Literature DB >> 30064328

Fast gray matter acquisition T1 inversion recovery MRI to delineate the mammillothalamic tract for preoperative direct targeting of the anterior nucleus of the thalamus for deep brain stimulation in epilepsy.

Sanjeet S Grewal1, Erik H Middlebrooks2, Timothy J Kaufmann3, Matthew Stead4, Brian N Lundstrom4, Gregory A Worrell4, Chen Lin2, Serhat Baydin5, Jamie J Van Gompel6.   

Abstract

When medically intractable epilepsy is multifocal or focal but poorly localized, neuromodulation can be useful therapy. One such technique is deep brain stimulation (DBS) targeting the anterior nucleus of the thalamus (ANT). Unfortunately, the ANT is difficult to visualize in standard MRI sequences and its indirect targeting is difficult because of thalamic variability and atrophy in patients with epilepsy. The following study describes the novel use of the fast gray matter acquisition T1 inversion recovery (FGATIR) MRI sequence to delineate the mammillothalamic tract for direct targeting of the ANT through visualizing the termination of the mammillothalamic tract in the ANT. The day prior to surgery in a 19-year-old, right-handed woman with a 5-year history of epilepsy, MRI was performed on a 3-T Siemens Prisma scanner (Siemens AG, Healthcare Sector) using a 64-channel head and neck coil. As part of the imaging protocol, noncontrast magnetization-prepared rapid gradient echo (MP-RAGE) and diffusion tensor imaging (DTI) sequences were obtained for targeting purposes. The ANT was directly targeted using the FGATIR sequence, and bilateral Medtronic 3389 leads were placed. At the last follow-up (2 months), the patient reported an approximate 75% decrease in seizure frequency, as well as a decrease in seizure severity.

Entities:  

Keywords:  ANT = anterior nucleus of the thalamus; CMT = centromedian nucleus of the thalamus; CMTpf = CMT/parafascicular complex; DBS; DBS = deep brain stimulation; DISTAL = DBS Intrinsic Template Atlas; DTI = diffusion tensor imaging; EEG = electroencephalography; EPI = echo planar imaging; FGATIR; FGATIR = fast gray matter acquisition T1 inversion recovery; GRAPPA = generalized autocalibrating partial parallel acquisition; MNI = Montreal Neurological Institute; MP-RAGE = magnetization-prepared rapid gradient echo; SNR = signal-to-noise ratio; STIR = short-tau inversion recovery; VTA = volume of tissue activated; anterior nucleus; epilepsy

Mesh:

Year:  2018        PMID: 30064328     DOI: 10.3171/2018.4.FOCUS18147

Source DB:  PubMed          Journal:  Neurosurg Focus        ISSN: 1092-0684            Impact factor:   4.047


  9 in total

Review 1.  Neuroimaging Advances in Deep Brain Stimulation: Review of Indications, Anatomy, and Brain Connectomics.

Authors:  E H Middlebrooks; R A Domingo; T Vivas-Buitrago; L Okromelidze; T Tsuboi; J K Wong; R S Eisinger; L Almeida; M R Burns; A Horn; R J Uitti; R E Wharen; V M Holanda; S S Grewal
Journal:  AJNR Am J Neuroradiol       Date:  2020-08-13       Impact factor: 3.825

2.  Distributed brain co-processor for tracking spikes, seizures and behaviour during electrical brain stimulation.

Authors:  Vladimir Sladky; Petr Nejedly; Filip Mivalt; Benjamin H Brinkmann; Inyong Kim; Erik K St Louis; Nicholas M Gregg; Brian N Lundstrom; Chelsea M Crowe; Tal Pal Attia; Daniel Crepeau; Irena Balzekas; Victoria S Marks; Lydia P Wheeler; Jan Cimbalnik; Mark Cook; Radek Janca; Beverly K Sturges; Kent Leyde; Kai J Miller; Jamie J Van Gompel; Timothy Denison; Gregory A Worrell; Vaclav Kremen
Journal:  Brain Commun       Date:  2022-05-06

Review 3.  Deep Brain Stimulation: Emerging Tools for Simulation, Data Analysis, and Visualization.

Authors:  Karin Wårdell; Teresa Nordin; Dorian Vogel; Peter Zsigmond; Carl-Fredrik Westin; Marwan Hariz; Simone Hemm
Journal:  Front Neurosci       Date:  2022-04-11       Impact factor: 5.152

4.  Edge-enhancing gradient echo with multi-image co-registration and averaging (EDGE-MICRA) for targeting thalamic centromedian and parafascicular nuclei.

Authors:  Erik H Middlebrooks; Lela Okromelidze; Chen Lin; Ayushi Jain; Erin Westerhold; Anthony Ritaccio; Alfredo Quiñones-Hinojosa; Vivek Gupta; Sanjeet S Grewal
Journal:  Neuroradiol J       Date:  2021-06-13

5.  Deep Brain Stimulation in Epilepsy: A Role for Modulation of the Mammillothalamic Tract in Seizure Control?

Authors:  Frédéric L W V J Schaper; Birgit R Plantinga; Albert J Colon; G Louis Wagner; Paul Boon; Nadia Blom; Erik D Gommer; Govert Hoogland; Linda Ackermans; Rob P W Rouhl; Yasin Temel
Journal:  Neurosurgery       Date:  2020-09-01       Impact factor: 4.654

6.  ASSFN Position Statement on Deep Brain Stimulation for Medication-Refractory Epilepsy.

Authors:  Abhijeet Gummadavelli; Dario J Englot; Jason M Schwalb; Chengyuan Wu; Jorge Gonzalez-Martinez; Joseph Niemat; Jason L Gerrard
Journal:  Neurosurgery       Date:  2022-05-01       Impact factor: 5.315

7.  DeepNavNet: Automated Landmark Localization for Neuronavigation.

Authors:  Christine A Edwards; Abhinav Goyal; Aaron E Rusheen; Abbas Z Kouzani; Kendall H Lee
Journal:  Front Neurosci       Date:  2021-06-17       Impact factor: 4.677

8.  Direct Targeting of the Anterior Nucleus of the Thalamus via 3 T Quantitative Susceptibility Mapping.

Authors:  Kaijia Yu; Zhiwei Ren; Tao Yu; Xueyuan Wang; Yongsheng Hu; Song Guo; Jianyu Li; Yongjie Li
Journal:  Front Neurosci       Date:  2021-07-05       Impact factor: 4.677

Review 9.  Imaging of Neuromodulation and Surgical Interventions for Epilepsy.

Authors:  M E Adin; D D Spencer; E Damisah; A Herlopian; J L Gerrard; R A Bronen
Journal:  AJNR Am J Neuroradiol       Date:  2021-08-05       Impact factor: 4.966

  9 in total

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