Literature DB >> 24116724

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

Su-Youne Chang1, 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.   

Abstract

OBJECT: Conventional deep brain stimulation (DBS) devices continue to rely on an open-loop system in which stimulation is independent of functional neural feedback. The authors previously proposed that as the foundation of a DBS "smart" device, a closed-loop system based on neurochemical feedback, may have the potential to improve therapeutic outcomes. Alterations in neurochemical release are thought to be linked to the clinical benefit of DBS, and fast-scan cyclic voltammetry (FSCV) has been shown to be effective for recording these evoked neurochemical changes. However, the combination of FSCV with conventional DBS devices interferes with the recording and identification of the evoked analytes. To integrate neurochemical recording with neurostimulation, the authors developed the Mayo Investigational Neuromodulation Control System (MINCS), a novel, wirelessly controlled stimulation device designed to interface with FSCV performed by their previously described Wireless Instantaneous Neurochemical Concentration Sensing System (WINCS).
METHODS: To test the functionality of these integrated devices, various frequencies of electrical stimulation were applied by MINCS to the medial forebrain bundle of the anesthetized rat, and striatal dopamine release was recorded by WINCS. The parameters for FSCV in the present study consisted of a pyramidal voltage waveform applied to the carbon-fiber microelectrode every 100 msec, ramping between -0.4 V and +1.5 V with respect to an Ag/AgCl reference electrode at a scan rate of either 400 V/sec or 1000 V/sec. The carbon-fiber microelectrode was held at the baseline potential of -0.4 V between scans.
RESULTS: By using MINCS in conjunction with WINCS coordinated through an optic fiber, the authors interleaved intervals of electrical stimulation with FSCV scans and thus obtained artifact-free wireless FSCV recordings. Electrical stimulation of the medial forebrain bundle in the anesthetized rat by MINCS elicited striatal dopamine release that was time-locked to stimulation and increased progressively with stimulation frequency.
CONCLUSIONS: Here, the authors report a series of proof-of-principle tests in the rat brain demonstrating MINCS to be a reliable and flexible stimulation device that, when used in conjunction with WINCS, performs wirelessly controlled stimulation concurrent with artifact-free neurochemical recording. These findings suggest that the integration of neurochemical recording with neurostimulation may be a useful first step toward the development of a closed-loop DBS system for human application.

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Year:  2013        PMID: 24116724      PMCID: PMC4001796          DOI: 10.3171/2013.8.JNS122142

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


  38 in total

Review 1.  How does deep brain stimulation work? Present understanding and future questions.

Authors:  Cameron C McIntyre; Marc Savasta; Benjamin L Walter; Jerrold L Vitek
Journal:  J Clin Neurophysiol       Date:  2004 Jan-Feb       Impact factor: 2.177

Review 2.  [Mechanisms of action of high-frequency deep brain stimulation. A review of the literature and current concepts].

Authors:  R Carron; S Chabardès; C Hammond
Journal:  Neurochirurgie       Date:  2012-03-30       Impact factor: 1.553

3.  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

4.  Development of the Wireless Instantaneous Neurotransmitter Concentration System for intraoperative neurochemical monitoring using fast-scan cyclic voltammetry.

Authors:  Jonathan M Bledsoe; Christopher J Kimble; Daniel P Covey; Charles D Blaha; Filippo Agnesi; Pedram Mohseni; Sidney Whitlock; David M Johnson; April Horne; Kevin E Bennet; Kendall H Lee; Paul A Garris
Journal:  J Neurosurg       Date:  2009-10       Impact factor: 5.115

Review 5.  Deep brain stimulation of the subthalamic nucleus for the treatment of Parkinson's disease.

Authors:  Alim Louis Benabid; Stephan Chabardes; John Mitrofanis; Pierre Pollak
Journal:  Lancet Neurol       Date:  2009-01       Impact factor: 44.182

Review 6.  Mechanisms and targets of deep brain stimulation in movement disorders.

Authors:  Matthew D Johnson; Svjetlana Miocinovic; Cameron C McIntyre; Jerrold L Vitek
Journal:  Neurotherapeutics       Date:  2008-04       Impact factor: 7.620

7.  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

8.  Evoked neuronal activity accompanied by transmitter release increases oxygen concentration in rat striatum in vivo but not in vitro.

