4.6 Article

Cell-type-specific tuning of Cav1.3 Ca2+-channels by a C-terminal automodulatory domain

期刊

出版社

FRONTIERS MEDIA SA
DOI: 10.3389/fncel.2015.00309

关键词

calcium channels; channel gating; hearing; hair cell; alternative splicing; chromaffin cells

资金

  1. Austrian Science Fund [F44020, F44100, W1101]
  2. University of Innsbruck
  3. Medical University of Innsbruck
  4. German Research Foundation [SFB 894, A8]
  5. Saarland University
  6. Italian MIUR (PRIN) [2010JFYFY2]
  7. University of Torino
  8. NIH [DC009433, NS084190]
  9. Carver Research Program of Excellence Award
  10. Austrian Science Fund (FWF) [W1206, P26881] Funding Source: Austrian Science Fund (FWF)

向作者/读者索取更多资源

Cav1.3 L-type Ca2+-channel function is regulated by a C-terminal automodulatory domain (CTM). It affects channel binding of calmodulin and thereby tunes channel activity by interfering with Ca2+- and voltage-dependent gating. Alternative splicing generates short C-terminal channel variants lacking the CTM resulting in enhanced Ca2+-dependent inactivation and stronger voltage-sensitivity upon heterologous expression. However, the role of this modulatory domain for channel function in its native environment is unkown. To determine its functional significance in vivo, we interrupted the CTM with a hemagglutinin tag in mutant mice (Cav1.3DCRD(HA/HA).) Using these mice we provide biochemical evidence for the existence of long (CTM-containing) and short (CTM-deficient) Cav1.3 alpha 1-subunits in brain. The long (HA-labeled) Cav1.3 isoform was present in all ribbon synapses of cochlear inner hair cells. CTM-elimination impaired Ca2+-dependent inactivation of Ca2+-currents in hair cells but increased it in chromaffin cells, resulting in hyperpolarized resting potentials and reduced pacemaking. CTM disruption did not affect hearing thresholds. We show that the modulatory function of the CTM is affected by its native environment in different cells and thus occurs in a cell-type specific manner in vivo. It stabilizes gating properties of Cav1.3 channels required for normal electrical excitability.

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