHIP, 2013, 13 (12) : 2344 - 2349
  • [29] Multiple cytokine analysis in human tears: An optimized procedure for cytometric bead-based assay
    LaFrance, Martin W.
    Kehinde, Lucy E.
    Fullard, Roderick J.
    CURRENT EYE RESEARCH, 2008, 33 (07) : 525 - 544
  • [30] A negative-pressure-driven microfluidic chip for the rapid detection of a bladder cancer biomarker in urine using bead-based enzyme-linked immunosorbent assay
    Lin, Yen-Heng
    Chen, Ying-Ju
    Lai, Chao-Sung
    Chen, Yi-Ting
    Chen, Chien-Lun
    Yu, Jau-Song
    Chang, Yu-Sun
    BIOMICROFLUIDICS, 2013, 7 (02):