| Literature DB >> 29952750 |
Célian Bimbard1, Charlie Demene2, Constantin Girard1, Susanne Radtke-Schuller1, Shihab Shamma1,3, Mickael Tanter2, Yves Boubenec1.
Abstract
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 within small structures by precisely mapping and differentiating sensory responses, and between 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 mm3 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.Entities:
Keywords: auditory cortex; ferret; frontal cortex; functional ultrasound; imaging; neuroscience; tonotopy
Mesh:
Year: 2018 PMID: 29952750 PMCID: PMC6039176 DOI: 10.7554/eLife.35028
Source DB: PubMed Journal: Elife ISSN: 2050-084X Impact factor: 8.140