Reconfigurable MRI technology for safe and high-resolution imaging of deep brain stimulation at 3T
可重构 MRI 技术,可在 3T 下对深部脑刺激进行安全且高分辨率的成像
基本信息
- 批准号:10654726
- 负责人:
- 金额:$ 52.64万
- 依托单位:
- 依托单位国家:美国
- 项目类别:
- 财政年份:2021
- 资助国家:美国
- 起止时间:2021-07-15 至 2025-03-31
- 项目状态:未结题
- 来源:
- 关键词:AccelerationAlzheimer&aposs DiseaseAnatomyAreaBrainCell NucleusCephalicCerebrumCharacteristicsClinical ManagementClinical TrialsCognition DisordersComputer AssistedComputer ModelsCouplingDeep Brain StimulationDevelopmentDevice SafetyDevicesDiseaseElectrodesEngineeringEpilepsyFailureFeasibility StudiesFeverFriendsFunctional ImagingFunctional Magnetic Resonance ImagingGoalsGuidelinesHandHeadHeatingImageImaging TechniquesImplantImplanted ElectrodesIndividualIndustryKnowledgeLeadLocationMagnetic Resonance ImagingMajor Depressive DisorderMechanicsMethodologyModificationMonitorMood DisordersMorphologic artifactsMovement DisordersNeurophysiology - biologic functionNeurosurgical ProceduresOperative Surgical ProceduresParkinson DiseasePatientsPhysiologic pulsePilot ProjectsPositioning AttributeProtocols documentationRandomizedReproducibilityResolutionRiskRotationSafetyScientistStructureTechniquesTechnologyTestingTherapeuticTissuesVariantVisualizationWorkchronic painclinical applicationdeep brain stimulation arraydeep field surveydesignelectric fieldhigh resolution imagingimplantable deviceimplantationimprovedindividual patientinnovationinstrumentationlead optimizationmillimeterneuroimagingneuroregulationneurosurgerynext generationnovelradio frequencyresponsesafety assessmentside effectsimulationsoft tissuestandard carestandard of carestructural imagingsuccesstemporal measurementtransmission process
项目摘要
Project Summary
Deep brain stimulation (DBS) is a neurosurgical procedure that involves implanting electrodes into specific areas
within the brain and delivering constant or intermittent electric pulses from an implanted pulse generator (IPG)
to modulate neural function. DBS is the gold standard treatment for Parkinson’s disease, and has shown promise
in treating other disorders, most notably chronic pain, epilepsy, major depression, and Alzheimer’s disease.
Magnetic resonance imaging (MRI) is extremely useful in patients with DBS implants, as it can provide
information on precise location of implanted electrodes and functional response to stimulation. Unfortunately,
the interaction of radiofrequency (RF) fields generated by MRI scanners with the leads of DBS devices can
trigger potentially fatal RF heating within the tissue. This means that current MRI technology is inaccessible to
most patients with DBS implants, presenting a significant barrier to progress in the field of DBS therapeutics.
This project seeks to develop novel MRI methodologies alongside DBS implantation techniques that together
will make cutting-edge MRI technology fully compatible with implanted DBS devices. Here, this two-pronged
approach takes the form of (1) building on our recently introduced concept of reconfigurable MRI technology;
and (2) establishing surgical guidelines specific to DBS device implantation.
Reconfigurable MRI technology is based on the idea that through innovative engineering we can control local
electric fields generated by MR on a patient-by-patient basis, thus avoiding interactions with an implanted device,
wherever it happens to be. Part and parcel with engineering-based solutions, we recognize the importance of
DBS device lead placement in optimizing the success of the reconfigurable MRI approach. Although RF heating
depends exquisitely on lead-trajectory, surgical guidelines are completely silent as to how to best place the
extracranial portion of the leads. This in turn leads to arbitrary (and highly variable) lead positioning, which can
make RF heating unpredictable even when using reconfigurable technology. Thus, we propose work to develop
and validate novel MR technology (Aim 1), intra-surgical implantation strategies (Aim 2), and simulation-based,
patient-specific approaches to defining safe imaging parameters (Aim 3). Together, these efforts will eliminate
RF heating, reduce image artifact, and support the use of next generation MRI in patients with DBS implants.
