MRC Brain Network Dynamics Unit, University of Oxford, Oxford OX1 3TH, United Kingdom; Nuffield Department of Clinical Neurosciences, John Radcliffe Hospital, University of Oxford, Oxford, United Kingdom.
Department of Neurophysiology and Pathophysiology, University Medical Center Hamburg-Eppendorf, 20246 Hamburg, Germany.
Neurobiol Dis. 2019 Jul;127:101-113. doi: 10.1016/j.nbd.2019.02.005. Epub 2019 Feb 10.
Both phase-amplitude coupling (PAC) and beta-bursts in the subthalamic nucleus have been significantly linked to symptom severity in Parkinson's disease (PD) in humans and emerged independently as competing biomarkers for closed-loop deep brain stimulation (DBS). However, the underlying nature of subthalamic PAC is poorly understood and its relationship with transient beta burst-events has not been investigated. To address this, we studied macro- and micro electrode recordings of local field potentials (LFPs) and single unit activity from 15 hemispheres in 10 PD patients undergoing DBS surgery. PAC between beta phase and high frequency oscillation (HFO) amplitude was compared to single unit firing rates, spike triggered averages, power spectral densities, inter spike intervals and phase-spike locking, and was studied in periods of beta-bursting. We found a significant synchronisation of spiking to HFOs and correlation of mean firing rates with HFO-amplitude when the latter was coupled to beta phase (i.e. in the presence of PAC). In the presence of PAC, single unit power spectra displayed peaks in the beta and HFO frequency range and the HFO frequency was correlated with that in the LFP. Furthermore, inter spike interval frequencies peaked in the same frequencies for which PAC was observed. Finally, PAC significantly increased with beta burst-duration. Our findings offer new insight in the pathology of Parkinson's disease by providing evidence that subthalamic PAC reflects the locking of spiking activity to network beta oscillations and that this coupling progressively increases with beta-burst duration. These findings suggest that beta-bursts capture periods of increased subthalamic input/output synchronisation in the beta frequency range and have important implications for therapeutic closed-loop DBS. SIGNIFICANCE STATEMENT: Identifying biomarkers for closed-loop deep brain stimulation (DBS) has become an increasingly important issue in Parkinson's Disease (PD) research. Two such biomarkers, phase-amplitude coupling (PAC) and beta-bursts, recorded from the implanted electrodes in subthalamic nucleus in PD patients, correlate with motor impairment. However, the physiological basis of PAC, and it relationship to beta bursts, is unclear. We provide multiple lines of evidence that PAC in the human STN reflects the locking of spiking activity to network beta oscillations and that this coupling progressively increases with the duration of beta-bursts. This suggests that beta-bursts capture increased subthalamic input/output synchronisation and provides new insights in PD pathology with direct implications for closed-loop DBS therapy strategies.
相位-幅度耦合 (PAC) 和亚核内的β爆发在帕金森病 (PD) 患者中与症状严重程度显著相关,并且作为闭环深部脑刺激 (DBS) 的竞争生物标志物而独立出现。然而,亚核 PAC 的潜在性质尚未被很好地理解,并且它与瞬态β爆发事件的关系尚未被研究。为了解决这个问题,我们研究了来自 10 名接受 DBS 手术的 PD 患者的 15 个半脑的局部场电位 (LFP) 和单个单元活动的宏观和微观电极记录。将β相位和高频振荡 (HFO) 幅度之间的 PAC 与单个单元的发射率、尖峰触发平均值、功率谱密度、尖峰间间隔和相位-尖峰锁定进行了比较,并在β爆发期间进行了研究。当后者与β相位耦合时(即存在 PAC 时),我们发现尖峰与 HFO 的同步显著,并发现当后者与β相位耦合时(即存在 PAC 时),平均发射率与 HFO 幅度相关。在 PAC 的存在下,单个单元的功率谱在β和 HFO 频率范围内显示出峰值,并且 HFO 频率与 LFP 中的频率相关。此外,尖峰间间隔的频率在观察到 PAC 的相同频率处达到峰值。最后,PAC 随β爆发持续时间的增加而显著增加。我们的发现通过提供证据表明,亚核 PAC 反映了尖峰活动与网络β振荡的锁定,并且这种耦合随着β爆发持续时间的增加而逐渐增加,为帕金森病的病理学提供了新的见解。这些发现表明,β爆发捕获了在β频带内增加的亚核输入/输出同步化的时期,并且对治疗性闭环 DBS 具有重要意义。
重要性声明:确定闭环深部脑刺激 (DBS) 的生物标志物已成为帕金森病 (PD) 研究中的一个日益重要的问题。从 PD 患者植入的亚核电极记录的两种这样的生物标志物,相位-幅度耦合 (PAC) 和β爆发,与运动障碍相关。然而,PAC 的生理基础及其与β爆发的关系尚不清楚。我们提供了多条证据表明,人类 STN 中的 PAC 反映了尖峰活动与网络β振荡的锁定,并且这种耦合随着β爆发持续时间的增加而逐渐增加。这表明β爆发捕获了增加的亚核输入/输出同步化,并为 PD 病理学提供了新的见解,对闭环 DBS 治疗策略具有直接影响。
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