BrainLinks-BrainTools Center, University of Freiburg, Germany; Department of Microsystems Engineering (IMTEK), University of Freiburg, Germany.
BrainLinks-BrainTools Center, University of Freiburg, Germany; Department of Microsystems Engineering (IMTEK), University of Freiburg, Germany.
Biomaterials. 2017 Jun;129:176-187. doi: 10.1016/j.biomaterials.2017.03.019. Epub 2017 Mar 13.
Stable interconnection to neurons in vivo over long time-periods is critical for the success of future advanced neuroelectronic applications. The inevitable foreign body reaction towards implanted materials challenges the stability and an active intervention strategy would be desirable to treat inflammation locally. Here, we investigate whether controlled release of the anti-inflammatory drug Dexamethasone from flexible neural microelectrodes in the rat hippocampus has an impact on probe-tissue integration over 12 weeks of implantation. The drug was stored in a conducting polymer coating (PEDOT/Dex), selectively deposited on the electrode sites of neural probes, and released on weekly basis by applying a cyclic voltammetry signal in three electrode configuration in fully awake animals. Dex-functionalized probes provided stable recordings and impedance characteristics over the entire chronic study. Histological evaluation after 12 weeks of implantation revealed an overall low degree of inflammation around all flexible probes whereas electrodes exposed to active drug release protocols did have neurons closer to the electrode sites compared to controls. The combination of flexible probe technology with anti-inflammatory coatings accordingly offers a promising approach for enabling long-term stable neural interfaces.
在体内长时间稳定地与神经元连接对于未来先进的神经电子应用的成功至关重要。植入材料不可避免的异物反应对稳定性提出了挑战,因此需要一种主动的干预策略来局部治疗炎症。在这里,我们研究了从大鼠海马体中的柔性神经微电极中释放抗炎药物地塞米松是否会对植入 12 周后的探头组织整合产生影响。该药物被储存在导电聚合物涂层(PEDOT/Dex)中,选择性地沉积在神经探头的电极部位,然后通过在三电极配置中的循环伏安法信号以每周一次的频率在完全清醒的动物中释放。在整个慢性研究期间,Dex 功能化探头提供了稳定的记录和阻抗特性。植入 12 周后的组织学评估显示,所有柔性探头周围的炎症总体程度较低,而暴露于主动药物释放方案的电极与对照相比,更有神经元靠近电极部位。因此,将柔性探头技术与抗炎涂层相结合,为实现长期稳定的神经接口提供了一种很有前途的方法。