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Quenching of red cell tryptophan fluorescence by mercurial compounds
Abstract:
Intrinsic tryptophan fluorescence in red cell ghost membranes labeled with N-ethylmaleimide (N-EM) is quenched in a dose-dependent manner by the organic mercurial p-chloromercuribenzene sulfonate (p-CMBS). Fluorescence lifetime analysis shows that quenching occurs by a static mechanism. Binding of p-CMBS occurs by a rapid (less than 5 s) biomolecular association (dissociation constant K1 = 1.8 mM) followed by a slower unimolecular transition with forward rate constant k2 = 0.015 s-1 and reverse rate constant k-2 = 0.0054 s-1. Analysis of the temperature dependence of k2 gives delta H = 6.5 kcal/mol and delta S = -21 eu. The mercurial compounds p-chloromercuribenzoic acid, p-aminophenylmercuric acetate, and mercuric chloride quench red cell tryptophan fluorescence by the same mechanism as p-CMBS does; the measured k2 value was the same for each compound, whereas K1 varied. p-CMBS also quenches the tryptophan fluorescence in vesicles reconstituted with purified band 3, the red cell anion exchange protein, in a manner similar to that in ghost membranes. These experiments define a mercurial binding site on band 3 in ghosts treated with N-EM and establish the binding mechanism to this site. The characteristics of this p-CMBS binding site on band 3 differ significantly from those of the p-CMBS binding site involved in red cell water and urea transport inhibition.
Insights
Intrinsic tryptophan fluorescence in red blood cell membranes is quenched by mercurial compounds. This study characterizes the binding mechanism and site on band 3, distinct from transport-related sites.
Area of Science:
- Biochemistry
- Membrane Biology
- Spectroscopy
Background:
- Red blood cell membranes contain intrinsic tryptophan fluorescence.
- Organic mercurial compounds can interact with membrane proteins.
- N-ethylmaleimide (N-EM) labels specific sites on membrane proteins.
Purpose of the Study:
- To investigate the mechanism of mercurial compound binding to red cell ghost membranes.
- To characterize the mercurial binding site on band 3 protein.
- To compare this binding site with those involved in transport inhibition.
Main Methods:
- Tryptophan fluorescence quenching assays.
- Fluorescence lifetime analysis.
- Kinetic analysis of binding.
- Reconstitution of purified band 3 protein into vesicles.
Main Results:
- p-chloromercuribenzene sulfonate (p-CMBS) quenches tryptophan fluorescence via a static mechanism.
- Binding involves rapid association followed by a slower unimolecular transition.
- Purified band 3 protein exhibits similar quenching behavior.
- The binding site on band 3 differs from the transport inhibition site.
Conclusions:
- A specific mercurial binding site on N-EM-treated band 3 was identified.
- The binding mechanism to this site was elucidated.
- This site is distinct from the p-CMBS site involved in transport inhibition.