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首页> 外文期刊>Journal of neural engineering >Electric stimulus duration alters network-mediated responses depending on retinal ganglion cell type
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Electric stimulus duration alters network-mediated responses depending on retinal ganglion cell type

机译:电刺激持续时间会根据视网膜神经节细胞类型改变网络介导的反应

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摘要

Objective. To improve the quality of artificial vision that arises from retinal prostheses, it is important to bring electrically-elicited neural activity more in line with the physiological signaling patterns that arise normally in the healthy retina. Our previous study reported that indirect activation produces a closer match to physiological responses in ON retinal ganglion cells (RGCs) than in OFF cells (Im and Fried 2015 J. Physiol. 593 3677-96). This suggests that a preferential activation of ON RGCs would shape the overall retinal response closer to natural signaling. Recently, we found that changes to the rate at which stimulation was delivered could bias responses towards a stronger ON component (Im and Fried 2016a J. Neural Eng. 13 025002), raising the possibility that changes to other stimulus parameters can similarly bias towards stronger ON responses. Here, we explore the effects of changing stimulus duration on the responses in ON and OFF types of brisk transient (BT) and brisk sustained (BS) RGCs. Approach. We used cell-attached patch clamp to record RGC spiking in the isolated rabbit retina. Targeted RGCs were first classified as ON or OFF type by their light responses, and further sub-classified as BT or BS types by their responses to both light and electric stimuli. Spiking in targeted RGCs was recorded in response to electric pulses with durations varying from 5 to 100ms. Stimulus amplitude was adjusted at each duration to hold total charge constant for all experiments. Main results. We found that varying stimulus durations modulated responses differentially for ON versus OFF cells: in ON cells, spike counts decreased significantly with increasing stimulus duration while in OFF cells the changes were more modest. The maximum ratio of ON versus OFF responses occurred at a duration of ~10ms. The difference in response strength for BT versus BS cells was much larger in ON cells than in OFF cells. Significance. The stimulation rates preferred by subjects during clinical trials are similar to the rates that maximize the ON/OFF response ratio in in vitro testing (Im and Fried 2016a J. Neural Eng. 13 025002). Here, we determine the stimulus duration that produces the strongest bias towards ON responses and speculate that it will further enhance clinical effectiveness.
机译:目的。为了提高由视网膜假体产生的人工视觉的质量,重要的是使电激发的神经活动与正常发生在健康视网膜中的生理信号模式更加一致。我们先前的研究报告说,与OFF细胞相比,间接激活在ON视网膜神经节细胞(RGC)中产生的生理反应更接近(Im and Fried 2015 J. Physiol。593 3677-96)。这表明ON RGC的优先激活将使整体视网膜反应更接近自然信号。最近,我们发现刺激传递速率的变化可能会使响应偏向更强的ON分量(Im和Fried 2016a J. Neural Eng。13 025002),从而增加了其他刺激参数的变化也可能偏向更强ON的可能性。 ON响应。在这里,我们探讨了刺激持续时间的变化对轻快瞬态(BT)和轻快持续(BS)RGC的ON和OFF类型的响应的影响。方法。我们使用附着细胞的膜片钳记录离体兔视网膜中的RGC峰。靶向的RGC首先根据其光响应分为ON或OFF类型,然后再根据其对光和电刺激的响应再分为BT或BS类型。记录目标RGC的尖峰响应电脉冲,持续时间从5到100ms不等。在每个持续时间调整刺激幅度,以使所有实验的总电荷保持恒定。主要结果。我们发现,不同的刺激持续时间对ON和OFF细胞的响应调制不同:在ON细胞中,随着刺激持续时间的增加,尖峰计数显着降低,而在OFF细胞中,变化更为适度。 ON和OFF响应的最大比率发生在约10ms的持续时间内。 BT细胞与BS细胞的响应强度差异在ON细胞中比在OFF细胞中大得多。意义。在临床试验中,受试者偏爱的刺激率类似于在体外测试中最大化ON / OFF反应比的刺激率(Im和Fried 2016a J. Neural Eng。13 025002)。在这里,我们确定对ON反应产生最强烈偏见的刺激持续时间,并推测它将进一步提高临床效果。

著录项

  • 来源
    《Journal of neural engineering》 |2018年第3期|036010.1-036010.15|共15页
  • 作者单位

    Department of Ophthalmology. Henry Ford Health System, 1 Ford Place, Detroit, MI 48202, United States of America,Department of Anatomy and Cell Biology, Wayne State University School of Medicine, 540 East Canfield Street, Detroit, MI 48201, United States of America,Department of Electrical and Computer Engineering, Wayne State University College of Engineering, 5050 Anthony Wayne Drive, Detroit, MI 48202, United States of America,Department of Neurosurgery, Massachusetts General Hospital, Harvard Medical School, 50 Blossom Street, Boston, MA 02114, United States of America;

    Department of Neurosurgery, Massachusetts General Hospital, Harvard Medical School, 50 Blossom Street, Boston, MA 02114, United States of America,Institute for Analysis and Scientific Computing, Vienna University of Technology, Wiedner Hauptstraße 8-10, 1040 Vienna, Austria;

    Department of Neurosurgery, Massachusetts General Hospital, Harvard Medical School, 50 Blossom Street, Boston, MA 02114, United States of America,VA Boston Healthcare System, 150 South Huntington Avenue, Boston, MA 02130, United States of America;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    retinal prosthesis; electrical stimulation; electrophysiology; retinal ganglion cell;

    机译:视网膜假体电刺激电生理学视网膜神经节细胞;

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