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锥形光纤电极用于在小体积脑内实现低伪影的光电神经界面。

Tapered fibertrodes for optoelectrical neural interfacing in small brain volumes with reduced artefacts.

机构信息

Istituto Italiano di Tecnologia, CBN, Lecce, Italy.

Howard Hughes Medical Institute, Department of Neurobiology, Harvard Medical School, Boston, MA, USA.

出版信息

Nat Mater. 2022 Jul;21(7):826-835. doi: 10.1038/s41563-022-01272-8. Epub 2022 Jun 6.

Abstract

Deciphering the neural patterns underlying brain functions is essential to understanding how neurons are organized into networks. This deciphering has been greatly facilitated by optogenetics and its combination with optoelectronic devices to control neural activity with millisecond temporal resolution and cell type specificity. However, targeting small brain volumes causes photoelectric artefacts, in particular when light emission and recording sites are close to each other. We take advantage of the photonic properties of tapered fibres to develop integrated 'fibertrodes' able to optically activate small brain volumes with abated photoelectric noise. Electrodes are positioned very close to light emitting points by non-planar microfabrication, with angled light emission allowing the simultaneous optogenetic manipulation and electrical read-out of one to three neurons, with no photoelectric artefacts, in vivo. The unconventional implementation of two-photon polymerization on the curved taper edge enables the fabrication of recoding sites all around the implant, making fibertrodes a promising complement to planar microimplants.

摘要

解析大脑功能的神经模式对于理解神经元如何组织成网络至关重要。光遗传学及其与光电设备的结合极大地促进了这一解析过程,使其能够以毫秒级时间分辨率和细胞类型特异性控制神经活动。然而,当目标是小的脑体积时,会产生光电伪影,特别是当光发射和记录位点彼此靠近时。我们利用锥形光纤的光子特性来开发集成的“光纤电极”,能够以减轻的光电噪声来光学激活小的脑体积。通过非平面微加工将电极放置在非常靠近发光点的位置,角度发射光允许在体内同时进行光遗传学操作和对一个到三个神经元的电读取,而没有光电伪影。在弯曲的锥形边缘上进行双光子聚合的非常规实现方式使得能够在植入物周围制造记录位点,使光纤电极成为平面微植入物的有前途的补充。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ae9c/7612923/2fe4079e78f3/EMS144588-f001.jpg

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