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Authordc.contributor.authorKukuljan Padilla, Manuel 
Authordc.contributor.authorTaylor, Alison es_CL
Authordc.contributor.authorChouinard, Hilary es_CL
Authordc.contributor.authorOlguín Aguilera, Patricio es_CL
Authordc.contributor.authorRojas, Cecilia V. es_CL
Authordc.contributor.authorRibera, Angeles B. es_CL
Admission datedc.date.accessioned2007-06-04T15:16:25Z
Available datedc.date.available2007-06-04T15:16:25Z
Publication datedc.date.issued2003-11-01
Cita de ítemdc.identifier.citationJOURNAL OF NEUROPHYSIOLOGY 90 (5): 3352-3360 NOV 1 2003en
Identifierdc.identifier.issn0022-3077
Identifierdc.identifier.urihttps://repositorio.uchile.cl/handle/2250/127258
Abstractdc.description.abstractCalcium-activated potassium channels regulate excitability of the adult nervous system. In contrast, little is known about the contribution of calcium-activated potassium channels to excitability of the embryonic nervous system when electrical membrane properties and intracellular calcium levels show dramatic changes. Embryonic Xenopus spinal neurons exhibit a well-characterized developmental program of excitability that involves several different currents including calcium-activated ones. Here, we show that a molecular determinant of calcium-activated potassium channels, xSlo, is expressed during Xenopus embryogenesis even prior to differentiation of excitable tissues. Five different xSlo variants are expressed in embryonic tissues as a consequence of alternative exon usage at a single splice site. One of these variants, xSlo59, is neural-specific, and its expression is limited to late stages of neuronal differentiation. However, expression of the four other variants occurs in both muscle and neurons at all stages of development examined. Electrophysiological analysis of recombinant xSlo channels reveals that the xSlo59 exon serves as a gain-of-function module and allows physiologically relevant levels of membrane potential and intracellular calcium to activate effectively the resultant channel. These results suggest that xSlo59 channels play a unique role in sculpting the excitable membrane properties of Xenopus spinal neurons.en
Lenguagedc.language.isoenen
Publisherdc.publisherAMER PHYSIOLOGICAL SOCen
Keywordsdc.subjectACTIVATED POTASSIUM CHANNELSen
Títulodc.titleSelective regulation of xSlo splice variants during Xenopus embryogenesisen
Document typedc.typeArtículo de revista


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