Electrophysiological Biomarkers to Optimize DBS for Depression
Electrophysiological Biomarkers to Optimize DBS for Depression
批准号:
10768061
负责人:
Helen S Mayberg
金额:
$6.49万
依托单位国家:
美国
项目类别:
财政年份:
2017
资助国家:
美国
项目状态:
已结题
起止时间:
2017-09-01 至 2023-12-31
关键词:
AcuteAddressAlgorithmsAmericanAnatomyAntidepressive AgentsBiological MarkersBiometryBrainCaringCharacteristicsChronicClinicalClinical TrialsClinical Trials DesignDeep Brain StimulationDevicesDiffusionElectrodesElectroencephalographyElectrophysiology (science)Event-Related PotentialsFailureFeasibility StudiesFrequenciesFutureGoalsHumanImplantIndividualLeadLocationLong-Term EffectsMachine LearningMajor Depressive DisorderMapsMeasurementMeasuresMediatingMental DepressionMethodsModelingMonitorOperative Surgical ProceduresOutcomeParkinson DiseasePatientsPerformancePhasePoliciesPositron-Emission TomographyProceduresProtocols documentationPublishingRandomized, Controlled TrialsResistanceScalp structureSeveritiesSignal TransductionSiteStandardizationStimulusSymptomsSystemTestingTimeTitrationsalgorithm developmentantidepressant effectbrain basedcandidate identificationclinical decision supportclinical implementationconnectomedata-driven modelevidence basefollow-upimplantationimprovedindexinglive streamneural circuitneuroregulationnovelnovel strategiesnovel therapeutic interventionopen labelpatient populationresponsesupport toolstargeted biomarkertractographytreatment strategytreatment-resistant depressionwhite matter
中文摘要
点击翻译按钮获取中文摘要
英文摘要
PROJECT SUMMARY
Deep brain stimulation (DBS) of the subcallosal cingulate (SCC) white matter is an emerging new treatment
strategy for treatment resistant depression (TRD) with published studies demonstrating sustained long-term
antidepressant effects in 40-60% of implanted patients. Converging evidence from positron emission
tomography (PET), electroencephalography (EEG) and diffusion tractography (DTI) strongly suggests that
DBS mediates its clinical benefits by direct modulation of the SCC--a key hub in an aberrant neural circuit.
Despite encouraging sustained long-term effects in this notoriously difficult to treat patient population,
randomized controls trials of SCC DBS and other DBS targets for TRD are now on hold as initial results failed
to meet predefined clinical endpoints. While this proposal cannot address those failures directly, a clear
necessary next step for effective future testing and eventual dissemination of this treatment is the need to
develop brain-based biomarkers to guide lead placement and to titrate stimulation parameters during ongoing
care. In the absence of such biomarkers to guide DBS use, there will continue to be variability in the
implementation of clinical procedures during testing, leading to ambiguous and possibly misleading trial
outcomes, and subsequent abandonment of a potentially useful treatment. To overcome these limitations, we
propose to develop and test objective methods for reliable device configuration in individuals by optimizing
DBS-SCC treatment with respect to human functional anatomy and key electrophysiological variables. We will
leverage the capabilities of a novel bi-directional neuromodulation system (Medtronic RC+S) that allows live
streaming of oscillatory activity at the site of stimulation to define novel control strategies to guide programming
decisions for DBS delivery. Ongoing measurements of SCC local field potentials (LFPs) will be combined with
electroencephalography (EEG) and event related potential studies (ERP) performed as part of an experimental
clinical trial of subcallosal cingulate DBS for TRD to identify an oscillatory signal that (1) is sensitive to changes
in frequency and current parameters at the tractography defined optimal target and (2) tracks with depression
state over time. Connectome-based and machine learning approaches will be used to define the most robust
network biomarker and its response characteristics. Once defined, the control policy will be tested in a second
phase feasibility study where parameters for initial stimulation will be selected based on the depression brain
state biomarker and adjustments made to correct drift from the predefined target signal. If successful, the data-
driven model and control strategy will enable objective, rational clinical programming of DBS stimulation for
depression and provide a new model and approach for target identification, stimulation initiation and long-term
monitoring and management of patients receiving this treatment.
.
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期刊:
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影响因子:
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DOI:
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影响因子:
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DOI:
10.3389/fnhum.2022.813387
发表时间:
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期刊:
Frontiers in human neuroscience
影响因子:
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作者:
[Wong JK, Deuschl G, Wolke R, Bergman H, Muthuraman M, Groppa S, Sheth SA, Bronte-Stewart HM, Wilkins KB, Petrucci MN, Lambert E, Kehnemouyi Y, Starr PA, Little S, Anso J, Gilron R, Poree L, Kalamangalam GP, Worrell GA, Miller KJ, Schiff ND, Butson CR, Henderson JM, Judy JW, Ramirez-Zamora A, Foote KD, Silburn PA, Li L, Oyama G, Kamo H, Sekimoto S, Hattori N, Giordano JJ, DiEuliis D, Shook JR, Doughtery DD, Widge AS, Mayberg HS, Cha J, Choi K, Heisig S, Obatusin M, Opri E, Kaufman SB, Shirvalkar P, Rozell CJ, Alagapan S, Raike RS, Bokil H, Green D, Okun MS]
通讯作者:
Okun MS
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Electrophysiological Biomarkers to Optimize DBS for Depression
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Electrophysiological Biomarkers to Optimize DBS for Depression
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Electrophysiological Biomarkers to Optimize DBS for Depression
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Electrophysiological Biomarkers to Optimize DBS for Depression
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Electrophysiological Biomarkers to Optimize DBS for Depression
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