Implantable Neurostimulators for Control of Oscillatory Brain Networks
用于控制大脑振荡网络的植入式神经刺激器
基本信息
- 批准号:10650770
- 负责人:
- 金额:$ 196.55万
- 依托单位:
- 依托单位国家:美国
- 项目类别:
- 财政年份:2020
- 资助国家:美国
- 起止时间:2020-08-01 至 2025-05-31
- 项目状态:未结题
- 来源:
- 关键词:AccelerationAlgorithmsAnimal TestingAnxiety DisordersAreaBehavioralBrainBrain regionBudgetsClinicClinicalCommunicationComplexConsensusContractsCouplingDataData AnalysesDeep Brain StimulationDetectionDevicesDiseaseEcosystemElectric StimulationElectronicsElectrophysiology (science)EpilepsyEquipmentFailureFrequenciesFutureHumanImplantIndividualLaboratory AnimalsMachine LearningManufacturerMarketingMeasurementMeasuresMedicalMedical DeviceMedical Device DesignsMental disordersMethodsMinnesotaModelingModernizationMonitorMood DisordersMovement DisordersNeurosciencesNeurosciences ResearchOutputParkinson DiseasePatientsPatternPerformancePeriodicityPhasePhysiologic pulsePhysiologyPlayPositioning AttributeProtocols documentationPsychiatric therapeutic procedurePsychiatryQualifyingRattusResolutionRiskRodentSeizuresSignal TransductionSpeedStructureSymptomsSystemTechniquesTechnologyTestingTherapeutic EffectTimeTranslatingTremorUniversitiesValidationWorkanaloganimal safetybrain cellbrain dysfunctioncognitive functioncognitive neurosciencecommercializationconditioningdesigndigitalemotional functioningfabricationfirst-in-humanimprovedin vivoindustry partnerinnovationintegrated circuitmedical implantmicroelectronicsnanofabricationneuralneural circuitneural implantneurotechnologynovel strategiesnovel therapeuticsprototypepsychiatric symptomsafety testingsignal processingsuccesstooltranslational barriertranslational neurosciencetrigonometry
项目摘要
We propose to develop an implantable brain stimulation system to measure and control oscillatory local
field potential (LFP) synchrony within brain networks. Implantable neurotechnologies like deep brain
stimulation (DBS) have revolutionized the treatment of movement disorders and epilepsy. DBS has some
clinical signal in psychiatry as well, but individual trial results are highly variable. We have argued that this is a
target engagement problem – that the high-frequency constant stimulation used in Parkinson’s or other tremor
disorders is not the right approach to the circuits of mental illness. Instead, we believe the correct approach is
to identify signatures of healthy communication in these circuits/networks, then design stimulation protocols
that specifically produce those signatures. LFP synchrony is likely one of those communication
signatures. Across multiple domains of cognitive and emotional function, behavioral performance (a read-out
of successful network communication) improves when brain regions show synchronous (coherent) LFP
oscillations. Further, clinically effective DBS, in movement and psychiatric disorders, is associated with
changes in LFP synchrony. Co-PI Widge has developed algorithms that specifically control inter-regional
LFP synchrony, by locking electrical stimulation pulses in one region to the phase of an ongoing oscillation in
another region. The translational challenge is that efficient, implantable real-time synchrony monitoring and
phase-locked stimulation require signal processing capabilities not found in any existing or anticipated device.
Co-PI Shoaran has developed power-efficient phase estimation circuits, specifically optimized for DBS-
like implants. We propose to combine these approaches. Aims 1 and 2 will develop a new application-
specific integrated circuit (ASIC) that integrates Dr. Shoaran’s measurement and neural decoding frameworks
with Dr. Widge’s oscillation-control methods. We will validate this circuit’s recording and phase-locking
capabilities in vivo in Dr. Widge’s rodent lab. In Aim 3, a world-leading contract implant manufacturer (Cirtec)
will integrate that new ASIC into a packaged, implant-ready device ready for large animal safety testing. Cirtec
has already developed a DBS prototyping platform optimized to get new therapies more quickly into first-in-
human, allowing us to greatly accelerate the path to the clinic and reduce regulatory risk. At the end of 5
years, we will either be ready for that clinical pilot or have only modest safety testing remaining.
Our team has expertise in electronics, medical device fabrication, clinical brain stimulation, and technology
commercialization. The work will be headquartered in Minnesota’s “Medical Alley”, an epicenter of medical
device innovation. We are well-qualified to execute these Aims and bring the resulting technology to market.
Success would yield a new implant optimized for network monitoring and therapy, a powerful new tool for both
psychiatric treatment and cutting-edge neuroscience research.
我们建议开发一种植入式脑刺激系统来测量和控制局部振荡
项目成果
期刊论文数量(13)
专著数量(0)
科研奖励数量(0)
会议论文数量(0)
专利数量(0)
A state space modeling approach to real-time phase estimation.
- DOI:10.7554/elife.68803
- 发表时间:2021-09-27
- 期刊:
- 影响因子:7.7
- 作者:Wodeyar A;Schatza M;Widge AS;Eden UT;Kramer MA
- 通讯作者:Kramer MA
Neural interface systems with on-device computing: machine learning and neuromorphic architectures.
- DOI:10.1016/j.copbio.2021.10.012
- 发表时间:2021-11
- 期刊:
- 影响因子:7.7
- 作者:Jerald Yoo;Mahsa Shoaran
- 通讯作者:Jerald Yoo;Mahsa Shoaran
Physiologically informed neuromodulation.
- DOI:10.1016/j.jns.2021.120121
- 发表时间:2022-03-15
- 期刊:
- 影响因子:4.4
- 作者:Wendt K;Denison T;Foster G;Krinke L;Thomson A;Wilson S;Widge AS
- 通讯作者:Widge AS
Predicting task performance from biomarkers of mental fatigue in global brain activity.
- DOI:10.1088/1741-2552/abc529
- 发表时间:2021-03-08
- 期刊:
- 影响因子:4
- 作者:Yao L;Baker JL;Schiff ND;Purpura KP;Shoaran M
- 通讯作者:Shoaran M
Decoding Human Cognitive Control Using Functional Connectivity of Local Field Potentials
- DOI:10.1109/embc46164.2021.9630706
- 发表时间:2021-11
- 期刊:
- 影响因子:0
- 作者:S. Avvaru;N. Provenza;A. Widge;K. Parhi
- 通讯作者:S. Avvaru;N. Provenza;A. Widge;K. Parhi
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Mahsa Shoaran其他文献
Mahsa Shoaran的其他文献
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{{ truncateString('Mahsa Shoaran', 18)}}的其他基金
Implantable Neurostimulators for Control of Oscillatory Brain Networks
用于控制大脑振荡网络的植入式神经刺激器
- 批准号:
10227769 - 财政年份:2020
- 资助金额:
$ 196.55万 - 项目类别:
Implantable Neurostimulators for Control of Oscillatory Brain Networks
用于控制大脑振荡网络的植入式神经刺激器
- 批准号:
10426159 - 财政年份:2020
- 资助金额:
$ 196.55万 - 项目类别:
Implantable Neurostimulators for Control of Oscillatory Brain Networks
用于控制大脑振荡网络的植入式神经刺激器
- 批准号:
10034533 - 财政年份:2020
- 资助金额:
$ 196.55万 - 项目类别:
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