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Ortner, N. J.

Publications and source records attributed to Ortner, N. J..

2 recordsLinked to original sources

Calcium current modulation by the γ1 subunit depends on alternative splicing of CaV1.1

The skeletal muscle voltage-gated calcium channel (CaV1.1) primarily functions as voltage sensor for excitation-contraction coupling. Conversely, its ion-conducting function is modulated by multiple mechanisms within the pore-forming 1S subunit and the auxiliary 2{delta}-1 and {gamma}1 subunits. Particularly, developmentally regulated alternative splicing of exon 29, which inserts 19 amino acids in the extracellular IVS3-S4 loop of CaV1.1a, greatly reduces the current density and shifts the voltage-dependence of activation to positive potentials outside the physiological range. We generated a new HEK293-cell line stably expressing 2{delta}-1, {beta}3, and STAC3. When the adult (CaV1.1a) and the embryonic (CaV1.1e) splice variants were expressed in these cells, the difference in the voltage-dependence of activation observed in muscle cells was reproduced, but not the reduced current density of CaV1.1a. Only when we further co-expressed the {gamma}1 subunit, the current density of CaV1.1a, but not of CaV1.1e, was reduced by >50 %. In addition, {gamma}1 caused a shift of the voltage-dependence of inactivation to negative voltages in both variants. Thus, the current-reducing effect of {gamma}1, but not its effect on inactivation, is specifically dependent on the inclusion of exon 29 in CaV1.1a. Molecular structure modeling revealed several direct ionic interactions between oppositely charged residues in the IVS3-S4 loop and the {gamma}1 subunit. However, substitution of these residues by alanine, individually or in combination, did not abolish the {gamma}1-dependent reduction of current density, suggesting that structural rearrangements of CaV1.1a induced by inclusion of exon 29 allosterically empower the {gamma}1 subunit to exert its inhibitory action on CaV1.1 calcium currents. SummaryEl Ghaleb et al. analyzed the effects of the {gamma}1 subunit on current properties and expression of the adult (CaV1.1a) and embryonic (CaV1.1e) calcium channel splice variants, demonstrating that {gamma}1 reduces the current amplitude in a splicing-dependent manner.

physiology↗

Alternative splicing of auxiliary β2-subunits stabilizes Cav2.3 Ca2+ channel activity in continuously active midbrain dopamine neurons

In dopaminergic (DA) substantia nigra (SN) neurons Cav2.3 R-type Ca2+-currents contribute to somatodendritic Ca2+-oscillations. These may contribute to the selective degeneration of these neurons in Parkinsons disease (PD) since Cav2.3-knockout is neuroprotective in a PD mouse model. However, the typical Cav2.3 gating would predict complete channel inactivation during SN DA neuronal firing. Here we show that in tsA-201-cells the membrane-anchored {beta}2-splice variants {beta}2a and {beta}2e stabilize Cav2.3 gating properties allowing sustained Cav2.3 availability during simulated pacemaking and enhanced Ca2+-currents during bursts. We confirmed the expression of {beta}2a and {beta}2e-subunits in the SN and identified SN DA neurons. Patch-clamp recordings of SN DA neurons in mouse brain slices revealed R-type Ca2+-currents similar to {beta}2a- or {beta}2e-stabilized Cav2.3-currents and recordings in cultured murine DA neurons confirmed their activity during pacemaking. Taken together, our data support an important (patho)physiological role of {beta}-subunit alternative splicing for Cav2.3 Ca2+-signaling in highly vulnerable SN DA neurons.

neuroscience↗