Literature DB >> 23123833

Micromotor-based lab-on-chip immunoassays.

Miguel García1, Jahir Orozco, Maria Guix, Wei Gao, Sirilak Sattayasamitsathit, Alberto Escarpa, Arben Merkoçi, Joseph Wang.   

Abstract

Here we describe the first example of using self-propelled antibody-functionalized synthetic catalytic microengines for capturing and transporting target proteins between the different reservoirs of a lab-on-a-chip (LOC) device. A new catalytic polymer/Ni/Pt microtube engine, containing carboxy moieties on its mixed poly(3,4-ethylenedioxythiophene) (PEDOT)/COOH-PEDOT polymeric outermost layer, is further functionalized with the antibody receptor to selectively recognize and capture the target protein. The new motor-based microchip immunoassay operations are carried out without any bulk fluid flow, replacing the common washing steps in antibody-based protein bioassays with the active transport of the captured protein throughout the different reservoirs, where each step of the immunoassay takes place. A first microchip format involving an 'on-the-fly' double-antibody sandwich assay (DASA) is used for demonstrating the selective capture of the target protein, in the presence of excess of non-target proteins. A secondary antibody tagged with a polymeric-sphere tracer allows the direct visualization of the binding events. In a second approach the immuno-nanomotor captures and transports the microsphere-tagged antigen through a microchannel network. An anti-protein-A modified microengine is finally used to demonstrate the selective capture, transport and convenient label-free optical detection of a Staphylococcus aureus target bacteria (containing proteinA in its cell wall) in the presence of a large excess of non-target (Saccharomyces cerevisiae) cells. The resulting nanomotor-based microchip immunoassay offers considerable potential for diverse applications in clinical diagnostics, environmental and security monitoring fields.

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Year:  2013        PMID: 23123833     DOI: 10.1039/c2nr32400h

Source DB:  PubMed          Journal:  Nanoscale        ISSN: 2040-3364            Impact factor:   7.790


  20 in total

1.  Micro/Nanorobots for Biomedicine: Delivery, Surgery, Sensing, and Detoxification.

Authors:  Jinxing Li; Berta Esteban-Fernández de Ávila; Wei Gao; Liangfang Zhang; Joseph Wang
Journal:  Sci Robot       Date:  2017-03-01

2.  Liquid metal enabled pump.

Authors:  Shi-Yang Tang; Khashayar Khoshmanesh; Vijay Sivan; Phred Petersen; Anthony P O'Mullane; Derek Abbott; Arnan Mitchell; Kourosh Kalantar-Zadeh
Journal:  Proc Natl Acad Sci U S A       Date:  2014-02-18       Impact factor: 11.205

3.  Motion-Based Immunological Detection of Zika Virus Using Pt-Nanomotors and a Cellphone.

Authors:  Mohamed Shehata Draz; Nivethitha Kota Lakshminaraasimulu; Sanchana Krishnakumar; Dheerendranath Battalapalli; Anish Vasan; Manoj Kumar Kanakasabapathy; Aparna Sreeram; Shantanu Kallakuri; Prudhvi Thirumalaraju; Yudong Li; Stephane Hua; Xu G Yu; Daniel R Kuritzkes; Hadi Shafiee
Journal:  ACS Nano       Date:  2018-05-16       Impact factor: 15.881

4.  Effect of surfactants on the performance of tubular and spherical micromotors - a comparative study.

Authors:  Juliane Simmchen; Veronika Magdanz; Samuel Sanchez; Sarocha Chokmaviroj; Daniel Ruiz-Molina; Alejandro Baeza; Oliver G Schmidt
Journal:  RSC Adv       Date:  2014-04-14       Impact factor: 3.361

5.  Artificial micro-cinderella based on self-propelled micromagnets for the active separation of paramagnetic particles.

Authors:  Guanjia Zhao; Hong Wang; Samuel Sanchez; Oliver G Schmidt; Martin Pumera
Journal:  Chem Commun (Camb)       Date:  2013-06-07       Impact factor: 6.222

6.  Stimuli-responsive microjets with reconfigurable shape.

Authors:  Veronika Magdanz; Georgi Stoychev; Leonid Ionov; Samuel Sanchez; Oliver G Schmidt
Journal:  Angew Chem Int Ed Engl       Date:  2014-01-30       Impact factor: 15.336

7.  Thermal activation of catalytic microjets in blood samples using microfluidic chips.

Authors:  Lluís Soler; Cynthia Martínez-Cisneros; Anka Swiersy; Samuel Sánchez; Oliver G Schmidt
Journal:  Lab Chip       Date:  2013-11-21       Impact factor: 6.799

8.  Self-propelled micromotors for cleaning polluted water.

Authors:  Lluís Soler; Veronika Magdanz; Vladimir M Fomin; Samuel Sanchez; Oliver G Schmidt
Journal:  ACS Nano       Date:  2013-11-07       Impact factor: 15.881

9.  Gravitaxis in spherical Janus swimming devices.

Authors:  Andrew I Campbell; Stephen J Ebbens
Journal:  Langmuir       Date:  2013-11-07       Impact factor: 3.882

10.  Biofunctionalized self-propelled micromotors as an alternative on-chip concentrating system.

Authors:  Laura Restrepo-Pérez; Lluís Soler; Cynthia Martínez-Cisneros; Samuel Sánchez; Oliver G Schmidt
Journal:  Lab Chip       Date:  2014-08-21       Impact factor: 6.799

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