Cargando…

Sub-harmonic entrainment of cortical gamma oscillations to deep brain stimulation in Parkinson's disease: Model based predictions and validation in three human subjects

OBJECTIVES: The exact mechanisms of deep brain stimulation (DBS) are still an active area of investigation, in spite of its clinical successes. This is due in part to the lack of understanding of the effects of stimulation on neuronal rhythms. Entrainment of brain oscillations has been hypothesised...

Descripción completa

Detalles Bibliográficos
Autores principales: Sermon, James J., Olaru, Maria, Ansó, Juan, Cernera, Stephanie, Little, Simon, Shcherbakova, Maria, Bogacz, Rafal, Starr, Philip A., Denison, Timothy, Duchet, Benoit
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10635843/
https://www.ncbi.nlm.nih.gov/pubmed/37683763
http://dx.doi.org/10.1016/j.brs.2023.08.026
_version_ 1785146373437390848
author Sermon, James J.
Olaru, Maria
Ansó, Juan
Cernera, Stephanie
Little, Simon
Shcherbakova, Maria
Bogacz, Rafal
Starr, Philip A.
Denison, Timothy
Duchet, Benoit
author_facet Sermon, James J.
Olaru, Maria
Ansó, Juan
Cernera, Stephanie
Little, Simon
Shcherbakova, Maria
Bogacz, Rafal
Starr, Philip A.
Denison, Timothy
Duchet, Benoit
author_sort Sermon, James J.
collection PubMed
description OBJECTIVES: The exact mechanisms of deep brain stimulation (DBS) are still an active area of investigation, in spite of its clinical successes. This is due in part to the lack of understanding of the effects of stimulation on neuronal rhythms. Entrainment of brain oscillations has been hypothesised as a potential mechanism of neuromodulation. A better understanding of entrainment might further inform existing methods of continuous DBS, and help refine algorithms for adaptive methods. The purpose of this study is to develop and test a theoretical framework to predict entrainment of cortical rhythms to DBS across a wide range of stimulation parameters. MATERIALS AND METHODS: We fit a model of interacting neural populations to selected features characterising PD patients' off-stimulation finely-tuned gamma rhythm recorded through electrocorticography. Using the fitted models, we predict basal ganglia DBS parameters that would result in 1:2 entrainment, a special case of sub-harmonic entrainment observed in patients and predicted by theory. RESULTS: We show that the neural circuit models fitted to patient data exhibit 1:2 entrainment when stimulation is provided across a range of stimulation parameters. Furthermore, we verify key features of the region of 1:2 entrainment in the stimulation frequency/amplitude space with follow-up recordings from the same patients, such as the loss of 1:2 entrainment above certain stimulation amplitudes. CONCLUSION: Our results reveal that continuous, constant frequency DBS in patients may lead to nonlinear patterns of neuronal entrainment across stimulation parameters, and that these responses can be predicted by modelling. Should entrainment prove to be an important mechanism of therapeutic stimulation, our modelling framework may reduce the parameter space that clinicians must consider when programming devices for optimal benefit.
format Online
Article
Text
id pubmed-10635843
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-106358432023-11-14 Sub-harmonic entrainment of cortical gamma oscillations to deep brain stimulation in Parkinson's disease: Model based predictions and validation in three human subjects Sermon, James J. Olaru, Maria Ansó, Juan Cernera, Stephanie Little, Simon Shcherbakova, Maria Bogacz, Rafal Starr, Philip A. Denison, Timothy Duchet, Benoit Brain Stimul Article OBJECTIVES: The exact mechanisms of deep brain stimulation (DBS) are still an active area of investigation, in spite of its clinical successes. This is due in part to the lack of understanding of the effects of stimulation on neuronal rhythms. Entrainment of brain oscillations has been hypothesised as a potential mechanism of neuromodulation. A better understanding of entrainment might further inform existing methods of continuous DBS, and help refine algorithms for adaptive methods. The purpose of this study is to develop and test a theoretical framework to predict entrainment of cortical rhythms to DBS across a wide range of stimulation parameters. MATERIALS AND METHODS: We fit a model of interacting neural populations to selected features characterising PD patients' off-stimulation finely-tuned