Oladepo Ibrahim, Saxena Kapil, Surinach Daniel, Lehman Malachi, Kodandaramaiah Suhasa B
University of Minnesota, Twin Cities, Department of Mechanical Engineering, Minneapolis, Minnesota, United States.
University of Minnesota, Twin Cities, Department of Biomedical Engineering, Minneapolis, Minnesota, United States.
Neurophotonics. 2024 Jul;11(3):034312. doi: 10.1117/1.NPh.11.3.034312. Epub 2024 Sep 26.
Recently developed miniaturized neural recording devices that can monitor and perturb neural activity in freely behaving animals have significantly expanded our knowledge of neural underpinning of complex behaviors. Most miniaturized neural interfaces require a wired connection for external power and data acquisition systems. The wires are required to be commutated through a slip ring to accommodate for twisting of the wire or tether and alleviate torsional stresses. The increased trend toward long-term continuous neural recordings has spurred efforts to realize active commutators that can sense the torsional stress and actively rotate the slip ring to alleviate torsional stresses. Current solutions however require the addition of sensing modules.
Here, we report on an active translating commutator that uses computer vision (CV) algorithms on behavioral imaging videos captured during the experiment to track the animal's position and heading direction in real time and uses this information to control the translation and rotation of a slip ring commutator to accommodate for accumulated mouse heading orientation changes and position.
The CV-guided active commutator has been extensively tested in three separate behavioral contexts.
We show reliable cortex-wide imaging in a mouse in an open field with a miniaturized wide-field cortical imaging device. Active commutation resulted in no changes to measured neurophysiological signals.
The active commutator is fully open source, can be assembled using readily available off-the-shelf components, and is compatible with a wide variety of miniaturized neurophotonic and neurophysiology devices.
最近开发的小型化神经记录设备能够监测和干扰自由活动动物的神经活动,极大地扩展了我们对复杂行为神经基础的认识。大多数小型化神经接口需要有线连接到外部电源和数据采集系统。这些电线需要通过滑环进行换向,以适应电线或系绳的扭曲并减轻扭转应力。长期连续神经记录的趋势不断增加,促使人们努力实现能够感知扭转应力并主动旋转滑环以减轻扭转应力的有源换向器。然而,目前的解决方案需要添加传感模块。
在此,我们报告一种有源平移换向器,它利用实验期间捕获的行为成像视频上的计算机视觉(CV)算法实时跟踪动物的位置和头部方向,并利用这些信息控制滑环换向器的平移和旋转,以适应累积的小鼠头部方向变化和位置。
CV引导的有源换向器已在三种不同的行为环境中进行了广泛测试。
我们展示了在开放场中使用小型化宽场皮层成像设备对小鼠进行可靠的全皮层成像。有源换向对测量的神经生理信号没有影响。
该有源换向器完全开源,可以使用现成的现成组件进行组装,并且与各种小型化神经光子学和神经生理学设备兼容。