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  4. Effect of Na+ flow on Cd2+ block of tetrodotoxin-resistant Na+ channels
 
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Effect of Na+ flow on Cd2+ block of tetrodotoxin-resistant Na+ channels

Journal
Journal of General Physiology
Journal Volume
120
Journal Issue
2
Pages
159-172
Date Issued
2002
Author(s)
Chung-Chin Kuo  
Lin T.-J.
Hsieh C.-P.
DOI
10.1085/jgp.20018536
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-0036023397&doi=10.1085%2fjgp.20018536&partnerID=40&md5=eec9e1984b9b8e7119f4564b278d9df5
https://scholars.lib.ntu.edu.tw/handle/123456789/507099
Abstract
Tetrodotoxin-resistant (TTX-R) Na(+) channels are 1,000-fold less sensitive to TTX than TTX-sensitive (TTX-S) Na(+) channels. On the other hand, TTX-R channels are much more susceptible to external Cd(2+) block than TTX-S channels. A cysteine (or serine) residue situated just next to the aspartate residue of the presumable selectivity filter "DEKA" ring of the TTX-R channel has been identified as the key ligand determining the binding affinity of both TTX and Cd(2+). In this study we demonstrate that the binding affinity of Cd(2+) to the TTX-R channels in neurons from dorsal root ganglia has little intrinsic voltage dependence, but is significantly influenced by the direction of Na(+) current flow. In the presence of inward Na(+) current, the apparent dissociation constant of Cd(2+) ( approximately 200 microM) is approximately 9 times smaller than that in the presence of outward Na(+) current. The Na(+) flow-dependent binding affinity change of Cd(2+) block is true no matter whether the direction of Na(+) current is secured by asymmetrical chemical gradient (e.g., 150 mM Na(+) vs. 150 mM Cs(+) on different sides of the membrane, 0 mV) or by asymmetrical electrical gradient (e.g., 150 mM Na(+) on both sides of the membrane, -20 mV vs. 20 mV). These findings suggest that Cd(2+) is a pore blocker of TTX-R channels with its binding site located in a multiion, single-file region near the external pore mouth. Quantitative analysis of the flow dependence with the flux-coupling equation reveals that at least two Na(+) ions coexist with the blocking Cd(2+) ion in this pore region in the presence of 150 mM ambient Na(+). Thus, the selectivity filter of the TTX-R Na(+) channels in dorsal root ganglion neurons might be located in or close to a multiion single-file pore segment connected externally to a wide vestibule, a molecular feature probably shared by other voltage-gated cationic channels, such as some Ca(2+) and K(+) channels.
SDGs

[SDGs]SDG6

Type
journal article

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