gamma rhythm recorded through electrocorticography. Using the fitted models, we predict basal ganglia DBS parameters that would result in 1:2 entrainment, a special case of sub-harmonic entrainment observed in patients and predicted by theory. RESULTS: We show that the neural circuit models fitted to patient data exhibit 1:2 entrainment when stimulation is provided across a range of stimulation parameters. Furthermore, we verify key features of the region of 1:2 entrainment in the stimulation frequency/amplitude space with follow-up recordings from the same patients, such as the loss of 1:2 entrainment above certain stimulation amplitudes. CONCLUSION: Our results reveal that continuous, constant frequency DBS in patients may lead to nonlinear patterns of neuronal entrainment across stimulation parameters, and that these responses can be predicted by modelling. Should entrainment prove to be an important mechanism of therapeutic stimulation, our modelling framework may reduce the parameter space that clinicians must consider when programming devices for optimal benefit. Elsevier 2023 /pmc/articles/PMC10635843/ /pubmed/37683763 http://dx.doi.org/10.1016/j.brs.2023.08.026 Text en © 2023 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Sermon, James J.
Olaru, Maria
Ansó, Juan
Cernera, Stephanie
Little, Simon
Shcherbakova, Maria
Bogacz, Rafal
Starr, Philip A.
Denison, Timothy
Duchet, Benoit
Sub-harmonic entrainment of cortical gamma oscillations to deep brain stimulation in Parkinson's disease: Model based predictions and validation in three human subjects
title Sub-harmonic entrainment of cortical gamma oscillations to deep brain stimulation in Parkinson's disease: Model based predictions and validation in three human subjects
title_full Sub-harmonic entrainment of cortical gamma oscillations to deep brain stimulation in Parkinson's disease: Model based predictions and validation in three human subjects
title_fullStr Sub-harmonic entrainment of cortical gamma oscillations to deep brain stimulation in Parkinson's disease: Model based predictions and validation in three human subjects
title_full_unstemmed Sub-harmonic entrainment of cortical gamma oscillations to deep brain stimulation in Parkinson's disease: Model based predictions and validation in three human subjects
title_short Sub-harmonic entrainment of cortical gamma oscillations to deep brain stimulation in Parkinson's disease: Model based predictions and validation in three human subjects
title_sort sub-harmonic entrainment of cortical gamma oscillations to deep brain stimulation in parkinson's disease: model based predictions and validation in three human subjects
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10635843/
https://www.ncbi.nlm.nih.gov/pubmed/37683763
http://dx.doi.org/10.1016/j.brs.2023.08.026
work_keys_str_mv AT sermonjamesj subharmonicentrainmentofcorticalgammaoscillationstodeepbrainstimulationinparkinsonsdiseasemodelbasedpredictionsandvalidationinthreehumansubjects
AT olarumaria subharmonicentrainmentofcorticalgammaoscillationstodeepbrainstimulationinparkinsonsdiseasemodelbasedpredictionsandvalidationinthreehumansubjects
AT ansojuan subharmonicentrainmentofcorticalgammaoscillationstodeepbrainstimulationinparkinsonsdiseasemodelbasedpredictionsandvalidationinthreehumansubjects
AT cernerastephanie subharmonicentrainmentofcorticalgammaoscillationstodeepbrainstimulationinparkinsonsdiseasemodelbasedpredictionsandvalidationinthreehumansubjects
AT littlesimon subharmonicentrainmentofcorticalgammaoscillationstodeepbrainstimulationinparkinsonsdiseasemodelbasedpredictionsandvalidationinthreehumansubjects
AT shcherbakovamaria subharmonicentrainmentofcorticalgammaoscillationstodeepbrainstimulationinparkinsonsdiseasemodelbasedpredictionsandvalidationinthreehumansubjects
AT bogaczrafal subharmonicentrainmentofcorticalgammaoscillationstodeepbrainstimulationinparkinsonsdiseasemodelbasedpredictionsandvalidationinthreehumansubjects
AT starrphilipa subharmonicentrainmentofcorticalgammaoscillationstodeepbrainstimulationinparkinsonsdiseasemodelbasedpredictionsandvalidationinthreehumansubjects
AT denisontimothy subharmonicentrainmentofcorticalgammaoscillationstodeepbrainstimulationinparkinsonsdiseasemodelbasedpredictionsandvalidationinthreehumansubjects
AT duchetbenoit subharmonicentrainmentofcorticalgammaoscillationstodeepbrainstimulationinparkinsonsdiseasemodelbasedpredictionsandvalidationinthreehumansubjects