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Ahrlund-Richter, S.

Publications and source records attributed to Ahrlund-Richter, S..

2 recordsLinked to original sources

Prefrontal Cortex subregions provide distinct visual and behavioral feedback modulation to the Primary Visual Cortex

The mammalian Prefrontal Cortex (PFC) has been suggested to modulate sensory information processing across multiple cortical regions via long-range axonal projections. These axonal projections arise from PFC subregions with unique brain-wide connectivity and functional repertoires, which may provide the architecture for modular feedback intended to shape sensory processing. Here, we used axonal tracing, axonal and somatic 2-photon calcium imaging, and chemogenetic manipulations in mice to delineate how projections from the Anterior Cingulate Cortex (ACA) and ventrolateral Orbitofrontal Cortex (ORB) of the PFC modulate sensory processing in the primary Visual Cortex (VISp) across behavioral states. Structurally, we found that ACA and ORB had distinct patterning of projections across cortical regions and layers, monosynaptically targeting both excitatory and inhibitory neuronal cell types in these areas. ACA axons in VISp had a stronger representation of visual stimulus information than ORB axons, but both projections showed non-visual, behavior-dependent activity. ACA input to VISp enhanced the encoding of visual stimuli by VISp neurons, and modulation of visual responses scaled with arousal. On the other hand, ORB input shaped movement and arousal related modulation of VISp visual responses, but surprisingly reduced the encoding of high-contrast visual stimuli. Thus, ACA and ORB feedback have separable projection patterns and encode distinct visual and behavioral information, putatively providing the substrate for their unique effects on visual representations and behavioral modulation in VISp. Our results offer a refined model of cortical hierarchy and its impact on sensory information processing, whereby specific PFC projections contribute uniquely to VISp activity during discrete behavioral states.

neuroscience↗

Cell type-specific representation of spatial context in the rat prefrontal cortex

The ability to represent ones own position in relation to cues, goals, or threats is crucial to successful goal-directed behavior. Using transgenic rats expressing Cre recombinase in parvalbumin (PV) neurons (PV-Cre rats) we demonstrate cell type-specific encoding of spatial and movement variables in the medial prefrontal cortex (mPFC) during reward foraging. Single neurons encoded the conjunction of the animals spatial position and the location of the reward, referred to as the spatial context. The spatial context was most prominently represented by the inhibitory PV interneurons. Movement towards the reward was signified by increased local field potential (LFP) oscillations in the gamma band but this LFP signature was not related to the spatial information in the neuronal firing. The results highlight how spatial information is incorporated into cognitive operations in the mPFC. The presented PV-Cre line opens for expanded research approaches in rats.

neuroscience↗