Identifying responders to vagus nerve stimulation based on microstructural features of thalamocortical tracts in drug-resistant epilepsy

被引:1
作者
Berger, Alexandre [1 ,2 ,3 ]
Cerra, Michele [4 ,5 ]
Joris, Vincent [1 ,6 ]
Danthine, Venethia [1 ]
Macq, Benoit [4 ]
Dricot, Laurence [1 ]
Vandewalle, Gilles [3 ]
Delinte, Nicolas [1 ,4 ]
El Tahry, Riem [1 ,7 ]
机构
[1] Catholic Univ Louvain, Dept Clin Neurosci, Inst Neurosci IoNS, Epilepsy & Neurostimulat Lab, B-1200 Brussels, Belgium
[2] Synergia Med SA, B-1435 Mont St Guibert, Belgium
[3] Univ Liege, GIGA Cyclotron Res Ctr In Vivo Imaging, Sleep & Chronobiol Lab, B-4000 Liege, Belgium
[4] Catholic Univ Louvain, Inst Informat & Commun Technol, Elect & Appl Math ICTEAM, B-1348 Louvain La Neuve, Belgium
[5] Politecn Torino, Dept Control & Comp Engn, Corso Duca Abruzzi 24, I-10129 Turin, Italy
[6] Clin Univ St Luc, Dept Neurosurg, B-1200 Brussels, Belgium
[7] Clin Univ St Luc CUSL, Ctr Refractory Epilepsy, Dept Neurol, B-1200 Brussels, Belgium
关键词
Thalamocortical tracts; Vagus nerve stimulation; Epilepsy; Magnetic resonance imaging; Biomarker; Support vector machine; DIFFUSION; BRAIN; ACTIVATION; EFFICACY; CHILDREN;
D O I
10.1016/j.neurot.2024.e00422
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
The mechanisms of action of Vagus Nerve Stimulation (VNS) and the biological prerequisites to respond to the treatment are currently under investigation. It is hypothesized that thalamocortical tracts play a central role in the antiseizure effects of VNS by disrupting the genesis of pathological activity in the brain. This pilot study explored whether in vivo microstructural features of thalamocortical tracts may differentiate Drug-Resistant Epilepsy (DRE) patients responding and not responding to VNS treatment. Eighteen patients with DRE (37.11 f 10.13 years, 10 females), including 11 responders or partial responders and 7 non-responders to VNS, were recruited for this highgradient multi-shell diffusion Magnetic Resonance Imaging (MRI) study. Using Diffusion Tensor Imaging (DTI) and multi-compartment models - Neurite Orientation Dispersion and Density Imaging (NODDI) and Microstructure Fingerprinting (MF), we extracted microstructural features in 12 subsegments of thalamocortical tracts. These characteristics were compared between responders/partial responders and non-responders. Subsequently, a Support Vector Machine (SVM) classifier was built, incorporating microstructural features and 12 clinical covariates (including age, sex, duration of VNS therapy, number of antiseizure medications, benzodiazepine intake, epilepsy duration, epilepsy onset age, epilepsy type - focal or generalized, presence of an epileptic syndrome - no syndrome or Lennox-Gastaut syndrome, etiology of epilepsy - structural, genetic, viral, or unknown, history of brain surgery, and presence of a brain lesion detected on structural MRI images). Multiple diffusion metrics consistently demonstrated significantly higher white matter fiber integrity in patients with a better response to VNS (pFDR < 0.05) in different subsegments of thalamocortical tracts. The SVM model achieved a classification accuracy of 94.12%. The inclusion of clinical covariates did not improve the classification performance. The results suggest that the structural integrity of thalamocortical tracts may be linked to therapeutic effectiveness of VNS. This study reveals the great potential of diffusion MRI in improving our understanding of the biological factors associated with the response to VNS therapy.
引用
收藏
页数:11
相关论文
共 41 条
[1]   An integrated approach to correction for off-resonance effects and subject movement in diffusion MR imaging [J].
Andersson, Jesper L. R. ;
Sotiropoulos, Stamatios N. .
NEUROIMAGE, 2016, 125 :1063-1078
[2]  
Aung Wint Yan, 2013, Imaging Med, V5, P427
[3]   Spatial patterns of water diffusion along white matter tracts in temporal lobe epilepsy [J].
Concha, Luis ;
Kim, Hosung ;
Bernasconi, Andrea ;
Bernhardt, Boris C. ;
Bernasconi, Neda .
NEUROLOGY, 2012, 79 (05) :455-462
[4]  
Dessain Q, 2024, Hyedryn/elikopy: v0.3-bug fixes (v0.3) Internet. Zenodo
[5]   Feasibility study of microburst VNS therapy in drug-resistant focal and generalized epilepsy [J].
Drees, Cornelia ;
Afra, Pegah ;
Verner, Ryan ;
Kaye, Lesley ;
Keith, Amy ;
Jiang, Mei ;
Szaflarski, Jerzy P. ;
Nichol, Kathryn .
BRAIN STIMULATION, 2024, 17 (02) :382-391
[6]   Vagus nerve stimulation in 436 consecutive patients with treatment-resistant epilepsy: Long-term outcomes and predictors of response [J].
Elliott, Robert E. ;
Morsi, Amr ;
Kalhorn, Stephen P. ;
Marcus, Joshua ;
Sellin, Jonathan ;
Kang, Matthew ;
Silverberg, Alyson ;
Rivera, Edwin ;
Geller, Eric ;
Carlson, Chad ;
Devinsky, Orrin ;
Doyle, Werner K. .
EPILEPSY & BEHAVIOR, 2011, 20 (01) :57-63
[7]   VNS parameters for clinical response in Epilepsy [J].
Fahoum, Firas ;
Boffini, Massimiliano ;
Kann, Lennart ;
Faini, Silvia ;
Gordon, Charles ;
Tzadok, Michal ;
El Tahry, Riem .
BRAIN STIMULATION, 2022, 15 (03) :814-821
[8]   The Dmipy Toolbox: Diffusion MRI Multi-Compartment Modeling and Microstructure Recovery Made Easy [J].
Fick, Rutger H. J. ;
Wassermann, Demian ;
Deriche, Rachid .
FRONTIERS IN NEUROINFORMATICS, 2019, 13
[9]   Epileptic seizures and epilepsy: Definitions proposed by the International League against Epilepsy (ILAE) and the International Bureau for Epilepsy (IBE) [J].
Fisher, RS ;
Boas, WV ;
Blume, W ;
Elger, C ;
Genton, P ;
Lee, P ;
Engel, J .
EPILEPSIA, 2005, 46 (04) :470-472
[10]   Brain stimulation treatments in epilepsy: Basic mechanisms and clinical advances [J].
Foutz, Thomas J. ;
Wong, Michael .
BIOMEDICAL JOURNAL, 2022, 45 (01) :27-37