首页> 外文OA文献 >Design, fabrication and testing of miniaturized neural recording platform for robotic applications in fly sensorimotor research
【2h】

Design, fabrication and testing of miniaturized neural recording platform for robotic applications in fly sensorimotor research

机译:用于飞行感觉运动研究中机器人应用的小型化神经记录平台的设计,制造和测试

摘要

Blowflies are exquisite fliers and have long been established as models for sensorimotor research. Their flight performance crucially depends on both visual and mechanoreceptive feedback. Our understanding of how the nervous system integrates signals of these sensory modalities, however, leaves two important issues unresolved. First: As most experiments are performed on restrained animals, how are neural signals integrated when the animal actually moves? Second: Are neural mechanisms underlying optic-flow-based self-motion estimation modulated by mechanosensory modalities when controlling motor behaviour?udTo address these questions, I have designed a mobile platform and miniaturized electrophysiological recording equipment. Here, I describe details of the platform’s mechanical and electronic components, test its performance, and demonstrate that it enables high quality recordings from an identified interneuron in the fly motion vision pathway, the H1-cell, which is believed to process optic-flow, generate during self-motion. I compare the recordings obtained with my novel platform to those gathered with much bigger setups, which are orders of magnitude heavier, and characterize the responses of the H1-cell under various stimulus conditions. My results are mostly in agreement with earlier work but include new findings on pattern size-dependent responses of the cell, which are in contrast to theoretical predictions based on previous behavioural and physiological studies. To investigate how the fly uses signals from different sensory modalities to control various optomotor behaviours and potentially vision-based collision avoidance, I have established a brain machine interface on a small mobile robot that uses the neural activity of the H1-cell to control the robot's motor system.udIn summary, I have created a platform for in vivo recordings of neural activity in flies on a small robot. This novel technology will enable further studies on multisensory integration to gain new insights into the design of fly sensorimotor pathways involved in course control and collision avoidance.
机译:蝇是精致的飞行物,长期以来被认为是感觉运动研究的模型。它们的飞行性能关键取决于视觉和机械感受反馈。然而,我们对神经系统如何整合这些感觉方式信号的理解却留下了两个尚未解决的重要问题。第一:由于大多数实验都是对受限动物进行的,当动物实际移动时,神经信号如何整合?第二:控制运动行为时,基于光流的自运动估计的神经机制是否由机械感官模式调制? ud为了解决这些问题,我设计了一个移动平台和小型化的电生理记录设备。在这里,我描述了平台机械和电子组件的详细信息,测试了平台的性能,并演示了该平台能够通过飞行运动视觉路径H1单元中的已识别中间神经元进行高质量的记录,据信该H1单元可以处理光流,在自我运动中产生。我将通过我的新型平台获得的录音与通过更大的设置收集的录音进行了比较,这些录音的数量级要重得多,并且表征了在各种刺激条件下H1细胞的响应。我的研究结果与早期工作基本吻合,但包括有关细胞模式大小依赖性反应的新发现,这与基于先前行为和生理学研究的理论预测相反。为了研究果蝇如何使用来自不同感觉模态的信号来控制各种光动力行为以及潜在的基于视觉的碰撞避免,我在小型移动机器人上建立了大脑机器接口,该机器人使用H1细胞的神经活动来控制机器人的 ud总而言之,我创建了一个平台,用于在小型机器人上实时记录苍蝇的神经活动。这项新颖的技术将使多感官整合的进一步研究能够获得对涉及航线控制和避免碰撞的飞行感觉运动路径设计的新见解。

著录项

  • 作者

    Huang Jiaqi;

  • 作者单位
  • 年度 2014
  • 总页数
  • 原文格式 PDF
  • 正文语种
  • 中图分类

相似文献

  • 外文文献
  • 中文文献
  • 专利

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号