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Institute
A solid-supported membrane (SSM) is an alkanethiol/lipid hybrid membrane with comparable lipid mobility, conductivity, and capacitance than a black lipid membrane (BLM). However, mechanical perturbations, which usually destroy a BLM, do not influence the life-time of a SSM, which is mechanically so stable that solutions may be rapidly exchanged at its surface. This key property has been utilized in this thesis to characterize electrophysiologically two bacterial secondary active transporters (MelB and LacY) as well as to investigate the specific interactions between ions and lipid membranes. These three different projects are summarized below: (1) The properties of lipid membranes, which represent the most important biological interface between intracellular and extracellular compartments, are essentially modulated by the ionic composition of the surrounding aqueous medium. To investigate specific interactions between ions and lipid membranes, solutions of different ionic composition were exchanged at the surface of a SSM through a flow system. This solution exchange resulted in charge translocations that were interpreted in terms of binding of the ions to the lipid headgroups at the SSM surface. We found that chaotropic anions and kosmotropic cations are attracted to the membrane independent of the membrane composition. In particular, the same behaviour was found for lipid headgroups bearing no charge like monoolein. This general trend is modulated by the electrostatic interaction of the ions with the lipid headgroup charge. Our experimental results are in agreement with recent molecular dynamic simulations of PC membranes. (2) Rapid solution exchange on a solid-supported membrane (SSM) is investigated using fluidic structures and a solid-supported membrane in a wall jet geometry. The flow was analyzed with a new technique based on specific ion interactions with the surface combined with an electrical measurement. The critical parameters affecting the time course of the solution exchange and the transfer function describing the time resolution of the SSM system were determined. The experimental data indicate that the solution transport follows a plug flow geometry while the rise of the surface concentration can be approximated by Hagen Poiseuille flow with ideal mixing at the surface of the SSM. Using an improved cuvette design a solution exchange as fast as 2 ms was achieved at the surface of a solid supported membrane. As an application of the technique the rate constant of a fast electrogenic reaction in the melibiose permease MelB, a bacterial (Escherichia coli) sugar transporter, is determined. For comparison, the kinetics of a conformational transition of the same transporter was measured using stopped-flow tryptophan fluorescence spectroscopy. The relaxation time constant obtained for the charge displacement agrees with that determined in the stopped-flow experiments. This supports the previous proposition that upon sugar binding MelB undergoes an electrogenic conformational transition with a rate constant of k ~ 250 s-1. (3) Electrogenic events due to activity of wild-type lactose permease from Escherichia coli (LacY) were investigated with proteoliposomes containing purified LacY adsorbed on a solid-supported membrane electrode. Downhill sugar/H+ symport into the proteoliposomes generates transient currents. Studies at different lipid to protein ratios and at different pH values, as well as inactivation by N-ethylmaleimide, show that the currents are due specifically to the activity of LacY. From analysis of the currents under different conditions and comparison with biochemical data, it is apparent that the predominant electrogenic event in downhill sugar/H+ symport is H+ release. In contrast, LacY mutants E325A and C154G, which bind ligand normally but are severely defective with respect to lactose/H+ symport, exhibit a minor electrogenic event upon addition of LacY-specific substrates, representing only 6% of the total charge displacement of the wild-type. This activity is due either to substrate binding per se or to a conformational transition following substrate binding. We propose that turnover of LacY involves at least two electrogenic reactions: (i) a minor reaction that occurs upon sugar binding and is due to a conformational transition in LacY; and (ii) a major reaction due to cytoplasmic release of H+ during downhill sugar/H+ symport, which is the limiting step for this mode of transport.