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用光吸收剂诱导的神经热刺激进行全息图案化激活。

Holographically patterned activation using photo-absorber induced neural-thermal stimulation.

机构信息

Faculty of Biomedical Engineering, Technion-Israel Institute of Technology, Haifa 32000, Israel.

出版信息

J Neural Eng. 2013 Oct;10(5):056004. doi: 10.1088/1741-2560/10/5/056004. Epub 2013 Jul 31.

Abstract

OBJECTIVE

Patterned photo-stimulation offers a promising path towards the effective control of distributed neuronal circuits. Here, we demonstrate the feasibility and governing principles of spatiotemporally patterned microscopic photo-absorber induced neural-thermal stimulation (PAINTS) based on light absorption by exogenous extracellular photo-absorbers.

APPROACH

We projected holographic light patterns from a green continuous-wave (CW) or an IR femtosecond laser onto exogenous photo-absorbing particles dispersed in the vicinity of cultured rat cortical cells. Experimental results are compared to predictions of a temperature-rate model (where membrane currents follow I ∝ dT/dt).

MAIN RESULTS

The induced microscopic photo-thermal transients have sub-millisecond thermal relaxation times and stimulate adjacent cells. PAINTS activation thresholds for different laser pulse durations (0.02 to 1 ms) follow the Lapicque strength-duration formula, but with different chronaxies and minimal threshold energy levels for the two excitation lasers (an order of magnitude lower for the IR system <50 nJ). Moreover, the empirical thresholds for the CW system are found to be in good agreement with detailed simulations of the temperature-rate model, but are generally lower for the IR system, suggesting an auxiliary excitation mechanism.

SIGNIFICANCE

Holographically patterned PAINTS could potentially provide a means for minimally intrusive control over neuronal dynamics with a high level of spatial and temporal selectivity.

摘要

目的

模式化光刺激为有效控制分布式神经元回路提供了一条有前途的途径。在这里,我们展示了基于外源性细胞外光吸收体光吸收的时空模式化微尺度光吸收诱导神经热刺激(PAINTS)的可行性和控制原理。

方法

我们将绿光连续波(CW)或红外飞秒激光的全息光图案投影到培养的大鼠皮质细胞附近分散的外源性光吸收颗粒上。将实验结果与温度率模型的预测进行比较(其中膜电流遵循 I∝dT/dt)。

主要结果

诱导的微观光热瞬变具有亚毫秒级的热弛豫时间,并刺激相邻细胞。不同激光脉冲持续时间(0.02 至 1 毫秒)的 PAINTS 激活阈值遵循拉普伊克强度-持续时间公式,但具有不同的驰豫时间和两个激发激光的最小阈值能量水平(IR 系统低一个数量级<50 nJ)。此外,CW 系统的经验阈值与温度率模型的详细模拟吻合良好,但对于 IR 系统通常较低,表明存在辅助激发机制。

意义

全息图案化的 PAINTS 可能为以高时空选择性对神经元动力学进行最小侵入性控制提供了一种手段。

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