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1.
Langmuir ; 28(7): 3534-41, 2012 Feb 21.
Article in English | MEDLINE | ID: mdl-22263701

ABSTRACT

Folded proteins can be translocated across biological membranes via the Tat machinery. It has been shown in vitro that these Tat substrates can interact with membranes prior to translocation. Here we report a monolayer and infrared reflection-absorption spectroscopic (IRRAS) study of the initial states of this membrane interaction, the binding to a lipid monolayer at the air/water interface serving as a model for half of a biological membrane. Using the model Tat substrate HiPIP (high potential iron-sulfur protein) from Allochromatium vinosum, we found that the precursor preferentially interacts with monolayers of negatively charged phospholipids. The signal peptide is essential for the interaction of the precursor protein with the monolayer because the mature HiPIP protein showed no interaction with the lipid monolayer. However, the individual signal peptide interacted differently with the monolayer compared to the complete precursor protein. IRRA spectroscopy indicated that the individual signal peptide forms mainly aggregated ß-sheet structures. This ß-sheet formation did not occur for the signal peptide when being part of the full length precursor. In this case it adopted an α-helical structure upon membrane insertion. The importance of the signal peptide and the mature domain for the membrane interaction is discussed in terms of current ideas of Tat substrate-membrane interactions.


Subject(s)
Escherichia coli Proteins/metabolism , Membrane Transport Proteins/metabolism , Phospholipids/metabolism , Unilamellar Liposomes/metabolism , Bacterial Proteins/metabolism , Cell Membrane Permeability , Iron-Sulfur Proteins/metabolism , Membrane Lipids/metabolism , Photosynthetic Reaction Center Complex Proteins/metabolism , Protein Precursors , Protein Sorting Signals , Protein Transport
2.
Chembiochem ; 13(2): 231-9, 2012 Jan 23.
Article in English | MEDLINE | ID: mdl-22114060

ABSTRACT

The Tat machinery enables folded proteins to be translocated across biological membranes. In vitro studies have shown that Tat substrates can interact with membranes prior to translocation. In this study we investigated the initial states of this interaction with thylakoid lipid monolayers at the air-water interface by using monolayer techniques combined with infrared reflection-absorption spectroscopy (IRRAS). We used enhanced green fluorescent protein (EGFP) as a model substrate and the signal peptide SP16 from the 16 kDa protein of the spinach oxygen-evolving complex (OEC16). We found that the signal peptide is essential for the interaction of the model substrate with lipid monolayers. IRRA spectroscopy showed an increased amount of α-helical secondary structure elements for the chimeric model substrate i16/EGFP (SP16 fused to EGFP) compared with EGFP; this can be attributed to the signal peptide.


Subject(s)
Gene Products, tat/chemistry , Gene Products, tat/metabolism , Lipids/chemistry , Protein Sorting Signals , Signal Transduction , Thylakoids/chemistry , Water/chemistry , Adsorption , Air , Green Fluorescent Proteins/chemistry , Green Fluorescent Proteins/metabolism , Models, Biological , Protein Folding , Spectrophotometry, Infrared , Thylakoids/metabolism , Unilamellar Liposomes/chemistry , Unilamellar Liposomes/metabolism
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