Literature DB >> 28009238

3-Tesla MRI in patients with fully implanted deep brain stimulation devices: a preliminary study in 10 patients.

Francesco Sammartino1, Vibhor Krishna1, Tejas Sankar2, Jason Fisico3, Suneil K Kalia1, Mojgan Hodaie1, Walter Kucharczyk3, David J Mikulis3, Adrian Crawley3, Andres M Lozano1.   

Abstract

OBJECTIVE The aim of this study was to evaluate the safety of 3-T MRI in patients with implanted deep brain stimulation (DBS) systems. METHODS This study was performed in 2 phases. In an initial phantom study, a Lucite phantom filled with tissue-mimicking gel was assembled. The system was equipped with a single DBS electrode connected to an internal pulse generator. The tip of the electrode was coupled to a fiber optic thermometer with a temperature resolution of 0.1°C. Both anatomical (T1- and T2-weighted) and functional MRI sequences were tested. A temperature change within 2°C from baseline was considered safe. After findings from the phantom study suggested safety, 10 patients with implanted DBS systems targeting various brain areas provided informed consent and underwent 3-T MRI using the same imaging sequences. Detailed neurological evaluations and internal pulse generator interrogations were performed before and after imaging. RESULTS During phantom testing, the maximum temperature increase was registered using the T2-weighted sequence. The maximal temperature changes at the tip of the DBS electrode were < 1°C for all sequences tested. In all patients, adequate images were obtained with structural imaging, although a significant artifact from lead connectors interfered with functional imaging quality. No heating, warmth, or adverse neurological effects were observed. CONCLUSIONS To the authors' knowledge, this was the first study to assess the clinical safety of 3-T MRI in patients with a fully implanted DBS system (electrodes, extensions, and pulse generator). It provided preliminary data that will allow further examination and assessment of the safety of 3-T imaging studies in patients with implanted DBS systems. The authors cannot advocate widespread use of this type of imaging in patients with DBS implants until more safety data are obtained.

Entities:  

Keywords:  Activa; DBS = deep brain stimulation; FRFSE = fast recovery fast spin echo; FSPGR = fast spoiled gradient–recalled; GRE-EPI = gradient-echo echo-planar imaging; IPG = internal pulse generator; PROBE-SV = point-resolved single-voxel spectroscopy; PVG = periventricular gray; RF = radiofrequency; SAR = specific absorption rate; STN = subthalamic nucleus; VIM = ventral intermediate; deep brain stimulation; electrodes; fMRI = functional MRI; functional neurosurgery; implants; magnetic resonance imaging; neurostimulator; safety; specific absorption rate

Mesh:

Year:  2016        PMID: 28009238     DOI: 10.3171/2016.9.JNS16908

Source DB:  PubMed          Journal:  J Neurosurg        ISSN: 0022-3085            Impact factor:   5.115


  11 in total

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Review 2.  Improving Safety of MRI in Patients with Deep Brain Stimulation Devices.

Authors:  Alexandre Boutet; Clement T Chow; Keshav Narang; Gavin J B Elias; Clemens Neudorfer; Jürgen Germann; Manish Ranjan; Aaron Loh; Alastair J Martin; Walter Kucharczyk; Christopher J Steele; Ileana Hancu; Ali R Rezai; Andres M Lozano
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Journal:  Ann Neurol       Date:  2020-10-13       Impact factor: 10.422

6.  Three-Tesla Magnetic Resonance Imaging of Patients With Deep Brain Stimulators: Results From a Phantom Study and a Pilot Study in Patients.

Authors:  Benjamin Davidson; Fred Tam; Benson Yang; Ying Meng; Clement Hamani; Simon J Graham; Nir Lipsman
Journal:  Neurosurgery       Date:  2021-01-13       Impact factor: 4.654

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Authors:  Yassine Bouattour; Valérie Sautou; Rodayna Hmede; Youssef El Ouadhi; Dimitri Gouot; Philip Chennell; Yuri Lapusta; Frédéric Chapelle; Jean-Jacques Lemaire
Journal:  Front Bioeng Biotechnol       Date:  2022-03-28

9.  Mapping Motor Pathways in Parkinson's Disease Patients with Subthalamic Deep Brain Stimulator: A Diffusion MRI Tractography Study.

Authors:  Yan Li; Naying He; Chencheng Zhang; Yu Liu; Jun Li; Bomin Sun; Yijie Lai; Hongyang Li; Chengyan Wang; Ewart Mark Haacke; Fuhua Yan; Dianyou Li
Journal:  Neurol Ther       Date:  2022-02-14

10.  Reconstructing lost BOLD signal in individual participants using deep machine learning.

Authors:  Yuxiang Yan; Louisa Dahmani; Jianxun Ren; Lunhao Shen; Xiaolong Peng; Ruiqi Wang; Changgeng He; Changqing Jiang; Chen Gong; Ye Tian; Jianguo Zhang; Yi Guo; Yuanxiang Lin; Shijun Li; Meiyun Wang; Luming Li; Bo Hong; Hesheng Liu
Journal:  Nat Commun       Date:  2020-10-07       Impact factor: 14.919

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