Our team includes experts in MRI hardware development and instrumentation, MRI computational modeling and
safety assessment, FDA regulatory scientists, DBS clinical management and neurosurgery, as well as
collaborators from DBS device industry. If successful, we will bring state-of-the-art 3T MRI to DBS patients in
its full capacity. This will allow for methodical analysis of DBS parameters/targets in emerging applications,
improve our understanding of DBS in existing indications, and bring standard-of-care imaging to patients with
existing DBS implants.
项目摘要
脑深部电刺激(DBS)是一种神经外科手术,涉及将电极植入特定区域
并从植入的脉冲发生器(IPG)输送恒定或间歇的电脉冲
来调节神经功能DBS是帕金森氏病的金标准治疗方法,
在治疗其他疾病,特别是慢性疼痛,癫痫,严重抑郁症和阿尔茨海默氏病。
磁共振成像(MRI)在植入DBS植入物的患者中非常有用,因为它可以提供
关于植入电极的精确位置和对刺激的功能反应的信息。不幸的是,
由MRI扫描仪产生的射频(RF)场与DBS设备的导线的相互作用可以
在组织内触发潜在的致命射频加热。这意味着目前的MRI技术是无法达到的,
大多数患者植入DBS植入物,这是DBS治疗领域进展的重大障碍。
该项目旨在开发新的MRI方法以及DBS植入技术,
将使尖端的MRI技术与植入的DBS设备完全兼容。在这里,这两个叉
该方法采取以下形式:(1)建立在我们最近引入的可重构MRI技术的概念上;
以及(2)建立专门针对DBS装置植入的手术指南。
可重构MRI技术基于这样一种理念,即通过创新工程,我们可以控制局部
由MR逐个患者产生的电场,从而避免与植入器械相互作用,
不管它在哪里作为基于工程的解决方案的一部分,我们认识到以下方面的重要性:
DBS器械电极导线放置优化了可重新配置MRI方法的成功。虽然射频加热
取决于导线轨迹,手术指南完全没有说明如何最好地放置
电极导线的颅外部分。这反过来又导致任意(和高度可变)的电极导线定位,
即使使用可重新配置技术,射频加热也不可预测。因此,我们建议开展工作,
并验证新型MR技术(目标1)、术中植入策略(目标2)和基于模拟的,
定义安全成像参数的患者特异性方法(目标3)。这些努力将消除
射频加热,减少图像伪影,并支持在植入DBS植入物的患者中使用下一代MRI。
我们的团队包括MRI硬件开发和仪器、MRI计算建模和
安全性评估、FDA监管科学家、DBS临床管理和神经外科,以及
DBS设备行业的合作者。如果成功,我们将为DBS患者带来最先进的3 T MRI,
它的全部能力。这将允许在新兴应用中对DBS参数/目标进行系统分析,
提高我们对DBS在现有适应症中的理解,并为患有以下疾病的患者提供标准护理成像
现有DBS植入物。
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 comparative study of RF heating of deep brain stimulation devices in vertical vs. horizontal MRI systems.
- DOI:10.1371/journal.pone.0278187
- 发表时间:2022
- 期刊:
- 影响因子:3.7
- 作者:Vu, Jasmine;Bhusal, Bhumi;Nguyen, Bach T.;Sanpitak, Pia;Nowac, Elizabeth;Pilitsis, Julie;Rosenow, Joshua;Golestanirad, Laleh
- 通讯作者:Golestanirad, Laleh
Age Matters: A Comparative Study of RF Heating of Epicardial and Endocardial Electronic Devices in Pediatric and Adult Phantoms during Cardiothoracic MRI.
