The Ca2+-activated chloride channel anoctamin-2 mediates spike-frequency adaptation and regulates sensory transmission in thalamocortical neurons

Authors
Ha, Go EunLee, JaekwangKwak, HankyulSong, KiyeongKwon, JeaJung, Soon-YoungHong, JoohyeonChang, Gyeong-EonHwang, Eun MiShin, Hee-SupLee, C. JustinCheong, Eunji
Issue Date
2016-12-19
Publisher
NATURE PUBLISHING GROUP
Citation
NATURE COMMUNICATIONS, v.7
Abstract
Neuronal firing patterns, which are crucial for determining the nature of encoded information, have been widely studied; however, the molecular identity and cellular mechanisms of spike-frequency adaptation are still not fully understood. Here we show that spike-frequency adaptation in thalamocortical (TC) neurons is mediated by the Ca2+-activated Cl- channel (CACC) anoctamin-2 (ANO2). Knockdown of ANO2 in TC neurons results in significantly reduced spike-frequency adaptation along with increased tonic spiking. Moreover, thalamusspecific knockdown of ANO2 increases visceral pain responses. These results indicate that ANO2 contributes to reductions in spike generation in highly activated TC neurons and thereby restricts persistent information transmission.
Keywords
CA2+ CHANNELS; PYRAMIDAL NEURONS; SMALL-CONDUCTANCE; CL-CHANNELS; K+ CURRENTS; IONIC BASIS; CALCIUM; THALAMUS; POTASSIUM; MODULATION; CA2+ CHANNELS; PYRAMIDAL NEURONS; SMALL-CONDUCTANCE; CL-CHANNELS; K+ CURRENTS; IONIC BASIS; CALCIUM; THALAMUS; POTASSIUM; MODULATION
ISSN
2041-1723
URI
https://pubs.kist.re.kr/handle/201004/123309
DOI
10.1038/ncomms13791
Appears in Collections:
KIST Article > 2016
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