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将数字时间疗法融入生物电子药物。

Embedding digital chronotherapy into bioelectronic medicines.

作者信息

Fleming John E, Kremen Vaclav, Gilron Ro'ee, Gregg Nicholas M, Zamora Mayela, Dijk Derk-Jan, Starr Philip A, Worrell Gregory A, Little Simon, Denison Timothy J

机构信息

Medical Research Council Brain Network Dynamics Unit, Nuffield Department of Clinical Neurosciences, University of Oxford, Mansfield Road, Oxford OX1 3TH, UK.

Bioelectronics Neurophysiology and Engineering Laboratory, Department of Neurology, Mayo Clinic, Rochester, MN 55905, USA.

出版信息

iScience. 2022 Mar 4;25(4):104028. doi: 10.1016/j.isci.2022.104028. eCollection 2022 Apr 15.

Abstract

Biological rhythms pervade physiology and pathophysiology across multiple timescales. Because of the limited sensing and algorithm capabilities of neuromodulation device technology to-date, insight into the influence of these rhythms on the efficacy of bioelectronic medicine has been infeasible. As the development of new devices begins to mitigate previous technology limitations, we propose that future devices should integrate chronobiological considerations in their control structures to maximize the benefits of neuromodulation therapy. We motivate this proposition with preliminary longitudinal data recorded from patients with Parkinson's disease and epilepsy during deep brain stimulation therapy, where periodic symptom biomarkers are synchronized to sub-daily, daily, and longer timescale rhythms. We suggest a physiological control structure for future bioelectronic devices that incorporates time-based adaptation of stimulation control, locked to patient-specific biological rhythms, as an adjunct to classical control methods and illustrate the concept with initial results from three of our recent case studies using chronotherapy-enabled prototypes.

摘要

生物节律在多个时间尺度上贯穿于生理学和病理生理学过程。由于迄今为止神经调节设备技术的传感和算法能力有限,洞察这些节律对生物电子医学疗效的影响一直是不可行的。随着新设备的开发开始缓解先前技术的局限性,我们建议未来的设备应在其控制结构中纳入时间生物学考量,以最大限度地提高神经调节治疗的益处。我们通过在帕金森病和癫痫患者的深部脑刺激治疗期间记录的初步纵向数据来支持这一观点,其中周期性症状生物标志物与亚日、日和更长时间尺度的节律同步。我们为未来的生物电子设备提出了一种生理控制结构,该结构将基于时间的刺激控制自适应纳入其中,锁定于患者特定的生物节律,作为经典控制方法的辅助手段,并通过我们最近使用启用了时间疗法的原型进行的三个案例研究的初步结果来说明这一概念。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6876/8933700/2d01467ebddc/fx1.jpg

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