There is a growing interest in the use of chronic deep brain stimulation (DBS) for the treatment of medically refractory movement disorders and other neurological and psychiatric conditions. Fundamental questions remain about the physiologic effects of DBS. It is also unclear what stimulation parameters are optimal for the present or future uses of DBS. Previous basic research studies have focused on the direct polarization of neuronal membranes by electrical stimulation. The proposal aims to determine if DBS can indirectly affect brain function (neuronal polarization) through: 1) joule heating of tissue; or 2) electro-permeation of the blood-brain barrier. It is well established that electric current can induce tissue heating and membrane electroporation; however, it remains unclear if the electric fields induced during clinical DBS are sufficient to induce these effects. The overall goal of the proposal is to determine the potential scale of DBS induced temperature and permeability changes by using a bio-heat transfer model and an in vitro endothelial barrier model, respectively. Even small and transient changes in brain temperature or blood-brain barrier permeability can have profound effects on neuronal function and hence on DBS efficacy or safety. This study will provide the-first insight into the role of these novel 'indirect' DBS mechanisms and thus advance improvements in clinical DBS protocols/technology. Relevance to Public Health: Deep Brain Stimulation (DBS) is a highly promising technology for the treatment of neurological disorders such as Parkinson's disease and tremor. This proposal will determine if Deep Brain Stimulation is affecting brain function by raising local temperature or changing the permeability of the blood- brain barrier. These results will improve the success and safety of DBS. ? ? ?

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Small Research Grants (R03)
Project #
5R03NS054783-02
Application #
7371902
Study Section
Special Emphasis Panel (ZRG1-BDCN-K (10))
Program Officer
Pancrazio, Joseph J
Project Start
2007-03-07
Project End
2009-02-28
Budget Start
2008-02-29
Budget End
2009-02-28
Support Year
2
Fiscal Year
2008
Total Cost
$76,500
Indirect Cost
Name
City College of New York
Department
Engineering (All Types)
Type
Schools of Engineering
DUNS #
603503991
City
New York
State
NY
Country
United States
Zip Code
10031
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Bikson, Marom; Grossman, Pnina; Thomas, Chris et al. (2016) Safety of Transcranial Direct Current Stimulation: Evidence Based Update 2016. Brain Stimul 9:641-661
Elwassif, Maged M; Datta, Abhishek; Rahman, Asif et al. (2012) Temperature control at DBS electrodes using a heat sink: experimentally validated FEM model of DBS lead architecture. J Neural Eng 9:046009
Bikson, Marom; Rahman, Asif; Datta, Abhishek et al. (2012) High-resolution modeling assisted design of customized and individualized transcranial direct current stimulation protocols. Neuromodulation 15:306-15
Bikson, Marom; Rahman, Asif; Datta, Abhishek (2012) Computational models of transcranial direct current stimulation. Clin EEG Neurosci 43:176-83
Turkeltaub, Peter E; Benson, Jennifer; Hamilton, Roy H et al. (2012) Left lateralizing transcranial direct current stimulation improves reading efficiency. Brain Stimul 5:201-207
Datta, Abhishek; Baker, Julie M; Bikson, Marom et al. (2011) Individualized model predicts brain current flow during transcranial direct-current stimulation treatment in responsive stroke patient. Brain Stimul 4:169-74
Datta, Abhishek; Bikson, Marom; Fregni, Felipe (2010) Transcranial direct current stimulation in patients with skull defects and skull plates: high-resolution computational FEM study of factors altering cortical current flow. Neuroimage 52:1268-78
Radman, Thomas; Ramos, Raddy L; Brumberg, Joshua C et al. (2009) Role of cortical cell type and morphology in subthreshold and suprathreshold uniform electric field stimulation in vitro. Brain Stimul 2:215-28, 228.e1-3
Radman, Thomas; Datta, Abhishek; Ramos, Raddy L et al. (2009) One-dimensional representation of a neuron in a uniform electric field. Conf Proc IEEE Eng Med Biol Soc 2009:6481-4

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