- DOI:10.3390/diagnostics13172847
- 发表时间:2023-09-02
- 期刊:
- 影响因子:3.6
- 作者:Jiang, Fuchang;Henry, Kaylee R.;Bhusal, Bhumi;Sanpitak, Pia;Webster, Gregory;Popescu, Andrada;Laternser, Christina;Kim, Daniel;Golestanirad, Laleh
- 通讯作者:Golestanirad, Laleh
RF-induced heating of capped and uncapped abandoned epicardial leads during MRI at 1.5 T and 3 T.
- DOI:10.1109/embc40787.2023.10340533
- 发表时间:2023-07
- 期刊:
- 影响因子:0
- 作者:
- 通讯作者:
True location of deep brain stimulation electrodes differs from what is seen on postoperative magnetic resonance images: An anthropomorphic phantom study.
深部脑刺激电极的真实位置与术后磁共振图像上看到的不同:一项拟人化模型研究。
- DOI:10.1109/embc48229.2022.9871619
- 发表时间:2022
- 期刊:
- 影响因子:0
- 作者:Nuzov,NoaB;Bhusal,Bhumi;Henry,KayleeR;Jiang,Fuchang;Rosenow,Joshua;Elahi,Behzad;Golestanirad,Laleh
- 通讯作者:Golestanirad,Laleh
Artifacts Can Be Deceiving: The Actual Location of Deep Brain Stimulation Electrodes Differs from the Artifact Seen on Magnetic Resonance Images.
- DOI:10.1159/000526877
- 发表时间:2023
- 期刊:
- 影响因子:1.7
- 作者:Nuzov, Noa B. B.;Bhusal, Bhumi;Henry, Kaylee R. R.;Jiang, Fuchang;Vu, Jasmine;Rosenow, Joshua M. M.;Pilitsis, Julie G. G.;Elahi, Behzad;Golestanirad, Laleh
- 通讯作者:Golestanirad, Laleh
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Laleh Golestani Rad其他文献
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{{ truncateString('Laleh Golestani Rad', 18)}}的其他基金
Novel MRI coil technology for safe imaging of children with implants
新型 MRI 线圈技术可对植入儿童进行安全成像
- 批准号:
10639661 - 财政年份:2023
- 资助金额:
$ 52.64万 - 项目类别:
Assessing RF heating of active implantable medical devices in low-field MRI system
评估低场 MRI 系统中有源植入式医疗设备的射频加热
- 批准号:
10564463 - 财政年份:2022
- 资助金额:
$ 52.64万 - 项目类别:
Assessing RF heating of active implantable medical devices in low-field MRI system
评估低场 MRI 系统中有源植入式医疗设备的射频加热
- 批准号:
10709014 - 财政年份:2022
- 资助金额:
$ 52.64万 - 项目类别:
Reconfigurable MRI technology for safe and high-resolution imaging of deep brain stimulation at 3T
可重构 MRI 技术,可在 3T 下对深部脑刺激进行安全且高分辨率的成像
- 批准号:
10445316 - 财政年份:2021
- 资助金额:
$ 52.64万 - 项目类别:
Reconfigurable MRI technology for safe and high-resolution imaging of deep brain stimulation at 3T
可重构 MRI 技术,可在 3T 下对深部脑刺激进行安全且高分辨率的成像
- 批准号:
10217692 - 财政年份:2021
- 资助金额:
$ 52.64万 - 项目类别:
Safety assessment of magnetic resonance imaging in patients with retained cardiac leads
保留心脏导线患者的磁共振成像安全性评估
- 批准号:
9762904 - 财政年份:2018
- 资助金额:
$ 52.64万 - 项目类别:
Patient-adjustable MRI technology for high-resolution imaging of deep brain stimulation
用于深部脑刺激高分辨率成像的患者可调 MRI 技术
- 批准号:
9179807 - 财政年份:2016
- 资助金额:
$ 52.64万 - 项目类别: