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Tip-Enhanced Infrared Difference-Nanospectroscopy of the Proton Pump Activity of Bacteriorhodopsin in Single Purple Membrane Patches

[Image: see text] Photosensitive proteins embedded in the cell membrane (about 5 nm thickness) act as photoactivated proton pumps, ion gates, enzymes, or more generally, as initiators of stimuli for the cell activity. They are composed of a protein backbone and a covalently bound cofactor (e.g. the...

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Autores principales: Giliberti, Valeria, Polito, Raffaella, Ritter, Eglof, Broser, Matthias, Hegemann, Peter, Puskar, Ljiljana, Schade, Ulrich, Zanetti-Polzi, Laura, Daidone, Isabella, Corni, Stefano, Rusconi, Francesco, Biagioni, Paolo, Baldassarre, Leonetta, Ortolani, Michele
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2019
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6745627/
https://www.ncbi.nlm.nih.gov/pubmed/30950626
http://dx.doi.org/10.1021/acs.nanolett.9b00512
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author Giliberti, Valeria
Polito, Raffaella
Ritter, Eglof
Broser, Matthias
Hegemann, Peter
Puskar, Ljiljana
Schade, Ulrich
Zanetti-Polzi, Laura
Daidone, Isabella
Corni, Stefano
Rusconi, Francesco
Biagioni, Paolo
Baldassarre, Leonetta
Ortolani, Michele
author_facet Giliberti, Valeria
Polito, Raffaella
Ritter, Eglof
Broser, Matthias
Hegemann, Peter
Puskar, Ljiljana
Schade, Ulrich
Zanetti-Polzi, Laura
Daidone, Isabella
Corni, Stefano
Rusconi, Francesco
Biagioni, Paolo
Baldassarre, Leonetta
Ortolani, Michele
author_sort Giliberti, Valeria
collection PubMed
description [Image: see text] Photosensitive proteins embedded in the cell membrane (about 5 nm thickness) act as photoactivated proton pumps, ion gates, enzymes, or more generally, as initiators of stimuli for the cell activity. They are composed of a protein backbone and a covalently bound cofactor (e.g. the retinal chromophore in bacteriorhodopsin (BR), channelrhodopsin, and other opsins). The light-induced conformational changes of both the cofactor and the protein are at the basis of the physiological functions of photosensitive proteins. Despite the dramatic development of microscopy techniques, investigating conformational changes of proteins at the membrane monolayer level is still a big challenge. Techniques based on atomic force microscopy (AFM) can detect electric currents through protein monolayers and even molecular binding forces in single-protein molecules but not the conformational changes. For the latter, Fourier-transform infrared spectroscopy (FTIR) using difference-spectroscopy mode is typically employed, but it is performed on macroscopic liquid suspensions or thick films containing large amounts of purified photosensitive proteins. In this work, we develop AFM-assisted, tip-enhanced infrared difference-nanospectroscopy to investigate light-induced conformational changes of the bacteriorhodopsin mutant D96N in single submicrometric native purple membrane patches. We obtain a significant improvement compared with the signal-to-noise ratio of standard IR nanospectroscopy techniques by exploiting the field enhancement in the plasmonic nanogap that forms between a gold-coated AFM probe tip and an ultraflat gold surface, as further supported by electromagnetic and thermal simulations. IR difference-spectra in the 1450–1800 cm(–1) range are recorded from individual patches as thin as 10 nm, with a diameter of less than 500 nm, well beyond the diffraction limit for FTIR microspectroscopy. We find clear spectroscopic evidence of a branching of the photocycle for BR molecules in direct contact with the gold surfaces, with equal amounts of proteins either following the standard proton-pump photocycle or being trapped in an intermediate state not directly contributing to light-induced proton transport. Our results are particularly relevant for BR-based optoelectronic and energy-harvesting devices, where BR molecular monolayers are put in contact with metal surfaces, and, more generally, for AFM-based IR spectroscopy studies of conformational changes of proteins embedded in intrinsically heterogeneous native cell membranes.
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spelling pubmed-67456272019-09-17 Tip-Enhanced Infrared Difference-Nanospectroscopy of the Proton Pump Activity of Bacteriorhodopsin in Single Purple Membrane Patches Giliberti, Valeria Polito, Raffaella Ritter, Eglof Broser, Matthias Hegemann, Peter Puskar, Ljiljana Schade, Ulrich Zanetti-Polzi, Laura Daidone, Isabella Corni, Stefano Rusconi, Francesco Biagioni, Paolo Baldassarre, Leonetta Ortolani, Michele Nano Lett [Image: see text] Photosensitive proteins embedded in the cell membrane (about 5 nm thickness) act as photoactivated proton pumps, ion gates, enzymes, or more generally, as initiators of stimuli for the cell activity. They are composed of a protein backbone and a covalently bound cofactor (e.g. the retinal chromophore in bacteriorhodopsin (BR), channelrhodopsin, and other opsins). The light-induced conformational changes of both the cofactor and the protein are at the basis of the physiological functions of photosensitive proteins. Despite the dramatic development of microscopy techniques, investigating conformational changes of proteins at the membrane monolayer level is still a big challenge. Techniques based on atomic force microscopy (AFM) can detect electric currents through protein monolayers and even molecular binding forces in single-protein molecules but not the conformational changes. For the latter, Fourier-transform infrared spectroscopy (FTIR) using difference-spectroscopy mode is typically employed, but it is performed on macroscopic liquid suspensions or thick films containing large amounts of purified photosensitive proteins. In this work, we develop AFM-assisted, tip-enhanced infrared difference-nanospectroscopy to investigate light-induced conformational changes of the bacteriorhodopsin mutant D96N in single submicrometric native purple membrane patches. We obtain a significant improvement compared with the signal-to-noise ratio of standard IR nanospectroscopy techniques by exploiting the field enhancement in the plasmonic nanogap that forms between a gold-coated AFM probe tip and an ultraflat gold surface, as further supported by electromagnetic and thermal simulations. IR difference-spectra in the 1450–1800 cm(–1) range are recorded from individual patches as thin as 10 nm, with a diameter of less than 500 nm, well beyond the diffraction limit for FTIR microspectroscopy. We find clear spectroscopic evidence of a branching of the photocycle for BR molecules in direct contact with the gold surfaces, with equal amounts of proteins either following the standard proton-pump photocycle or being trapped in an intermediate state not directly contributing to light-induced proton transport. Our results are particularly relevant for BR-based optoelectronic and energy-harvesting devices, where BR molecular monolayers are put in contact with metal surfaces, and, more generally, for AFM-based IR spectroscopy studies of conformational changes of proteins embedded in intrinsically heterogeneous native cell membranes. American Chemical Society 2019-04-05 2019-05-08 /pmc/articles/PMC6745627/ /pubmed/30950626 http://dx.doi.org/10.1021/acs.nanolett.9b00512 Text en Copyright © 2019 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Giliberti, Valeria
Polito, Raffaella
Ritter, Eglof
Broser, Matthias
Hegemann, Peter
Puskar, Ljiljana
Schade, Ulrich
Zanetti-Polzi, Laura
Daidone, