Conformational dynamics of the carboxylic ionophore lasalocid A underlying cation complexation-decomplexation and membrane transport
- 1 October 1982
- journal article
- research article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 21 (22) , 5613-5620
- https://doi.org/10.1021/bi00265a035
Abstract
The conformational dynamics of lasalocid A were studied in a series of solvents of graded polarity by means of circular dichroism (CD) and computer-generated molecular models. In high polarity solvents, the uncomplexed anionic ionophore assumes an acyclic conformation minimizing intrinsic molecular strain energy. In this stage, the dipoles of the liganding oxygens in the carbon backbone and the terminal carboxylate are stabilized by a high degree of solvent association. As the solvent polarity decreases, the dynamic conformational equilibrium progressively shifts toward a cyclic conformation which predominates at low polarity. Cyclization proceeds by rotation about 3 C.sbd.C hinge bonds. The resulting twist of the backbone introduces torsional strain which is offset at low polarity by electrostatic stabilization gained through intramolecular H-bonding. Formation of a cation inclusion complex also stabilizes the cyclic conformer, even in relatively polar solvents. These observations suggest a scenario for carboxylic ionophore mediated transmembrane monovalent cation transport at the molecular level. The cation encounters an acyclic ionophore at the membrane interface where it ion pairs to the terminal carboxylate moiety, initiating formation of a lipophilic, cyclic cation inclusion complex. The complex, no longer constrained to the polar interface, diffuses across the membrane interior to the opposite face. There it reequilibrates with the polar environment, the ionophore reassuming the low energy, acyclic conformation and concomitantly releasing the enclosed cation. The free, acyclic ionophore is now confined to the opposite polar interface where it awaits the capture of a new cation to complete its catalytic transport cycle.This publication has 12 references indexed in Scilit:
- Solvent-dependent conformational distributions of some dipeptidesJournal of the American Chemical Society, 1980
- Induced fit as a determinative of ionophore selectivityBiochemical and Biophysical Research Communications, 1979
- Structure of a hydrated sodium-lasalocid A (X-537A) dimer: an intermediate in complex formationJournal of the American Chemical Society, 1978
- Biogenic amine-ionophore interactions: Structure and dynamics of lasalocid (X537A) complexes with phenethylamines and catecholamines in nonpolar solutionProceedings of the National Academy of Sciences, 1977
- Monomeric Forms of the Acid Ionophore Lasalocid A (X-537A) from Polar SolventsScience, 1977
- Free acid, anion, alkali, and alkaline earth complexes of lasalocid a (X537A) in methanol: structural and kinetic studies at the monomer level.Proceedings of the National Academy of Sciences, 1976
- Solution conformation of lasalocid and lasalocid-Na+ (X-537A)Bioorganic Chemistry, 1976
- Structural and kinetic studies of lasalocid A (X537A) and its silver, sodium, and barium salts in nonpolar solvents.Proceedings of the National Academy of Sciences, 1976
- Ionophore A23187: the effect of proton concentration on complex formation with divalent and monovalent cations and the demonstration of potassium(1+) ion transport in mitochondria mediated by A23187Biochemistry, 1976
- Reciprocal relations and proximity of bases in flavine adenine dinucleotideBiochemistry, 1968