Literature DB >> 19731995

Comonitoring of adenosine and dopamine using the Wireless Instantaneous Neurotransmitter Concentration System: proof of principle.

Young-Min Shon1, Su-Youne Chang, Susannah J Tye, Christopher J Kimble, Kevin E Bennet, Charles D Blaha, Kendall H Lee.   

Abstract

OBJECT: The authors of previous studies have demonstrated that local adenosine efflux may contribute to the therapeutic mechanism of action of thalamic deep brain stimulation (DBS) for essential tremor. Real-time monitoring of the neurochemical output of DBS-targeted regions may thus advance functional neurosurgical procedures by identifying candidate neurotransmitters and neuromodulators involved in the physiological effects of DBS. This would in turn permit the development of a method of chemically guided placement of DBS electrodes in vivo. Designed in compliance with FDA-recognized standards for medical electrical device safety, the authors report on the utility of the Wireless Instantaneous Neurotransmitter Concentration System (WINCS) for real-time comonitoring of electrical stimulation-evoked adenosine and dopamine efflux in vivo, utilizing fast-scan cyclic voltammetry (FSCV) at a polyacrylonitrile-based (T-650) carbon fiber microelectrode (CFM).
METHODS: The WINCS was used for FSCV, which consisted of a triangle wave scanned between -0.4 and +1.5 V at a rate of 400 V/second and applied at 10 Hz. All voltages applied to the CFM were with respect to an Ag/AgCl reference electrode. The CFM was constructed by aspirating a single T-650 carbon fiber (r = 2.5 microm) into a glass capillary and pulling to a microscopic tip using a pipette puller. The exposed carbon fiber (the sensing region) extended beyond the glass insulation by approximately 50 microm. Proof of principle tests included in vitro measurements of adenosine and dopamine, as well as in vivo measurements in urethane-anesthetized rats by monitoring adenosine and dopamine efflux in the dorsomedial caudate putamen evoked by high-frequency electrical stimulation of the ventral tegmental area and substantia nigra.
RESULTS: The WINCS provided reliable, high-fidelity measurements of adenosine efflux. Peak oxidative currents appeared at +1.5 V and at +1.0 V for adenosine, separate from the peak oxidative current at +0.6 V for dopamine. The WINCS detected subsecond adenosine and dopamine efflux in the caudate putamen at an implanted CFM during high-frequency stimulation of the ventral tegmental area and substantia nigra. Both in vitro and in vivo testing demonstrated that WINCS can detect adenosine in the presence of other easily oxidizable neurochemicals such as dopamine comparable to the detection abilities of a conventional hardwired electrochemical system for FSCV.
CONCLUSIONS: Altogether, these results demonstrate that WINCS is well suited for wireless monitoring of high-frequency stimulation-evoked changes in brain extracellular concentrations of adenosine. Clinical applications of selective adenosine measurements may prove important to the future development of DBS technology.

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Year:  2010        PMID: 19731995      PMCID: PMC2852872          DOI: 10.3171/2009.7.JNS09787

Source DB:  PubMed          Journal:  J Neurosurg        ISSN: 0022-3085            Impact factor:   5.115


  25 in total

1.  A three-enzyme microelectrode sensor for detecting purine release from central nervous system.

Authors:  Enrique Llaudet; Nigel P Botting; Joe A Crayston; Nicholas Dale
Journal:  Biosens Bioelectron       Date:  2003-01       Impact factor: 10.618

2.  Deep brain stimulation for treatment-resistant depression.

Authors:  Helen S Mayberg; Andres M Lozano; Valerie Voon; Heather E McNeely; David Seminowicz; Clement Hamani; Jason M Schwalb; Sidney H Kennedy
Journal:  Neuron       Date:  2005-03-03       Impact factor: 17.173

3.  Deep-brain stimulation for generalized dystonia.

Authors:  Paul Greene
Journal:  N Engl J Med       Date:  2005-02-03       Impact factor: 91.245

4.  Subsecond detection of physiological adenosine concentrations using fast-scan cyclic voltammetry.

Authors:  B E Kumara Swamy; B Jill Venton
Journal:  Anal Chem       Date:  2007-01-15       Impact factor: 6.986

5.  Wireless Instantaneous Neurotransmitter Concentration System-based amperometric detection of dopamine, adenosine, and glutamate for intraoperative neurochemical monitoring.

Authors:  Filippo Agnesi; Susannah J Tye; Jonathan M Bledsoe; Christoph J Griessenauer; Christopher J Kimble; Gary C Sieck; Kevin E Bennet; Paul A Garris; Charles D Blaha; Kendall H Lee
Journal:  J Neurosurg       Date:  2009-10       Impact factor: 5.115

Review 6.  Adenosine in the central nervous system: release mechanisms and extracellular concentrations.

Authors:  S Latini; F Pedata
Journal:  J Neurochem       Date:  2001-11       Impact factor: 5.372

7.  Adenosine is crucial for deep brain stimulation-mediated attenuation of tremor.

Authors:  Lane Bekar; Witold Libionka; Guo-Feng Tian; Qiwu Xu; Arnulfo Torres; Xiaohai Wang; Ditte Lovatt; Erika Williams; Takahiro Takano; Jurgen Schnermann; Robert Bakos; Maiken Nedergaard
Journal:  Nat Med       Date:  2007-12-23       Impact factor: 53.440

8.  Transient adenosine efflux in the rat caudate-putamen.

Authors:  Sylvia Cechova; B Jill Venton
Journal:  J Neurochem       Date:  2008-01-10       Impact factor: 5.372

Review 9.  Adenosine-based cell therapy approaches for pharmacoresistant epilepsies.

