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Flexible microelectrode arrays with integrated insertion devices

机译:具有集成插入设备的柔性微电极阵列

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Flexible microelectrode arrays (FMAs) allow interfacing to delicate living tissues such as neural tissue with a minimum of physical disruption of that tissue during and after insertion. This physical disruption is minimized since the compliant FMAs can deform along with the tissue. However, a problem with these arrays is the insertion and subsequent precise positioning of the arrays in the tissue. Previous FMAs required hand assembly of the flexible array with another rigid structure. This may not be feasible if the dimensions of the flexible array are too small. In this work, FMAs with integrated rigid insertion devices were designed, fabricated, and assessed. Thin-film technology and electrodeposition were used to create flexible arrays with attached rigid insertion devices in a single sequence of fabrication steps. These arrays can be designed in two different configurations. The first type allows for flexible electrodes to be sewn through a nerve. The second allows for insertion into a surface such as the cerebral cortex or the spinal cord. After insertion, the rigid portion of the FMA is removed from the tissue with the flexible portion remaining behind. These two implantation schemes were tested on tissue models and found to be straightforward and reliable. In addition, comparisons of the potential to cause tissue damage between flexible and rigid arrays of similar dimensions were made under three different conditions of mechanical perturbation. In all cases, FMAs caused no damage to the tissue model above that caused by the original electrode insertion track while rigid arrays caused significant tearing. Finally, FMAs were shown to successfully stimulate neural tissue in an experimental setting.
机译:柔性微电极阵列(FMA)允许在插入期间和之后的组织的最小体格破坏,允许与神经组织(如神经组织)接口。由于柔顺的FMA可以与组织一起变形,因此这种物理破坏最小化。然而,这些阵列的问题是插入和随后的阵列在组织中的精确定位。以前的FMA需要具有另一种刚性结构的柔性阵列的手组装。如果柔性阵列的尺寸太小,这可能是不可行的。在这项工作中,设计,制造和评估了具有集成刚性插入装置的FMA。薄膜技术和电沉积用于在单一的制造步骤中具有附着的刚性插入装置的柔性阵列。这些阵列可以以两种不同的配置设计。第一类型允许柔性电极通过神经缝制。第二种允许插入诸如脑皮层或脊髓的表面中。插入后,将FMA的刚性部分从组织中移除,柔性部分留在后面。这两个植入方案在组织模型上进行了测试,发现是简单可靠的。此外,在三种不同的机械扰动条件下制造了导致柔性和刚性相似尺寸阵列之间的组织损伤的潜力的比较。在所有情况下,FMA都不会损坏上面的组织模型,而原始电极插入轨道引起,而刚性阵列引起显着的撕裂。最后,显示FMA在实验环境中成功刺激神经组织。

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