Current Response in Ca 1.3-/- Mouse Vestibular and Cochlear Hair Cells
Marco Manca1,2, Piece Yen2, Paolo Spaiardi1
1Department of Brain and Behavioral Sciences, University of Pavia, Pavia, Italy.
Abstract:
Signal transmission by sensory auditory and vestibular hair cells relies upon Ca2+-dependent exocytosis of glutamate. The Ca2+ current in mammalian inner ear hair cells is predominantly carried through Ca 1.3 voltage-gated Ca2+ channels. Despite this, Ca 1.3 deficient mice (Ca ) are deaf but do not show any obvious vestibular phenotype. Here, we compared the Ca2+ current (I ) in auditory and vestibular hair cells from wild-type and Ca mice, to assess whether differences in the size of the residual I could explain, at least in part, the two phenotypes. Using 5 mM extracellular Ca2+ and near-body temperature conditions, we investigated the cochlear primary sensory receptors inner hair cells (IHCs) and both type I and type II hair cells of the semicircular canals. We found that the residual I in both auditory and vestibular hair cells from Ca mice was less than 20% (12-19%, depending on the hair cell type and age investigated) compared to controls, indicating a comparable expression of Ca 1.3 Ca2+ channels in both sensory organs. We also showed that, different from IHCs, type I and type II hair cells from Ca mice were able to acquire the adult-like K+ current profile in their basolateral membrane. Intercellular K+ accumulation was still present in Ca mice during I activation, suggesting that the K+-based, non-exocytotic, afferent transmission is still functional in these mice. This non-vesicular mechanism might contribute to the apparent normal vestibular functions in Ca mice.
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