Abstract
At sufficiently large conductances, the voltage-dependent conductance induced in thin lipid membranes by monazomycin undergoes inactivation. This is a consequence of depletion of monazomycin from the membrane solution interface, as monazomycin crosses the membrane to the opposite (trans) side from which it was added. The flux of monazomycin is directly proportional to the monazomycin-induced conductance; at a given conductance it is independent of monazomycin concentration. We conclude that when monazomycin channels break up, some or all of the molecules making up a channel are deposited on the trans side. We present a model for the monazomycin channel: approximately five molecules, each spanning the membrane with its NH3+ on the trans side and an uncharged hydrophilic (probably sugar) group anchored to the cis side, form an aqueous channel lined by--OH groups. The voltage dependence arises from the flipping by the electrical field of molecules lying parallel to the cis surface into the "spanned state;" the subsequent aggregation of these molecules into channels is, to a first approximation, voltage independent. The channel breakup that deposits monomers on the trans side involves the collapsing of the channel in such a way that the uncharged hydrophilic groups remain in contact with the water in the channel as they close the channel from behind. We also discuss the possibility that inactivation of sodium channels in nerve involves the movement from one side of the membrane to the other of the molecules (or molecule) forming the channel.
MeSH Terms
Anti-Bacterial Agents/metabolism
Electric Conductivity
Macrolides
Membranes, Artificial
Models, Biological
Permeability
Polyenes/metabolism
Chemicals
Anti-Bacterial Agents
Macrolides
Membranes, Artificial
Polyenes
monazomycin
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Heyer R J
Muller R U
Finkelstein A
References (13)
13 references, click to expand
-
THE SQUID GIANT AXON. MATHEMATICAL MODELS.
Biophys J. 1963 Sep;3:399-431
PMID: 14062458
-
A quantitative description of membrane current and its application to conduction and excitation in nerve.
J Physiol. 1952 Aug;117(4):500-44
PMID: 12991237
-
Kinetics and steady-state properties of the charged system controlling sodium conductance in the squid giant axon.
J Physiol. 1974 Jun;239(2):393-434
PMID: 4414038
-
Aqueous pores created in thin lipid membranes by the polyene antibiotics nystatin and amphotericin B.
Membranes. 1973;2:377-408
PMID: 4585230
-
Statistical analysis of alamethicin channels in black lipid membranes.
J Membr Biol. 1974;19(3):277-303
PMID: 4475108
-
A molecular model of membrane excitability.
J Supramol Struct. 1974;2(5-6):538-57
PMID: 4461846
-
Charge movement associated with the opening and closing of the activation gates of the Na channels.
J Gen Physiol. 1974 May;63(5):533-52
PMID: 4824995
-
The effect of surface charge on the voltage-dependent conductance induced in thin lipid membranes by monazomycin.
J Gen Physiol. 1972 Sep;60(3):285-306
PMID: 5055790
-
Voltage-dependent conductance induced in thin lipid membranes by monazomycin.
J Gen Physiol. 1972 Sep;60(3):263-84
PMID: 5055789
-
Mechanism for channel gating in excitable bilayers.
Ann N Y Acad Sci. 1975 Dec 30;264:304-13
PMID: 1062959
-
Inactivation of monazomycin-induced voltage-dependent conductance in thin lipid membranes. I. Inactivation produced by long chain quaternary ammonium ions.
J Gen Physiol. 1976 Jun;67(6):703-29
PMID: 932672
-
Pores formed in lipid bilayer membranes by nystatin, Differences in its one-sided and two-sided action.
J Gen Physiol. 1975 Apr;65(4):515-26
PMID: 1151324
-
Quantitative description of the sodium conductance of the giant axon of Myxicola in terms of a generalized second-order variable.
Biophys J. 1975 Feb;15(2 Pt 1):119-36
PMID: 1111631