Related Experiment Video
Updated: May 22, 2026

Introduction to Solid Supported Membrane Based Electrophysiology
Published on: May 11, 2013
Monensin A acid complexes as a model of electrogenic transport of sodium cation
Adam Huczyński1, Jan Janczak, Daniel Lowicki
1Faculty of Chemistry, A. Mickiewicz University, Grunwaldzka 6, Poznan, Poland. adhucz@amu.edu.pl
Abstract:
New Monensin A acid complexes with water molecule, sodium chloride and sodium perchlorate were obtained and studied by X-ray and (1)H, (13)C NMR and FT-IR methods as well as ab initio calculations. The crystal structure of the complexes indicates the complexation of the water molecule and Na(+) cation in the pseudo-cycle conformation of the Monensin acid molecule stabilised by intramolecular hydrogen bonds. Important for stabilisation of this structure is also the intermolecular hydrogen bonds with water molecule or the coordination bonds with Na(+) cation. It is demonstrated that the counterions forming intermolecular hydrogen bonds with OH groups influence the strength of the intramolecular hydrogen bonds, but they have no influence on the formation of pseudo-cyclic structure. Spectroscopic studies of the complexes in dichloromethane solution have shown that the pseudo-cyclic structure of the compounds is conserved. As follows from the ab initio calculations, the interactions between the Na(+) cation and the electronegative oxygen atoms of Monensin acid totally change the molecular electrostatic potential around the supramolecular Monensin acid-Na(+) cationic complex relative to that of the neutral Monensin acid molecule.
More Related Videos
07:38Functional Characterization of Na+/H+ Exchangers of Intracellular Compartments Using Proton-killing Selection to Express Them at the Plasma Membrane
Published on: March 30, 2015
05:27Inner Mitochondrial Membrane Sensitivity to Na+ Reveals Partially Segmented Functional CoQ Pools
Published on: July 20, 2022
Related Concept Videos
Primary Active Transport
Primary Active Transport
Primary Active Transport
Secondary Active Transport
Secondary Active Transport
Secondary Active Transport