PubMed Health⌕ Search

PubMed · 7104450

Ion repulsion within membranes.

Abstract

The adsorption of hydrophobic ions such as tetraphenylborate to thin lipid membranes is known to saturate at approximately 0.1 ion/(nm)2. This saturation can be quantitatively explained by electrostatic repulsion between the ions if they are treated as discrete, mobile particles that adsorb within the lipid at least partially removed from the aqueous phases. The electrochemical potential of the ions as a function of their surface density can be expressed as a virial expansion, which in principle exactly describes the equilibrium properties of the physical model. The first few terms of the virial expansion are calculated and an approximation is considered for higher-order terms. The model has only two adjustable parameters, the depth of the adsorption sites into the lipid and the adsorption constant in the absence of repulsion. The mobile, discrete charge model can give much better fits to the equilibrium data for tetraphenylborate adsorbed at up to 0.1 ion/(nm)2 to membranes and monolayers. (Andersen et al., 1978) than those obtainable from either the smeared charge or hexagonal lattice models.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

R Y Tsien, S B Hladky. 1982. Ion repulsion within membranes.. https://doi.org/10.1016/s0006-3495(82)84489-5

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Metal Ion availability in mitochondria.

Transition metal ions are required for many aspects of mitochondrial physiology. Copper, iron, manganese and zinc are cofactors in metalloenzymes and metalloproteins within the organelle. Little is known how cells maintain optimal pools of these metal ions for mitochondrial function. This review documents the available literature on mitochondrial metal ion pools and protein metallation reactions. Upon perturbation in metal pools, mis-metallation reactions do occur. Thus, regulation of metal ion accessibility and bioavailability must exist.

Ions↗

Water-soluble ionic liquids as novel stabilizers in suspension polymerization reactions: engineering polymer beads.

Aqueous solutions of ionic liquids have been used as novel and environmentally friendly reaction media to synthesize and "control" the size of different cross-linked polymer beads by suspension polymerization reactions. It was found that the investigated ionic liquids can act as novel stabilizing agents of the suspensions as a result of their surface-active properties. The results have demonstrated that the average size of polymer beads can be varied from the macro- to the nanoscale and their surface area can also be "adjusted" by this synthetic approach. Furthermore, the use of a combination of ionic liquids and water for the synthesis of polymers, the simple isolation of the products formed in this polymerization procedure, as well as the recycling of the continuous medium for further reactions open up possibilities for the development of "new and green" polymerization processes.

Ions↗