DocumentCode
78883
Title
A Distributed Amplifier System for Bilayer Lipid Membrane (BLM) Arrays With Noise and Individual Offset Cancellation
Author
Crescentini, Marco ; Thei, Frederico ; Bennati, Marco ; Saha, Shimul ; de Planque, Maurits R. R. ; Morgan, Hywel ; Tartagni, Marco
Author_Institution
Dept. of Electr., Electron. & Inf. Eng., Univ. of Bologna, Bologna, Italy
Volume
9
Issue
3
fYear
2015
fDate
Jun-15
Firstpage
334
Lastpage
344
Abstract
Lipid bilayer membrane (BLM) arrays are required for high throughput analysis, for example drug screening or advanced DNA sequencing. Complex microfluidic devices are being developed but these are restricted in terms of array size and structure or have integrated electronic sensing with limited noise performance. We present a compact and scalable multichannel electrophysiology platform based on a hybrid approach that combines integrated state-of-the-art microelectronics with low-cost disposable fluidics providing a platform for high-quality parallel single ion channel recording. Specifically, we have developed a new integrated circuit amplifier based on a novel noise cancellation scheme that eliminates flicker noise derived from devices under test and amplifiers. The system is demonstrated through the simultaneous recording of ion channel activity from eight bilayer membranes. The platform is scalable and could be extended to much larger array sizes, limited only by electronic data decimation and communication capabilities.
Keywords
bioMEMS; bioelectric phenomena; biomembrane transport; distributed amplifiers; fluidic devices; interference suppression; lipid bilayers; microchannel flow; DNA sequencing; bilayer lipid membrane arrays; distributed amplifier system; drug screening; electronic data communication capabilities; electronic data decimation capabilities; flicker noise elimination; high-quality parallel single ion channel recording; integrated circuit amplifier; integrated electronic sensing; microfluidic devices; noise cancellation scheme; scalable multichannel electrophysiology platform; Apertures; CMOS integrated circuits; Electrodes; Field programmable gate arrays; Lipidomics; Noise; Universal Serial Bus; Bilayer lipid membrane; current amplifier; discrete-time amplifier; electrophysiology; ion channel recording; low noise; microfluidic device; parallel BLM recording; sensor array;
fLanguage
English
Journal_Title
Biomedical Circuits and Systems, IEEE Transactions on
Publisher
ieee
ISSN
1932-4545
Type
jour
DOI
10.1109/TBCAS.2014.2346402
Filename
6905861
Link To Document