University of Kentucky Center for Biomedical Engineering, Wenner-Gren Research Lab, Lexington, KY 40506-0070, USA.
Epilepsy Behav. 2010 Jan;17(1):6-22. doi: 10.1016/j.yebeh.2009.10.017. Epub 2009 Nov 17.
Electrical stimulation is emerging as a viable alternative for patients with epilepsy whose seizures are not alleviated by drugs or surgery. Its attractions are temporal and spatial specificity of action, flexibility of waveform parameters and timing, and the perception that its effects are reversible unlike resective surgery. However, despite significant advances in our understanding of mechanisms of neural electrical stimulation, clinical electrotherapy for seizures relies heavily on empirical tuning of parameters and protocols. We highlight concurrent treatment goals with potentially conflicting design constraints that must be resolved when formulating rational strategies for epilepsy electrotherapy, namely, seizure reduction versus cognitive impairment, stimulation efficacy versus tissue safety, and mechanistic insight versus clinical pragmatism. First, treatment markers, objectives, and metrics relevant to electrical stimulation for epilepsy are discussed from a clinical perspective. Then the experimental perspective is presented, with the biophysical mechanisms and modalities of open-loop electrical stimulation, and the potential benefits of closed-loop control for epilepsy.
电刺激作为一种可行的替代方法,正在为那些药物和手术都无法缓解癫痫发作的患者带来希望。它的吸引力在于作用的时空特异性、波形参数和时间的灵活性,以及与切除性手术不同的是,人们认为其效果是可逆的。然而,尽管我们对神经电刺激机制的理解有了显著的进展,但临床电疗治疗癫痫仍然严重依赖于参数和方案的经验性调整。我们强调了可能存在冲突的设计约束的并发治疗目标,在制定癫痫电疗的合理策略时必须解决这些目标,即减少癫痫发作与认知障碍、提高刺激效果与保障组织安全,以及深入了解机制与临床实用主义之间的平衡。首先,从临床角度讨论了与癫痫电刺激相关的治疗标志物、目标和指标。然后从实验的角度介绍了开环电刺激的生物物理机制和模式,以及闭环控制在癫痫治疗中的潜在好处。