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Multifunctional fibers for simultaneous optical, electrical and chemical interrogation of neural circuits in vivo

机译:多功能纤维,可同时进行体内神经回路的光学,电学和化学询问

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Brain function depends on simultaneous electrical, chemical and mechanical signaling at the cellular level. This multiplicity has confounded efforts to simultaneously measure or modulate these diverse signals in vivo. Here we present fiber probes that allow for simultaneous optical stimulation, neural recording and drug delivery in behaving mice with high resolution. These fibers are fabricated from polymers by means of a thermal drawing process that allows for the integration of multiple materials and interrogation modalities into neural probes. Mechanical, electrical, optical and microfluidic measurements revealed high flexibility and functionality of the probes under bending deformation. Long-term in vivo recordings, optogenetic stimulation, drug perturbation and analysis of tissue response confirmed that our probes can form stable brain-machine interfaces for at least 2 months. We expect that our multifunctional fibers will permit more detailed manipulation and analysis of neural circuits deep in the brain of behaving animals than achievable before.
机译:脑功能取决于细胞水平上同时发生的电,化学和机械信号传递。这种多样性混淆了同时测量或调节体内这些不同信号的努力。在这里,我们介绍了光纤探针,该探针可在行为良好的小鼠中同时进行光刺激,神经记录和药物递送。这些纤维是通过热拉伸工艺由聚合物制成的,该工艺允许将多种材料和询问方式集成到神经探针中。机械,电,光学和微流体测量表明,在弯曲变形下,探针具有很高的灵活性和功能性。长期体内记录,光遗传学刺激,药物扰动和组织反应分析证实,我们的探针可以形成稳定的脑机界面至少2个月。我们希望我们的多功能纤维能够比以前实现的动物行为更深入地操纵和分析行为动物大脑深处的神经回路。

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