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Roh, S.-E.

Publications and source records attributed to Roh, S.-E..

2 recordsLinked to original sources

Glia-mediated cerebellar pain modulation

Clinical studies have revealed that the cerebellum is activated by noxious stimuli or pathological pain, and its removal results in somatosensory dysfunction. However, the neural circuits and molecular mechanisms underlying the processing of noxious information in the cerebellum remain unknown. Using two-photon microscopy and optogenetics in mice, we found that the locus coeruleus (LC) terminals in the cerebellar cortex release noradrenaline (NA) in response to cutaneous noxious electrical stimuli. Most Bergmann glia (BG) accumulated this LC-NA noxious information by increasing intracellular calcium in an integrative manner. This global calcium activation of BG, referred to as "flare," was also elicited in response to an intraplantar capsaicin injection. Chemogenetic inactivation of LC terminals or BG in the cerebellar cortex suppressed BG flares and reduced licking, a nocifensive behavior associated with capsaicin-induced pain. BG-specific knockdown of -1 adrenergic receptors also suppressed capsaicin-induced BG flares and licking. Chemogenetic activation of BG or an intraplantar capsaicin injection reduced Purkinje cell firings, which disinhibited the output activity of the deep cerebellar nuclei. These results suggest that BG in the cerebellar cortex play an essential role in computing noxious information ascending from the LC and modulate pain-related behaviors by controlling the activity of the cerebellar neural circuits. One Sentence SummaryBergmann glia mediate noxious information processing in the cerebellum

neuroscience↗

All-or-none disconnection of pyramidal inputs onto parvalbumin-positive interneurons gates ocular dominance plasticity

Disinhibition is an obligatory initial step in the remodeling of cortical circuits by sensory experience. Our investigation on disinhibitory mechanisms in the classical model of ocular dominance plasticity uncovered an unexpected novel form of experience-dependent circuit plasticity. In layer 2/3 of mouse visual cortex monocular deprivation triggers a complete, "all-or-none", elimination of connections from pyramidal cells onto nearby parvalbumin-positive interneurons (PyrPV). This circuit plasticity is unique as it is transient, local and discrete. It lasts only one day, and it does not manifest as widespread changes in synaptic strength, rather, only about half of local connections are lost and the remaining ones are not affected in strength. Mechanistically, the deprivation-induced loss of PyrPV is contingent on a reduction of the protein neuropentraxin2 (NPTX2). Functionally, the loss of PyrPV is absolutely necessary for ODP. We surmise, therefore, that this "all-or-none" loss of local PyrPV circuitry gates experience-dependent cortical plasticity.

neuroscience↗