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Tytuł pozycji:

Atomic proximity between S4 segment and pore domain in Shaker potassium channels.

Tytuł:
Atomic proximity between S4 segment and pore domain in Shaker potassium channels.
Autorzy:
Lainé M; Department of Physiology, David Geffen School of Medicine, University of California, Los Angeles, Los Angeles, California 90095, USA.
Lin MC
Bannister JP
Silverman WR
Mock AF
Roux B
Papazian DM
Źródło:
Neuron [Neuron] 2003 Jul 31; Vol. 39 (3), pp. 467-81.
Typ publikacji:
Journal Article; Research Support, U.S. Gov't, P.H.S.
Język:
English
Imprint Name(s):
Original Publication: [Cambridge, Mass. : Cell Press, c1988-
MeSH Terms:
Models, Molecular*
Potassium Channels/*chemistry
Potassium Channels/*physiology
Animals ; Female ; Membrane Potentials/physiology ; Mutation ; Oocytes ; Shaker Superfamily of Potassium Channels ; Xenopus
Grant Information:
R01 GM043459-15 United States GM NIGMS NIH HHS; GM43459 United States GM NIGMS NIH HHS; GM62342 United States GM NIGMS NIH HHS; R01 GM043459-16 United States GM NIGMS NIH HHS; R01 GM043459 United States GM NIGMS NIH HHS; R01 GM043459-17 United States GM NIGMS NIH HHS; R01 GM043459-14 United States GM NIGMS NIH HHS; R01 GM043459-15S1 United States GM NIGMS NIH HHS
Substance Nomenclature:
0 (Potassium Channels)
0 (Shaker Superfamily of Potassium Channels)
Entry Date(s):
Date Created: 20030805 Date Completed: 20030902 Latest Revision: 20190823
Update Code:
20240104
DOI:
10.1016/s0896-6273(03)00468-9
PMID:
12895421
Czasopismo naukowe
A recently proposed model for voltage-dependent activation in K+ channels, largely influenced by the KvAP X-ray structure, suggests that S4 is located at the periphery of the channel and moves through the lipid bilayer upon depolarization. To investigate the physical distance between S4 and the pore domain in functional channels in a native membrane environment, we engineered pairs of cysteines, one each in S4 and the pore of Shaker channels, and identified two instances of spontaneous intersubunit disulfide bond formation, between R362C/A419C and R362C/F416C. After reduction, these cysteine pairs bound Cd2+ with high affinity, verifying that the residues are in atomic proximity. Molecular modeling based on the MthK structure revealed a single position for S4 that was consistent with our results and many other experimental constraints. The model predicts that S4 is located in the groove between pore domains from different subunits, rather than at the periphery of the protein.

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