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Kjelsberg, K.

Publications and source records attributed to Kjelsberg, K..

2 recordsLinked to original sources

Enrichment of specific GABAergic neuronal types in the mouse perirhinal cortex

GABAergic neurons represent 10-15% of the neuronal population of the cortex but exert a powerful control over information flow in cortical circuits. GABAergic neurons show an extraordinary diversity in their morphology, physiology, molecular markers and connectivity. This diversity allows GABAergic neurons to participate in a wide variety of microcircuit motifs. The diversity of GABAergic neurons has been shown to be conserved across cortical regions. The GABAergic population can be broadly divided in three major classes parvalbumin, somatostatin and 5HT3aR groups. The largest GABAergic class in the cortex is represented by the parvalbumin-expressing fast-spiking neurons, which provide powerful somatic inhibition to their postsynaptic targets. Recently, the density of parvalbumin-expressing neurons has been shown to be lower in associative areas of the mouse cortex, including the perirhinal cortex, as compared to sensory and motor areas. In the present study we investigated whether this reduction in parvalbumin-expressing neurons leads to a decreased GABAergic population, or to an enrichment of other GABAergic cell-types. We found that the GABAergic population of the perirhinal cortex is comparable to that of a primary sensory area, and it is enriched of neurons belonging to the 5HT3aR group. We also demonstrate that, despite the low density of parvalbumin-expressing neurons, the perirhinal cortex contains a comparable population of fast-spiking neurons, most of which do not express parvalbumin. Our results demonstrate a yet uncharacterized diversity within the fast-spiking population across cortical regions.

neuroscience↗

Not all that is gold glitters: PV-IRES-Cre mouse line shows low efficiency of labeling of parvalbumin interneurons in the perirhinal cortex

The wide diversity of cortical inhibitory neuron types populating the cortex allows the assembly of diverse microcircuits and endows these circuits with different computational properties. Thus, characterizing neuronal diversity is fundamental to describe the building blocks of cortical microcircuits and probe their function. To this purpose, the mouse has emerged as a powerful tool to genetically label and manipulate specific inhibitory cell-types in the mammalian brain. Among these cell-types, the parvalbumin-expressing interneuron type (PV-INs) is perhaps the most characterized. Several mouse lines have been generated to target PV-INs. Among these mouse lines, the PV-IRES-Cre lines is the most widely used and demonstrated a high specificity and efficiency in targeting PV-INs in different cortical areas. However, a characterization of the performance across cortical regions is still missing. Here we show that the PV-IRES-Cre mouse line labels only a fraction of parvalbumin immunoreactive neurons in perirhinal cortex and other association areas. Our results point to a yet uncharacterized diversity within the PV-INs and emphasize the need to characterize these tools in specific cortical areas.

neuroscience↗