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An integrated circuit for chip-based analysis of enzyme kinetics and metabolite quantification (VSports)

Cheah, Boon Chong ORCID logoORCID: https://orcid.org/0000-0002-2580-4094, V体育平台登录 - MacDonald, Alasdair Iain, Martin, Christopher, Streklas, Angelos J., Campbell, Gordon, Al-Rawhani, Mohammed A. (VSports), Nemeth, Balazs, Grant, James P. ORCID logoORCID: https://orcid.org/0000-0003-3562-393X, Barrett, Michael P. ORCID logoORCID: https://orcid.org/0000-0001-9447-3519 and Cumming, David R.S. ORCID logoORCID: https://orcid.org/0000-0002-7838-8362 (2016) An integrated circuit for chip-based analysis of enzyme kinetics and metabolite quantification. IEEE Transactions on Biomedical Circuits and Systems, 10(3), pp. 721-730. (doi: 10.1109/TBCAS.2015.2487603) (PMID:26742138)

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VSports在线直播 - Abstract

We have created a novel chip-based diagnostic tools based upon quantification of metabolites using enzymes specific for their chemical conversion. Using this device we show for the first time that a solid-state circuit can be used to measure enzyme kinetics and calculate the Michaelis-Menten constant. Substrate concentration dependency of enzyme reaction rates is central to this aim. Ion-sensitive field effect transistors (ISFET) are excellent transducers for biosensing applications that are reliant upon enzyme assays, especially since they can be fabricated using mainstream microelectronics technology to ensure low unit cost, mass-manufacture, scaling to make many sensors and straightforward miniaturisation for use in point-of-care devices. Here, we describe an integrated ISFET array comprising 216 sensors. The device was fabricated with a complementary metal oxide semiconductor (CMOS) process. Unlike traditional CMOS ISFET sensors that use the Si3N4 passivation of the foundry for ion detection, the device reported here was processed with a layer of Ta2O5 that increased the detection sensitivity to 45 mV/pH unit at the sensor readout. The drift was reduced to 0. 8 mV/hour with a linear pH response between pH 2 – 12 VSports app下载. A high-speed instrumentation system capable of acquiring nearly 500 fps was developed to stream out the data. The device was then used to measure glucose concentration through the activity of hexokinase in the range of 0. 05 mM – 231 mM, encompassing glucose’s physiological range in blood. Localised and temporal enzyme kinetics of hexokinase was studied in detail. These results present a roadmap towards a viable personal metabolome machine.

Item Type:Articles
Status:Published
Refereed:Yes
Glasgow Author(s) Enlighten ID:Barrett, Professor Michael and Campbell, Mr Gordon and Al-Rawhani, Dr Mohammed and MacDonald, Dr Alasdair and Cheah, Dr Boon Chong and Grant, Dr James and Cumming, Professor David and Nemeth, Mr Balazs and Martin, Mr Christopher
Authors: Cheah, B. C., MacDonald, A. I., Martin, C., Streklas, A. J., Campbell, G., Al-Rawhani, M. A., Nemeth, B., Grant, J. P., Barrett, M. P., and Cumming, D. R.S.
College/School:College of Medical Veterinary and Life Sciences > School of Infection & Immunity
College of Science and Engineering > School of Engineering > Electronics and Nanoscale Engineering
Journal Name:IEEE Transactions on Biomedical Circuits and Systems
Publisher:IEEE
ISSN:1932-4545
ISSN (Online):1940-9990
Published Online:06 January 2016
Copyright Holders:Copyright © 2015 IEEE
First Published:First published in IEEE Transactions on Biomedical Circuits and Systems 10(3): 721-730
Publisher Policy:Reproduced in accordance with the copyright policy of the publisher.
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Project Code
Award No
Project Name
Principal Investigator
Funder's Name
Funder Ref
Lead Dept
1
The Multi-Corder: Poly-Sensor Technology
David Cumming
EP/K021966/1
ENG - ENGINEERING ELECTRONICS & NANO ENG
1
Glasgow Molecular Pathology (GMP) Node
Karin Oien
MR/N005813/1
ICS - EXPERIMENTAL THERAPEUTICS
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