Examining the Role of the Pallidostriatal Microcircuit in Modulating Beta Oscillations in Parkinson's Disease
Examining the Role of the Pallidostriatal Microcircuit in Modulating Beta Oscillations in Parkinson's Disease
批准号:
9755537
负责人:
Timothy Carvin Whalen
金额:
$4.5万
依托单位国家:
美国
项目类别:
财政年份:
2017
资助国家:
美国
项目状态:
已结题
起止时间:
2017-09-01 至 2020-08-31
关键词:
AddressAffectAnatomyAnimalsAttentionBackBasal GangliaBradykinesiaCell NucleusCellsChronicComputer SimulationCorpus striatum structureDiseaseDopamineDopamine D2 ReceptorFeedbackFrequenciesFunctional disorderGlobus PallidusGoalsHumanInterneuronsInterventionInvestigationLeadMeasuresModelingNational Institute of Neurological Disorders and StrokeNeuronal DysfunctionNeuronsOutputParkinson DiseaseParkinsonian DisordersPathologicPathologyPathway interactionsPatientsPatternProbabilityPublishingRecurrenceRoleSeveritiesShapesSourceStructure of subthalamic nucleusTestingTremorexperimental studyin vivoinsightmotor deficitmotor symptommouse modelnervous system disorderneural circuitnoveloptogeneticsrelating to nervous system
中文摘要
项目总结
英文摘要
Project Summary
Parkinson’s disease (PD) is a devastating neurological disorder, afflicting over 50 million people
worldwide with bradykinesia, tremor, and rigidity. PD is characterized by dopamine depletion (DD) in the basal
ganglia, which leads directly to motor symptoms, changes in basal ganglia neural circuits, and increased β
oscillations (13-30 Hz) in many nuclei. However, the mechanisms by which these neural circuit changes,
activity patterns, and motor deficits are generated and the connections between them remain poorly
understood. One major circuit rewiring in DD occurs in the striatum, where fast spiking interneurons (FSIs)
selectively double their connection probability to D2-receptor-expressing medium spiny neurons (MSNs).
These MSNs project to the globus pallidus externa (GPe) whose neurons send feedback projections to FSIs,
closing the pallidostriatal loop. This pallidostriatal feedback projection has been well-characterized
anatomically and more recently, computationally, but its role in disease states has been understudied
In our recently published computational model, I demonstrated that DD-induced increases in striatal
connectivity are sufficient to generate and amplify β oscillations throughout the circuit through a mechanism
which requires the pallidostriatal feedback projection. This novel model of β oscillation amplification has major
implications in understanding Parkinson’s disease pathology. The goal of this study is to investigate how
the pallidostriatal circuit functions in DD and interacts with other chronically oscillating basal ganglia
nuclei through theoretical and in vivo investigations.
In Aim 1, we will investigate how disrupting the pallidostriatal circuit in a mouse model of Parkinson’s
disease affects oscillatory dynamics in the GPe. This will test whether the pallidostriatal circuit’s propensity to
resonate at β frequencies has a generating, amplifying, or destructive effect on pathological oscillations in DD.
In Aim 2, we employ a two-pronged computational and experimental approach to investigate how the
pallidostriatal circuit interacts with oscillations generated by the GPe’s recurrent connections with the
subthalamic nucleus (STN). Through in vivo manipulations of the pallidostriatal circuit while recording from the
STN, we will determine whether the pallidostriatal circuit’s effects on oscillations can be transferred to other
basal ganglia nuclei and if the oscillations which interact with pallidostriatal β synchrony are derived from the
STN-GPe loop or elsewhere. Pairing this with an extension of our computational model will provide details
about variables impossible to measure experimentally and give insights into the underlying mechanisms by
which these circuits interact. A thorough understanding of the pallidostriatal circuit’s role in causing
pathological oscillatory synchrony in PD will provide a better understanding of basal ganglia function and
dysfunction in disease, and may illuminate new targets and interventions to help treat PD in human patients.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
海外基金