Literature DB >> 18663132

Ni2+ block of CaV3.1 (alpha1G) T-type calcium channels.

Carlos A Obejero-Paz1, I Patrick Gray, Stephen W Jones.   

Abstract

Ni(2+) inhibits current through calcium channels, in part by blocking the pore, but Ni(2+) may also allosterically affect channel activity via sites outside the permeation pathway. As a test for pore blockade, we examined whether the effect of Ni(2+) on Ca(V)3.1 is affected by permeant ions. We find two components to block by Ni(2+), a rapid block with little voltage dependence, and a slow block most visible as accelerated tail currents. Rapid block is weaker for outward vs. inward currents (apparent K(d) = 3 vs. 1 mM Ni(2+), with 2 mM Ca(2+) or Ba(2+)) and is reduced at high permeant ion concentration (110 vs. 2 mM Ca(2+) or Ba(2+)). Slow block depends both on the concentration and on the identity of the permeant ion (Ca(2+) vs. Ba(2+) vs. Na(+)). Slow block is 2-3x faster in Ba(2+) than in Ca(2+) (2 or 110 mM), and is approximately 10x faster with 2 vs. 110 mM Ca(2+) or Ba(2+). Slow block is orders of magnitude slower than the diffusion limit, except in the nominal absence of divalent cations ( approximately 3 muM Ca(2+)). We conclude that both fast and slow block of Ca(V)3.1 by Ni(2+) are most consistent with occlusion of the pore. The exit rate of Ni(2+) for slow block is reduced at high Ni(2+) concentrations, suggesting that the site responsible for fast block can "lock in" slow block by Ni(2+), at a site located deeper within the pore. In contrast to the complex pore block observed for Ca(V)3.1, inhibition of Ca(V)3.2 by Ni(2+) was essentially independent of voltage, and was similar in 2 mM Ca(2+) vs. Ba(2+), consistent with inhibition by a different mechanism, at a site outside the pore.

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Year:  2008        PMID: 18663132      PMCID: PMC2483332          DOI: 10.1085/jgp.200809988

Source DB:  PubMed          Journal:  J Gen Physiol        ISSN: 0022-1295            Impact factor:   4.086


  26 in total

1.  Ni2+ slows the activation kinetics of high-voltage-activated Ca2+ currents in cortical neurons: evidence for a mechanism of action independent of channel-pore block.

Authors:  J Magistretti; S Brevi; M de Curtis
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2.  Mg(2+) block unmasks Ca(2+)/Ba(2+) selectivity of alpha1G T-type calcium channels.

Authors:  J R Serrano; S R Dashti; E Perez-Reyes; S W Jones
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3.  A molecular determinant of nickel inhibition in Cav3.2 T-type calcium channels.

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5.  Nickel block of three cloned T-type calcium channels: low concentrations selectively block alpha1H.

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Journal:  Biophys J       Date:  1999-12       Impact factor: 4.033

6.  State-dependent inactivation of the alpha1G T-type calcium channel.

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8.  Permeation and gating in CaV3.1 (alpha1G) T-type calcium channels effects of Ca2+, Ba2+, Mg2+, and Na+.

Authors:  Nilofar Khan; I Patrick Gray; Carlos A Obejero-Paz; Stephen W Jones
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  14 in total

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Authors:  Kyle V Lopin; Carlos A Obejero-Paz; Stephen W Jones
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6.  Fe²⁺ block and permeation of CaV3.1 (α1G) T-type calcium channels: candidate mechanism for non-transferrin-mediated Fe²⁺ influx.

Authors:  Kyle V Lopin; I Patrick Gray; Carlos A Obejero-Paz; Frank Thévenod; Stephen W Jones
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7.  Cation selectivity by the CorA Mg2+ channel requires a fully hydrated cation.

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8.  Complex modulation of Ca(v)3.1 T-type calcium channel by nickel.

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9.  Permeation and gating in CaV3.1 (alpha1G) T-type calcium channels effects of Ca2+, Ba2+, Mg2+, and Na+.

Authors:  Nilofar Khan; I Patrick Gray; Carlos A Obejero-Paz; Stephen W Jones
Journal:  J Gen Physiol       Date:  2008-08       Impact factor: 4.086

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