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Evaluation of novel stimulus waveforms for deep brain stimulation

机译:新型刺激波形对深部脑刺激的评估

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摘要

Deep brain stimulation (DBS) is an established therapy for the treatment of a wide range of neurological disorders. Historically, DBS and other neurostimulation technologies have relied on rectangular stimulation waveforms to impose their effects on the nervous system. Recent work has suggested that non-rectangular waveforms may have advantages over the traditional rectangular pulse. Therefore, we used detailed computer models to compare a range of charge-balanced biphasic waveforms with rectangular, exponential, triangular, Gaussian and sinusoidal stimulus pulse shapes. We explored the neural activation energy of these waveforms for both intracellular and extracellular current-controlled stimulation conditions. In the context of extracellular stimulation, we compared their effects on both axonal fibers of passage and projection neurons. Finally, we evaluated the impact of delivering the waveforms through a clinical DBS electrode, as opposed to a theoretical point source. Our results suggest that DBS with a 1 ms centered-triangular pulse can decrease energy consumption by 64% when compared with the standard 100 μs rectangular pulse (energy cost of 48 and 133 nJ, respectively, to stimulate 50% of a distributed population of axons) and can decrease energy consumption by 10% when compared with the most energy efficient rectangular pulse (1.25 ms duration). In turn, there may be measureable energy savings when using appropriately designed non-rectangular pulses in clinical DBS applications, thereby warranting further experimental investigation.
机译:深部脑刺激(DBS)是一种已建立的治疗广泛的神经系统疾病的疗法。从历史上看,DBS和其他神经刺激技术一直依靠矩形刺激波形将其作用于神经系统。最近的工作表明,非矩形波形可能比传统矩形脉冲具有优势。因此,我们使用了详细的计算机模型来比较一系列具有矩形,指数,三角形,高斯和正弦刺激脉冲形状的电荷平衡双相波形。我们探索了细胞内和细胞外电流控制的刺激条件下这些波形的神经激活能。在细胞外刺激的背景下,我们比较了它们对传代和投射神经元的轴突纤维的影响。最后,我们评估了通过临床DBS电极而不是理论点源传递波形的影响。我们的结果表明,与标准的100μs矩形脉冲相比,具有1 ms中心三角脉冲的DBS可以减少64%的能量消耗(能量成本分别为48和133 nJ,以刺激50%的轴突分布群体),与最节能的矩形脉冲(持续时间1.25 ms)相比,可以减少10%的能耗。反过来,在临床DBS应用中使用适当设计的非矩形脉冲时,可能会节省可观的能量,因此值得进行进一步的实验研究。

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  • 来源
    《Journal of neural engineering》 |2010年第6期|p.066008.1-066008.10|共10页
  • 作者单位

    Cleveland Clinic Foundation, Department of Biomedical Engineering, 9500 Euclid Ave. ND20, Cleveland, OH 44195, USA Department of Biomedical Engineering, Case Western Reserve University, Cleveland, OH, USA;

    rnCleveland Clinic Foundation, Department of Biomedical Engineering, 9500 Euclid Ave. ND20, Cleveland, OH 44195, USA Department of Biomedical Engineering, Case Western Reserve University, Cleveland, OH, USA;

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