Authors:  Detlev Boison
Journal:  Neurodegener Dis       Date:  2007       Impact factor: 2.977

10.  Evolution of Deep Brain Stimulation: Human Electrometer and Smart Devices Supporting the Next Generation of Therapy.

Authors:  Kendall H Lee; Charles D Blaha; Paul A Garris; Pedram Mohseni; April E Horne; Kevin E Bennet; Filippo Agnesi; Jonathan M Bledsoe; Deranda B Lester; Chris Kimble; Hoon-Ki Min; Young-Bo Kim; Zang-Hee Cho
Journal:  Neuromodulation       Date:  2009-04
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  33 in total

1.  High frequency stimulation of the subthalamic nucleus evokes striatal dopamine release in a large animal model of human DBS neurosurgery.

Authors:  Young-Min Shon; Kendall H Lee; Stephan J Goerss; In Yong Kim; Chris Kimble; Jamie J Van Gompel; Kevin Bennet; Charles D Blaha; Su-Youne Chang
Journal:  Neurosci Lett       Date:  2010-03-27       Impact factor: 3.046

2.  Fornix deep brain stimulation circuit effect is dependent on major excitatory transmission via the nucleus accumbens.

Authors:  Erika K Ross; Joo Pyung Kim; Megan L Settell; Seong Rok Han; Charles D Blaha; Hoon-Ki Min; Kendall H Lee
Journal:  Neuroimage       Date:  2016-01-11       Impact factor: 6.556

3.  Dopamine measurement during prolonged deep brain stimulation: a proof-of-principle study of paired pulse voltammetry.

Authors:  Seungleal Brian Paek; Emily Jane Knight; Su-Youne Chang; J Luis Lujan; Dong Pyo Jang; Kevin E Bennet; Kendall H Lee
Journal:  Biomed Eng Lett       Date:  2013-03-01

Review 4.  Toward sophisticated basal ganglia neuromodulation: Review on basal ganglia deep brain stimulation.

Authors:  Claudio Da Cunha; Suelen L Boschen; Alexander Gómez-A; Erika K Ross; William S J Gibson; Hoon-Ki Min; Kendall H Lee; Charles D Blaha
Journal:  Neurosci Biobehav Rev       Date:  2015-02-12       Impact factor: 8.989

Review 5.  Development of intraoperative electrochemical detection: wireless instantaneous neurochemical concentration sensor for deep brain stimulation feedback.

Authors:  Jamie J Van Gompel; Su-Youne Chang; Stephan J Goerss; In Yong Kim; Christopher Kimble; Kevin E Bennet; Kendall H Lee
Journal:  Neurosurg Focus       Date:  2010-08       Impact factor: 4.047

6.  Wireless fast-scan cyclic voltammetry to monitor adenosine in patients with essential tremor during deep brain stimulation.

Authors:  Su-Youne Chang; Inyong Kim; Michael P Marsh; Dong Pyo Jang; Sun-Chul Hwang; Jamie J Van Gompel; Stephan J Goerss; Christopher J Kimble; Kevin E Bennet; Paul A Garris; Charles D Blaha; Kendall H Lee
Journal:  Mayo Clin Proc       Date:  2012-07-16       Impact factor: 7.616

7.  Development of the Mayo Investigational Neuromodulation Control System: toward a closed-loop electrochemical feedback system for deep brain stimulation.

Authors:  Su-Youne Chang; Christopher J Kimble; Inyong Kim; Seungleal B Paek; Kenneth R Kressin; Joshua B Boesche; Sidney V Whitlock; Diane R Eaker; Aimen Kasasbeh; April E Horne; Charles D Blaha; Kevin E Bennet; Kendall H Lee
Journal:  J Neurosurg       Date:  2013-10-11       Impact factor: 5.115

8.  Investigation of the reduction process of dopamine using paired pulse voltammetry.

Authors:  Do Hyoung Kim; Yoonbae Oh; Hojin Shin; Charles D Blaha; Kevin E Bennet; Kendall H Lee; In Young Kim; Dong Pyo Jang
Journal:  J Electroanal Chem (Lausanne)       Date:  2014-03-15       Impact factor: 4.464

9.  Instrumentation for electrochemical performance characterization of neural electrodes.

Authors:  Michael P Marsh; James N Kruchowski; Seth A Hara; Malcom B McIntosh; Renae M Forsman; Terry L Reed; Christopher Kimble; Kendall H Lee; Kevin E Bennet; Jonathan R Tomshine
Journal:  Rev Sci Instrum       Date:  2017-08       Impact factor: 1.523

Review 10.  Wireless neurochemical monitoring in humans.

Authors:  Aimen Kasasbeh; Kendall Lee; Allan Bieber; Kevin Bennet; Su-Youne Chang
Journal:  Stereotact Funct Neurosurg       Date:  2013-02-27       Impact factor: 1.875

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