DocumentCode
2379346
Title
Wireless instantaneous neurotransmitter concentration sensing system (WINCS) for intraoperative neurochemical monitoring
Author
Kimble, Christopher J. ; Johnson, David M. ; Winter, Bruce A. ; Whitlock, Sidney V. ; Kressin, Kenneth R. ; Horne, April E. ; Robinson, Justin C. ; Bledsoe, Jonathan M. ; Tye, Susannah J. ; Chang, Su-Youne ; Agnesi, Filippo ; Griessenauer, Christoph J. ;
Author_Institution
Div. of Eng., Mayo Clinic, Rochester, MN, USA
fYear
2009
fDate
3-6 Sept. 2009
Firstpage
4856
Lastpage
4859
Abstract
The Wireless Instantaneous Neurotransmitter Concentration Sensing System (WINCS) measures extracellular neurotransmitter concentration in vivo and displays the data graphically in nearly real time. WINCS implements two electroanalytical methods, fast-scan cyclic voltammetry (FSCV) and fixed-potential amperometry (FPA), to measure neurotransmitter concentrations at an electrochemical sensor, typically a carbon-fiber microelectrode. WINCS comprises a battery-powered patient module and a custom software application (WINCSware) running on a nearby personal computer. The patient module impresses upon the electrochemical sensor either a constant potential (for FPA) or a time-varying waveform (for FSCV). A transimpedance amplifier converts the resulting current to a signal that is digitized and transmitted to the base station via a Bluetoothreg radio link. WINCSware controls the operational parameters for FPA or FSCV, and records the transmitted data stream. Filtered data is displayed in various formats, including a background-subtracted plot of sequential FSCV scans - a representation that enables users to distinguish the signatures of various analytes with considerable specificity. Dopamine, glutamate, adenosine and serotonin were selected as analytes for test trials. Proof-of-principle tests included in vitro flow-injection measurements and in vivo measurements in rat and pig. Further testing demonstrated basic functionality in a 3-Tesla MRI unit. WINCS was designed in compliance with consensus standards for medical electrical device safety, and it is anticipated that its capability for real-time intraoperative monitoring of neurotransmitter release at an implanted sensor will prove useful for advancing functional neurosurgery.
Keywords
Bluetooth; amperometric sensors; biochemistry; biomedical MRI; biomedical telemetry; carbon fibres; electrochemical electrodes; microelectrodes; neurophysiology; patient monitoring; surgery; voltammetry (chemical analysis); wireless sensor networks; Bluetooth radio link; MRI unit; WINCS; WINCSware; adenosine; background subtraction; battery-powered patient module; carbon-fiber microelectrode; dopamine; electroanalytical method; electrochemical sensor; extracellular neurotransmitter concentration; fast-scan cyclic voltammetry; fixed-potential amperometry; flow injection measurement; functional neurosurgery; glutamate; implanted sensor; intraoperative neurochemical monitoring; magnetic flux density 3 tesla; medical electrical device safety; real-time intraoperative monitoring; serotonin; time-varying waveform; transimpedance amplifier; wireless instantaneous neurotransmitter concentration sensing system; Biosensing Techniques; Brain; Dopamine; Humans; Monitoring, Intraoperative; Serotonin; Software;
fLanguage
English
Publisher
ieee
Conference_Titel
Engineering in Medicine and Biology Society, 2009. EMBC 2009. Annual International Conference of the IEEE
Conference_Location
Minneapolis, MN
ISSN
1557-170X
Print_ISBN
978-1-4244-3296-7
Electronic_ISBN
1557-170X
Type
conf
DOI
10.1109/IEMBS.2009.5332773
Filename
5332773
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