DocumentCode :
1245795
Title :
Gramicidin channels
Author :
Andersen, Olaf S. ; Koeppe, Roger E., II ; Roux, Benoît
Author_Institution :
Weill Med. Coll., Cornell Univ., New York, NY, USA
Volume :
4
Issue :
1
fYear :
2005
fDate :
3/1/2005 12:00:00 AM
Firstpage :
10
Lastpage :
20
Abstract :
Gramicidin channels are mini-proteins composed of two tryptophan-rich subunits. The conducting channels are formed by the transbilayer dimerization of nonconducting subunits, which are tied to the bilayer/solution interface through hydrogen bonds between the indole NH groups and the phospholipid backbone and water. The channel structure is known at atomic resolution and the channel´s permeability characteristics are particularly well defined: gramicidin channels are selective for monovalent cations, with no measurable permeability to anions or polyvalent cations; ions and water move through a pore whose wall is formed by the peptide backbone; and the single-channel conductance and cation selectivity vary when the amino acid sequence is varied, even though the permeating ions make no contact with the amino acid side chains. Given the amount of experimental information that is available-for both the wild-type channels and for channels formed by amino acid-substituted gramicidin analogues-gramicidin channels provide important insights into the microphysics of ion permeation through bilayer-spanning channels. For the same reason, gramicidin channels constitute the system of choice for evaluating computational strategies for obtaining mechanistic insights into ion permeation through the complex channels formed by integral membrane proteins.
Keywords :
association; biochemistry; bioelectric phenomena; biomembrane transport; hydrogen bonds; lipid bilayers; molecular biophysics; permeability; proteins; amino acid sequence; amino acid side chains; bilayer/solution interface; cation selectivity; channel permeability; channel structure; conducting channels; gramicidin channels; hydrogen bonds; indole NH groups; integral membrane proteins; ion permeation; mini-proteins; peptide backbone; phospholipid backbone; single-channel conductance; transbilayer dimerization; tryptophan-rich subunits; Kinetics of ion permeation; molecular dynamics; single-channel electrophysiology; structure–function studies; Animals; Cell Membrane Permeability; Gramicidin; Humans; Ion Channel Gating; Ion Channels; Lipid Bilayers; Membrane Potentials; Models, Biological; Models, Chemical; Models, Molecular; Protein Conformation; Structure-Activity Relationship;
fLanguage :
English
Journal_Title :
NanoBioscience, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-1241
Type :
jour
DOI :
10.1109/TNB.2004.842470
Filename :
1402406
Link To Document :
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