Department of Clinical Neurosciences, Lausanne University Hospital (CHUV), Lausanne, Switzerland.
Defitech Center for Interventional Neurotherapies (NeuroRestore), University Hospital Lausanne and Ecole Polytechnique Fédérale de Lausanne, Switzerland.
J Neural Eng. 2021 Aug 31;18(4). doi: 10.1088/1741-2552/ac1d5b.
. Technical advances in deep brain stimulation (DBS) are crucial to improve therapeutic efficacy and battery life. We report the potentialities and pitfalls of one of the first commercially available devices capable of recording brain local field potentials (LFPs) from the implanted DBS leads, chronically and during stimulation. The aim was to provide clinicians with well-grounded tips on how to maximize the capabilities of this novel device, both in everyday practice and for research purposes.. We collected clinical and neurophysiological data of the first 20 patients (14 with Parkinson's disease (PD), five with dystonia, one with chronic pain) that received the Percept™ PC in our centres. We also performed tests in a saline bath to validate the recordings quality.. The Percept PC reliably recorded the LFP of the implanted site, wirelessly and in real time. We recorded the most promising clinically useful biomarkers for PD and dystonia (beta and theta oscillations) with and without stimulation. Furthermore, we provide an open-source code to facilitate export and analysis of data. Critical aspects of the system are presently related to contact selection, artefact detection, data loss, and synchronization with other devices.. New technologies will soon allow closed-loop neuromodulation therapies, capable of adapting stimulation based on real-time symptom-specific and task-dependent input signals. However, technical aspects need to be considered to ensure reliable recordings. The critical use by a growing number of DBS experts will alert new users about the currently observed shortcomings and inform on how to overcome them.
. 深度脑刺激 (DBS) 的技术进步对于提高治疗效果和电池寿命至关重要。我们报告了第一个可商业购买的设备的潜力和陷阱,该设备能够从植入的 DBS 导联中记录脑局部场电位 (LFPs),并在慢性和刺激期间进行记录。目的是为临床医生提供如何最大限度地利用该新型设备的能力的合理建议,无论是在日常实践中还是用于研究目的。. 我们收集了前 20 名患者(14 名帕金森病 (PD) 患者,5 名肌张力障碍患者,1 名慢性疼痛患者)的临床和神经生理数据,他们在我们的中心接受了 Percept™ PC。我们还在盐水中进行了测试,以验证记录质量。. Percept PC 可可靠地无线实时记录植入部位的 LFP。我们记录了具有和不具有刺激的 PD 和肌张力障碍最有前途的临床有用生物标志物(β和θ振荡)。此外,我们提供了一个开源代码,以方便数据的导出和分析。目前,系统的关键方面与接触选择、伪影检测、数据丢失和与其他设备的同步有关。. 新技术将很快允许闭环神经调节疗法,能够根据实时特定症状和任务相关的输入信号来适应刺激。然而,需要考虑技术方面以确保可靠的记录。越来越多的 DBS 专家的关键使用将提醒新用户当前观察到的缺点,并告知如何克服这些缺点。