Design and Fabrication of a Fully-Integrated, Miniaturised Fluidic System for the Analysis of Enzyme Kinetics

Author:

Tsiamis Andreas1ORCID,Buchoux Anthony2,Mahon Stephen T.1ORCID,Walton Anthony J.1ORCID,Smith Stewart3ORCID,Clarke David J.4,Stokes Adam A.1ORCID

Affiliation:

1. School of Engineering, Institute for Integrated Micro and Nano Systems, The University of Edinburgh, The King’s Buildings, Edinburgh EH9 3FF, UK

2. School of Engineering, Institute for Multiscale Thermofluids, The University of Edinburgh, The King’s Buildings, Edinburgh EH9 3LJ, UK

3. School of Engineering, Institute for Bio-Engineering, The University of Edinburgh, The King’s Buildings, Edinburgh EH9 3FF, UK

4. EaStCHEM School of Chemistry, The University of Edinburgh, Edinburgh EH9 3FJ, UK

Abstract

The lab-on-a-chip concept, enabled by microfluidic technology, promises the integration of multiple discrete laboratory techniques into a miniaturised system. Research into microfluidics has generally focused on the development of individual elements of the total system (often with relatively limited functionality), without full consideration for integration into a complete fully optimised and miniaturised system. Typically, the operation of many of the reported lab-on-a-chip devices is dependent on the support of a laboratory framework. In this paper, a demonstrator platform for routine laboratory analysis is designed and built, which fully integrates a number of technologies into a single device with multiple domains such as fluidics, electronics, pneumatics, hydraulics, and photonics. This facilitates the delivery of breakthroughs in research, by incorporating all physical requirements into a single device. To highlight this proposed approach, this demonstrator microsystem acts as a fully integrated biochemical assay reaction system. The resulting design determines enzyme kinetics in an automated process and combines reservoirs, three-dimensional fluidic channels, optical sensing, and electronics in a low-cost, low-power and portable package.

Funder

EPSRC

Leidenfrost Engine project

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Mechanical Engineering,Control and Systems Engineering

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