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Cell Mol Life Sci
2013 May 01;709:1653-61. doi: 10.1007/s00018-012-1225-9.
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Complex modulation of Ca(v)3.1 T-type calcium channel by nickel.
Nosal OV
,
Lyubanova OP
,
Naidenov VG
,
Shuba YM
.
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Nickel is considered to be a selective blocker of low-voltage-activated T-type calcium channel. Recently, the Ni(2+)-binding site with critical histidine-191 (H191) within the extracellular IS3-IS4 domain of the most Ni(2+)-sensitive Cav3.2 T-channel isoform has been identified. All calcium channels are postulated to also have intrapore-binding site limiting maximal current carried by permeating divalent cations (PDC) and determining the blockade by non-permeating ones. However, the contribution of the two sites to the overall Ni(2+) effect and its dependence on PDC remain uncertain. Here we compared Ni(2+) action on the wild-type "Ni(2+)-insensitive" Cav3.1w/t channel and Cav3.1Q172H mutant having glutamine (Q) equivalent to H191 of Cav3.2 replaced by histidine. Each channel was expressed in Xenopus oocytes, and Ni(2+) blockade of Ca(2+), Sr(2+), or Ba(2+) currents was assessed by electrophysiology. Inhibition of Cav3.1w/t by Ni(2+) conformed to two sites binding. Ni(2+) binding with high-affinity site (IC50 = 0.03-3 μM depending on PDC) produced maximal inhibition of 20-30% and was voltage-dependent, consistent with its location within the channel's pore. Most of the inhibition (70-80%) was produced by Ni(2+) binding with low-affinity site (IC50 = 240-700 μM). Q172H-mutation mainly affected low-affinity binding (IC50 = 120-160 μM). The IC50 of Ni(2+) binding with both sites in the Cav3.1w/t and Cav3.1Q172H was differentially modulated by PDC, suggesting a varying degree of competition of Ca(2+), Sr(2+), or Ba(2+) with Ni(2+). We conclude that differential Ni(2+)-sensitivity of T-channel subtypes is determined only by H-containing external binding sites, which, in the absence of Ni(2+), may be occupied by PDC, influencing in turn the channel's permeation.
Babich,
Block of CaV1.2 channels by Gd3+ reveals preopening transitions in the selectivity filter.
2007, Pubmed
Babich,
Block of CaV1.2 channels by Gd3+ reveals preopening transitions in the selectivity filter.
2007,
Pubmed
Carbone,
Ca2+ and Na+ permeability of high-threshold Ca2+ channels and their voltage-dependent block by Mg2+ ions in chick sensory neurones.
1997,
Pubmed
Cataldi,
Differences in apparent pore sizes of low and high voltage-activated Ca2+ channels.
2002,
Pubmed
,
Xenbase
Cribbs,
T-type calcium channel expression and function in the diseased heart.
2010,
Pubmed
Dirksen,
The S5-S6 linker of repeat I is a critical determinant of L-type Ca2+ channel conductance.
1997,
Pubmed
Ertel,
T-type Ca2+ channels and pharmacological blockade: potential pathophysiological relevance.
1997,
Pubmed
Feng,
Amino acid residues outside of the pore region contribute to N-type calcium channel permeation.
2001,
Pubmed
Heady,
Molecular pharmacology of T-type Ca2+ channels.
2001,
Pubmed
Huguenard,
Low-threshold calcium currents in central nervous system neurons.
1996,
Pubmed
Kang,
A molecular determinant of nickel inhibition in Cav3.2 T-type calcium channels.
2006,
Pubmed
,
Xenbase
Kang,
Structural determinants of the high affinity extracellular zinc binding site on Cav3.2 T-type calcium channels.
2010,
Pubmed
,
Xenbase
Kuo,
Ion permeation through the L-type Ca2+ channel in rat phaeochromocytoma cells: two sets of ion binding sites in the pore.
1993,
Pubmed
Kuo,
T-type calcium channels and vascular function: the new kid on the block?
2011,
Pubmed
Lee,
Nickel block of three cloned T-type calcium channels: low concentrations selectively block alpha1H.
1999,
Pubmed
,
Xenbase
Lux,
Na+ currents through low-voltage-activated Ca2+ channels of chick sensory neurones: block by external Ca2+ and Mg2+.
1990,
Pubmed
Mlinar,
Block of current through T-type calcium channels by trivalent metal cations and nickel in neural rat and human cells.
1993,
Pubmed
Nelson,
Molecular mechanisms of subtype-specific inhibition of neuronal T-type calcium channels by ascorbate.
2007,
Pubmed
Obejero-Paz,
Ni2+ block of CaV3.1 (alpha1G) T-type calcium channels.
2008,
Pubmed
Obejero-Paz,
Y3+ block demonstrates an intracellular activation gate for the alpha1G T-type Ca2+ channel.
2004,
Pubmed
Panner,
T-type calcium channels and tumor proliferation.
2006,
Pubmed
Perchenet,
Pharmacological properties of Ca(V)3.2, a low voltage-activated Ca2+ channel cloned from human heart.
2000,
Pubmed
Perez-Reyes,
Three for T: molecular analysis of the low voltage-activated calcium channel family.
1999,
Pubmed
Perez-Reyes,
Molecular physiology of low-voltage-activated t-type calcium channels.
2003,
Pubmed
Sather,
Structural basis of ion channel permeation and selectivity.
1994,
Pubmed
Shcheglovitov,
Selectivity signatures of three isoforms of recombinant T-type Ca2+ channels.
2007,
Pubmed
,
Xenbase
Shcheglovitov,
Molecular and biophysical basis of glutamate and trace metal modulation of voltage-gated Ca(v)2.3 calcium channels.
2012,
Pubmed
Talavera,
Biophysics and structure-function relationship of T-type Ca2+ channels.
2006,
Pubmed
Talavera,
Aspartate residues of the Glu-Glu-Asp-Asp (EEDD) pore locus control selectivity and permeation of the T-type Ca(2+) channel alpha(1G).
2001,
Pubmed
Todorovic,
The role of T-type calcium channels in peripheral and central pain processing.
2006,
Pubmed
Tsien,
Calcium channels: mechanisms of selectivity, permeation, and block.
1987,
Pubmed
Winegar,
Block of current through single calcium channels by Fe, Co, and Ni. Location of the transition metal binding site in the pore.
1991,
Pubmed
Yang,
Molecular determinants of Ca2+ selectivity and ion permeation in L-type Ca2+ channels.
1993,
Pubmed
,
Xenbase