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Multi-channel MR-compatible flexible microelectrode for recording and stimulation

Multi-channel MR-compatible flexible microelectrode for recording and stimulation
用于记录和刺激的多通道 MR 兼容柔性微电极
批准号:
9139158
负责人:
Robert Kyle Franklin
金额:
$7.83万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-09-20 至 2019-02-28
关键词:
AddressAgarAmericanAnimalsAwardBiocompatibleBrainBrain MappingCaliberClinicalCluster HeadacheComputer softwareContralateralControl GroupsDataData AnalysesDeep Brain StimulationDevicesDiseaseDystoniaElectrodesElectromagneticsElectrophysiology (science)EnvironmentEpilepsyEssential TremorEvaluationEventExcisionForelimbFoundationsFunctional ImagingFunctional Magnetic Resonance ImagingFutureGelGilles de la Tourette syndromeGlassHeadHeatingHybridsImplantIndividualIridiumMRI ScansMagnetic Resonance ImagingMapsMarketingMaterials TestingMeasurementMeasuresMechanicsMental disordersMicroelectrodesMorphologic artifactsNatureNeuronsNeurosciencesNoiseObsessive-Compulsive DisorderParkinson DiseasePhasePlatinumPlayPredispositionProceduresProtocols documentationQualifyingRattusRegional Blood FlowResearchResolutionRoleSamplingSignal TransductionSiliconSiteSmall Business Technology Transfer ResearchSocietiesSomatosensory CortexStaining methodStainsStimulusSystemTechniquesTechnologyTemperatureTestingThalamic structureThickTissuesWorkbasebrain researchbrain tissuechronic painclinical applicationdeep brain stimulation arraydensitydesignelectric impedanceexperiencefallsflexibilityhemodynamicsimprovedin vivoinnovationnervous system disorderneural circuitneuroimagingneuronal circuitryneurophysiologyneurovascular couplingnovelpatient safetypre-clinicalprototypepublic health relevanceradio frequencyreduce symptomsrelating to nervous systemresearch studyresponsesomatosensorystemsuccesstoolultra high resolutionvoltage

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英文摘要
 DESCRIPTION (provided by applicant): Functional magnetic resonance imaging (fMRI) has become one of the leading research tools to study brain function and is playing a pivotal role in several large-scale brain mapping projects worldwide. Despite ongoing technical advancements in MRI which have greatly increased its availability and helped improve the resolution for functional brain mapping, we still have very limited understanding of what fMRI signals really represent. The fact that hemodynamic fMRI does not provide direct measurement of neuronal activities precludes many potential applications involving studies of neuronal circuit function. In contrast, electrophysiology detects actual electrical signaling with unsurpassed temporal and spatial resolution, but generally falls short of providing information in a large-scale network levl due to a limited number of recording sites. The desire to combine the strengths of both approaches prompted us to develop a high-resolution MR- compatible microelectrode array, permitting examination of electrophysiological signatures during MRI as well as evaluation of deep brain stimulation (DBS) efficacy using fMRI. Our pilot data have demonstrated success in using an advanced micromachining approach to fabricate a miniature electrode array with high-density electrodes (down to 75 µm pitch). In contrast to many platinum-iridium, glass, and silicon-based electrodes, our microelectrode uses a flexible, highly biocompatible, and MR-compatible base substrate - polyimide, which is known to better match the mechanical impedance of the brain than the other materials commonly used. Our previous work has optimized the rigidity of our electrode by experimenting with various thicknesses and layer designs. This unique tool is extremely important to accommodate a variety of over-head MR coils and gradient inserts with small inner-diameters because the majority of the brain coils, particularly the ones for preclinical small animal systems, are too large to permit the placement of a percutaneous connector on the head. Additionally, the probe has a built in ribbon cable to the connector which can be placed few centimeters away from the MR radio-frequency (RF) coils, reducing the potential for RF-induced heating, voltage changes, and MR-related noise during electrophysiological recording. In this Phase 1 STTR award, we will quantitatively evaluate this novel microelectrode array in vivo using rat subjects, with Aim 1 studying ultra-high resolution DBS-fMRI, and Aim 2 developing/validating tools for simultaneous fMRI and electrophysiological recording. These studies will be crucial for the future success in commercializing the probe as it will generate preliminary data for marketing and also set the foundation for various types of applications to study neural circuits in normal and diseased brains. We believe our work will result in a highly unique product, opening up a new avenue to explore and validate functional connectivity in the brain with a resolution and scale that cannot be achieved by traditional fMRI or electrophysiology alone.
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Advancing Epilepsy Diagnosis with Flexible, High-Resolution Thin-Film Electrodes
Advancing epilepsy diagnosis with flexible, high-resolution thin-film electrodes
国内基金
海外基金
Cd(II)在NH2-Agar/PSS双网络水凝胶上的吸附行为及资源化工艺研究
  • 批准号:
    51708204
  • 项目类别:
    青年科学基金项目
  • 资助金额:
    25.0万元
  • 批准年份:
    2017
  • 负责人:
    周贵寅
  • 依托单位: