Effect of Stimulation of Subthalamic Nucleus on Beta Oscillations and Thalamus Tremor Activity in a Computational Model of Parkinson's Disease
Alavi, S. M.; Mirzaei, A.; Valizadeh, A.; Ebrahimpour, R.
Show abstract
Parkinsons disease (PD) is associated with abnormal {beta} band oscillations (13-30 Hz) in the cortico-basal ganglia circuits. Abnormally increased striato-pallidal inhibition and strengthening the synaptic coupling between subthalamic nucleus (STN) and globus pallidus externa (GPe), due to the loss of dopamine, are considered as the potential sources of {beta} oscillations in the basal ganglia. Deep brain stimulation (DBS) of the basal ganglia subregions is known as a way to reduce the pathological {beta} oscillations and motor deficits related to PD. Despite the success of the DBS, its underlying mechanism is poorly understood and, there is controversy about the inhibitory or excitatory role of the DBS in the literature. Here, we utilized a computational network model of basal ganglia which consists of STN, GPe, globus pallidus interna (GPi), and thalamic neuronal population. This model can reproduce healthy and pathological {beta} oscillations similar to what has been observed in experimental studies. Using this model, we investigated the effect of DBS to understand whether its effect is excitatory or inhibitory. Our results show that the excitatory DBS (EDBS) is able to quench the pathological synchrony and {beta} oscillations, while, applying inhibitory DBS (IDBS) failed to quench the PD signs. In light of simulation results, we conclude that the effect of the DBS on its target is excitatory.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Uncoupling the roles of firing rates and spike bursts in shaping the STN-GPe beta band oscillations. 95%
- In silico model of basal ganglia Deep Brain Stimulation in Parkinsons Disease captures range of effective parameters for pathological beta power suppression 95%
- Decoupling of interacting neuronal populations by time-shifted stimulation through spike-timing-dependent plasticity 94%
Similar papers in this journal
- A Multiscale, Systems-level, Neuropharmacological Model of Cortico-Basal Ganglia System for Arm Reaching under Normal, Parkinsonian and Levodopa Medication Conditions 93%
- Autonomous oscillations and phase-locking in a biophysically detailed model of the STN-GPe network 93%
- Synergy mediates Long-Range Correlations in the Visual Cortex Near Criticality 93%
Similar papers in this journal
- Deriving connectivity from spiking activity in detailed models of large-scale cortical microcircuits 93%
- Branch-specific clustered parallel fiber input controls dendritic computation in Purkinje cells 93%
- Augmenting Flexibility: Mutual Inhibition Between Inhibitory Neurons Expands Functional Diversity 92%
Similar papers in this journal
- The interplay between homeostatic synaptic scaling and homeostatic structural plasticity maintains the robust firing rate of neural networks 94%
- Ultrafast Simulation of Large-Scale Neocortical Microcircuitry with Biophysically Realistic Neurons 93%
- Causal roles of prefrontal cortex during spontaneous perceptual switching are determined by brain state dynamics 93%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.