DocumentCode :
1378058
Title :
Parallel Recording of Single Ion Channels: A Heterogeneous System Approach
Author :
Thei, Federico ; Rossi, Michele ; Bennati, Marco ; Crescentini, Marco ; Lodesani, Francesco ; Morgan, Hywel ; Tartagni, Marco
Author_Institution :
Adv. Res. Center on Electron. Syst., Univ. of Bologna, Cesena, Italy
Volume :
9
Issue :
3
fYear :
2010
fDate :
5/1/2010 12:00:00 AM
Firstpage :
295
Lastpage :
302
Abstract :
The convergence of integrated electronic devices with nanotechnology structures on heterogeneous systems presents promising opportunities for the development of new classes of rapid, sensitive, and reliable sensors. The main advantage of embedding microelectronic readout structures with sensing elements is twofold. On the one hand, the SNR is increased as a result of scaling. On the other, readout miniaturization allows organization of sensors into arrays. The latter point will improve sensing accuracy by using statistical methods. However, accurate interface design is required to establish efficient communication between ionic-based and electronic-based signals. This paper shows a first example of a concurrent readout system with single-ion channel resolution, using a compact and scalable architecture. An array of biological nanosensors is organized on different layers stacked together in a mixed structure: fluidics, printed circuit board, and microelectronic readout. More specifically, an array of microholes machined into a polyoxymethylene homopolymer (POMH or Delrin) device coupled with ultralow noise sigma-delta converters current amplifiers, is used to form bilayer membranes within which ion channels are embedded. It is shown how formation of multiple artificial bilayer lipid membranes (BLMs) is automatically monitored by the interface. The system is used to detect current signals in the pA range, from noncovalent binding between single, BLM-embedded ??-hemolysin pores and ??-cyclodextrin molecules. The current signals are concurrently processed by the readout structure.
Keywords :
fluidics; lipid bilayers; nanosensors; nanotechnology; polymers; printed circuits; readout electronics; recorders; sensor arrays; sigma-delta modulation; ??-cyclodextrin molecules; ??-hemolysin pores; Delrin; POMH; biological nanosensors; concurrent readout system; current amplifiers; embedding microelectronic readout structures sensing elements; fluidics; heterogeneous system; integrated electronic devices; multiple artificial bilayer lipid membranes; nanotechnology structures; noncovalent binding; parallel recording; polyoxymethylene homopolymer; printed circuit board; sensors arrays; single ion channels; ultralow noise sigma-delta converters; Bilayer lipid membrane (BLM); ion channels; nanosensors; sigma–delta ( $Sigma$$Delta$) converters;
fLanguage :
English
Journal_Title :
Nanotechnology, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-125X
Type :
jour
DOI :
10.1109/TNANO.2009.2039489
Filename :
5373957
Link To Document :
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