Literature DB >> 10968982

Association entropy in adsorption processes.

N Ben-Tal1, B Honig, C K Bagdassarian, A Ben-Shaul.   

Abstract

The association of two species to form a bound complex, e.g., the binding of a ligand to a protein or the adsorption of a peptide on a lipid membrane, involves an entropy loss, reflecting the conversion of free translational and rotational degrees of freedom into bound motions. Previous theoretical estimates of the standard entropy change in bimolecular binding processes, DeltaS(o), have been derived from the root-mean-square fluctuations in protein crystals, suggesting DeltaS(o) approximately -50 e.u., i.e., TDeltaS degrees approximately -25 kT = -15 kcal/mol. In this work we focus on adsorption, rather than binding processes. We first present a simple statistical-thermodynamic scheme for calculating the adsorption entropy, including its resolution into translational and rotational contributions, using the known distance-orientation dependent binding (adsorption) potential. We then utilize this scheme to calculate the free energy of interaction and entropy of pentalysine adsorption onto a lipid membrane, obtaining TDeltaS(o) approximately -1.7 kT approximately -1.3 kcal/mol. Most of this entropy change is due to the conversion of one free translation into a bound motion, the rest arising from the confinement of two rotational degrees of freedom. The smaller entropy loss in adsorption compared to binding processes arises partly because a smaller number of degrees of freedom become restricted, but mainly due to the fact that the binding potential is much "softer."

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Year:  2000        PMID: 10968982      PMCID: PMC1301014          DOI: 10.1016/S0006-3495(00)76372-7

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  29 in total

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9.  Electrostatic properties of membranes containing acidic lipids and adsorbed basic peptides: theory and experiment.

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  27 in total

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8.  Protein arcs may form stable pores in lipid membranes.

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9.  Clathrin Assembly Regulated by Adaptor Proteins in Coarse-Grained Models.

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10.  Free diffusion of steroid hormones across biomembranes: a simplex search with implicit solvent model calculations.

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