Audition Team, Laboratoire des Systèmes Perceptifs CNRS UMR 8248, École Normale Supérieure, PSL Research University, Paris, France.
Institut Langevin, ESPCI ParisTech, INSERM U979, CNRS UMR 7587, PSL Research University, Paris, France.
Elife. 2018 Jun 28;7:e35028. doi: 10.7554/eLife.35028.
A major challenge in neuroscience is to longitudinally monitor whole brain activity across multiple spatial scales in the same animal. Functional UltraSound (fUS) is an emerging technology that offers images of cerebral blood volume over large brain portions. Here we show for the first time its capability to resolve the functional organization of sensory systems at multiple scales in awake animals, both small structures by precisely mapping and differentiating sensory responses, and structures by elucidating the connectivity scheme of top-down projections. We demonstrate that fUS provides stable (over days), yet rapid, highly-resolved 3D tonotopic maps in the auditory pathway of awake ferrets, thus revealing its unprecedented functional resolution (100/300µm). This was performed in four different brain regions, including very small (1-2 mm size), deeply situated subcortical (8 mm deep) and previously undescribed structures in the ferret. Furthermore, we used fUS to map long-distance projections from frontal cortex, a key source of sensory response modulation, to auditory cortex.
神经科学的一个主要挑战是在同一只动物中跨多个空间尺度对整个大脑活动进行纵向监测。功能超声(fUS)是一种新兴技术,可提供大脑血液体积的图像,覆盖大脑的大部分区域。在这里,我们首次展示了它在清醒动物中以多个尺度解析感觉系统功能组织的能力,既可以通过精确绘制和区分感觉反应来解析小结构,也可以通过阐明自上而下投射的连接方案来解析大结构。我们证明 fUS 可在清醒雪貂的听觉通路上提供稳定(持续数天)但快速、高分辨率的三维音调图,从而揭示其前所未有的功能分辨率(100/300µm)。这是在四个不同的脑区中完成的,包括非常小的(1-2 毫米大小)、位于深部的皮质下(8 毫米深)和雪貂以前未描述的结构。此外,我们使用 fUS 来绘制来自额叶皮层的长距离投射,额叶皮层是感觉反应调制的关键来源,投射到听觉皮层。