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Feasibility study of imaging fast neural activity in retinal tissue using Electrical Impedance Tomography

机译:电阻断层扫描的视网膜组织成像快速神经活动的可行性研究

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Electrical Impedance Tomography has been recently applied to image fast neural activity in the somatosensory cerebral cortex. This non-invasive imaging modality has the unique advantage of high spatial-temporal resolution in millimeters over milliseconds. This work was designed to test an existing 32-channel EIT system, a modified UCL ScouseTom, and to discuss the feasibility of imaging neural activity in retinal tissue through computer simulation. The finite element method was used to model a retinal slice with a realistic conductivity-depth profile of the macaque eye. The conductivity perturbation was simulated in five different layers of the model. 5μV_(RMS) white noise was added to boundary voltages. Simulation results showed that it is feasible to apply EIT in retinal tissue but the injection current is near threshold of unwanted phosphenes induction. Therefore the suggested future work are validating threshold current through animal experiments, developing electrodes with low contact impedance and mitigating noise through averaging.
机译:最近,电阻断层扫描已在躯体感染脑皮层中的图像快速神经活动。该非侵入性成像模型具有高空间 - 时间分辨率的独特优势,以毫米超过毫秒。这项工作旨在测试现有的32通道EIT系统,改进的UCL Scousetom,并通过计算机模拟讨论视网膜组织中的成像神经活性的可行性。有限元方法用于将视网膜切片模拟,具有猕猴的实际导电性深度曲线。在模型的五个不同层中模拟电导率扰动。将5μV_(RMS)的白噪声添加到边界电压。仿真结果表明,在视网膜组织中施加EIT是可行的,但注射电流接近不需要的磷酸诱导的阈值。因此,建议的未来工作是通过动物实验验证阈值电流,通过平均开发具有低接触阻抗的电极和减轻噪声的电极。

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