PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
May 7, 2026AIP Advances0 citationsOpen Access

Suppression of pathological beta oscillations in Parkinson’s disease by delayed feedback control targeting the thalamic nucleus-cortex direct pathway

View Full Paper
ZWZiyang WangSHSuyuan HuangYCYuan Chai

Key Points

  • This study aims to evaluate the effects of delayed feedback control on suppressing pathological beta oscillations in Parkinson's disease.
  • Developed a computational model of the cortex-basal ganglia-thalamus-pedunculopontine nucleus.
  • Evaluated four feedback stimulation strategies targeting globus pallidus externa and subthalamic nucleus.
  • Assessed the suppressive effects of these strategies on pathological oscillations.
  • All feedback strategies effectively suppressed pathological oscillations and reduced energy consumption.
  • GPe-targeted strategies outperformed STN-targeted strategies in control efficacy and energy efficiency.

Abstract

The motor symptoms of Parkinson’s disease are closely associated with pathological neural oscillations within the cortico-basal ganglia circuit. Although deep brain stimulation (DBS) can alleviate symptoms by suppressing abnormal oscillatory activity, the efficacy of current treatment regimens remains suboptimal. Conventional understanding posited that the basal ganglia influence the cortex primarily via thalamic relay. However, recent studies have identified a direct inhibitory projection from the basal ganglia to the cortex, the subthalamic nucleus (STN)-cortical pathway, offering new possibilities for optimizing DBS strategies. Building upon the classic pedunculopontine nucleus–basal ganglia (PPN-BG) closed-loop model, this study developed a computational neural mass model of the cortex-basal ganglia-thalamus-pedunculopontine nucleus (Cor-BGTh-PPN) that incorporates the direct STN-to-cortex pathway. We systematically evaluated the suppressive effects of four delayed feedback stimulation strategies, two targeting the globus pallidus externa (GPe) and two targeting the STN, on pathological oscillations. Simulation results demonstrate that all delayed feedback strategies effectively suppress pathological oscillations and reduce energy consumption. Notably, GPe-targeted strategies outperform STN-targeted ones in both control efficacy and energy efficiency. These findings provide a theoretical foundation for developing more efficient closed-loop DBS systems and suggest promising directions for refining treatment strategy selection.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69fc2c4b8b49bacb8b347ed6https://doi.org/10.1063/5.0332506
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1In silico model of basal ganglia deep brain stimulation in Parkinson’s disease captures range of effective parameters for pathological beta power suppression2026
  2. 2Disruption of parkinsonian brain oscillations2025
  3. 3Rhythmic modulation of subthalamo-pallidal interactions depends on synaptic rewiring through inhibitory plasticity2024
  4. 4Optimized DBS in pediatric dystonia restores balance in transmission of signals within pallidothalamic network by modulating neural oscillations in deep brain regions2025
  5. 5Robust adaptive deep brain stimulation control of in-silico non-stationary Parkinsonian neural oscillatory dynamics2024 · 1 citations