Authors:  J B Zimmerman; R T Kennedy; R M Wightman
Journal:  J Cereb Blood Flow Metab       Date:  1992-07       Impact factor: 6.200

9.  Wireless fast-scan cyclic voltammetry measurement of histamine using WINCS--a proof-of-principle study.

Authors:  Su-Youne Chang; Taylor Jay; Joel Muñoz; Inyong Kim; Kendall H Lee
Journal:  Analyst       Date:  2012-03-14       Impact factor: 4.616

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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  30 in total

1.  Frequency-dependent functional neuromodulatory effects on the motor network by ventral lateral thalamic deep brain stimulation in swine.

Authors:  Seungleal B Paek; Hoon-Ki Min; Inyong Kim; Emily J Knight; James J Baek; Allan J Bieber; Kendall H Lee; Su-Youne Chang
Journal:  Neuroimage       Date:  2014-10-14       Impact factor: 6.556

2.  A Materials Roadmap to Functional Neural Interface Design.

Authors:  Steven M Wellman; James R Eles; Kip A Ludwig; John P Seymour; Nicholas J Michelson; William E McFadden; Alberto L Vazquez; Takashi D Y Kozai
Journal:  Adv Funct Mater       Date:  2017-07-19       Impact factor: 18.808

Review 3.  Surgical Treatment of Parkinson's Disease.

Authors:  Leo Verhagen Metman; Gian Pal; Konstantin Slavin
Journal:  Curr Treat Options Neurol       Date:  2016-11       Impact factor: 3.598

4.  Detection of Norepinephrine in Whole Blood via Fast Scan Cyclic Voltammetry.

Authors:  Evan N Nicolai; James K Trevathan; Erika K Ross; J Luis Lujan; Charles D Blaha; Kevin E Bennet; Kendall H Lee; Kip A Ludwig
Journal:  IEEE Int Symp Med Meas Appl       Date:  2017-07-20

5.  Multifunctional System for Observing, Measuring and Analyzing Stimulation-Evoked Neurochemical Signaling.

Authors:  Christopher J Kimble; Joshua B Boesche; Diane R Eaker; Kenneth R Kressin; James K Trevathan; Seungleal Paek; Anders J Asp; Malcolm B McIntosh; J Luis Lujan
Journal:  IEEE Int Symp Med Meas Appl       Date:  2017-07-20

6.  A Fully Integrated Wireless SoC for Motor Function Recovery After Spinal Cord Injury.

Authors:  Yi-Kai Lo; Yen-Cheng Kuan; Stanislav Culaclii; Brian Kim; Po-Min Wang; Chih-Wei Chang; Jonathan A Massachi; Minji Zhu; Kuanfu Chen; Parag Gad; V Reggie Edgerton; Wentai Liu
Journal:  IEEE Trans Biomed Circuits Syst       Date:  2017-05-19       Impact factor: 3.833

7.  Multi-disease Deep Brain Stimulation.

Authors:  Mahboubeh Parastarfeizabadi; Roy V Sillitoe; Abbas Z Kouzani
Journal:  IEEE Access       Date:  2020-12-02       Impact factor: 3.367

Review 8.  Neuroimaging and neuromodulation approaches to study eating behavior and prevent and treat eating disorders and obesity.

Authors:  D Val-Laillet; E Aarts; B Weber; M Ferrari; V Quaresima; L E Stoeckel; M Alonso-Alonso; M Audette; C H Malbert; E Stice
Journal:  Neuroimage Clin       Date:  2015-03-24       Impact factor: 4.881

9.  Clinical applications of neurochemical and electrophysiological measurements for closed-loop neurostimulation.

Authors:  J Blair Price; Aaron E Rusheen; Abhijeet S Barath; Juan M Rojas Cabrera; Hojin Shin; Su-Youne Chang; Christopher J Kimble; Kevin E Bennet; Charles D Blaha; Kendall H Lee; Yoonbae Oh
Journal:  Neurosurg Focus       Date:  2020-07       Impact factor: 4.047

10.  Dopamine Release in the Nonhuman Primate Caudate and Putamen Depends upon Site of Stimulation in the Subthalamic Nucleus.

Authors:  Hoon-Ki Min; Erika K Ross; Hang Joon Jo; Shinho Cho; Megan L Settell; Ju Ho Jeong; Penelope S Duffy; Su-Youne Chang; Kevin E Bennet; Charles D Blaha; Kendall H Lee
Journal:  J Neurosci       Date:  2016-06-01       Impact factor: 6.167

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