0000000001057128

AUTHOR

N. Bunjes

showing 2 related works from this author

Thiopeptide-Supported Lipid Layers on Solid Substrates

1997

The sequential layer-by-layer formation of peptide-supported bimolecular lipid membranes at solid supports is described. In the first step, thiol-derivatized peptide sequences of 5 and 7 amino acids are assembled on a Au substrate. After activation of their COOH-terminus phospholipid molecules (DMPE) are covalently attached via an amid bond to form a tethered monolayer on the Au electrode. The different preparation steps are analyzed by Fourier transform IR, X-ray reflectometry, and surface plasmon spectroscopy. The latter technique is then also used to on-line monitor at the solid/solution interface the formation of a bilayer by fusion of vesicles prepared from a fluid lipid mixture with a…

VesicleBilayerPhospholipidSynthetic membraneAnalytical chemistryInfrared spectroscopySurfaces and InterfacesCondensed Matter Physicschemistry.chemical_compoundCrystallographyMembranechemistryMonolayerElectrochemistryGeneral Materials ScienceLipid bilayer phase behaviorSpectroscopyLangmuir
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Coupling of proton translocation through ATPase incorporated into supported lipid bilayers to an electrochemical process

1997

Abstract H+-ATPase is incorporated into solid-supported lipid bilayers separated from the gold support by a peptide spacer. The translocation of protons across the lipid film to the inner side is coupled to the discharge of protons at the gold surface. The overall process is investigated by square wave voltammetry (SWV) and double potential-pulse chronoamperometry (CA). As a result, the formation of a proton gradient is monitored by SWV whereas currents measured by CA monitor the stationary state when the enzyme activity is directly coupled to the charge transfer at the electrode. These currents markedly depend on the number of ATPases present in the bilayer.

biologyChemistryATPaseBilayerBiophysicsAnalytical chemistryChronoamperometryElectrochemistryElectrodeElectrochemistrybiology.proteinBiophysicsLipid bilayer phase behaviorPhysical and Theoretical ChemistryLipid bilayerElectrochemical gradientBioelectrochemistry and Bioenergetics
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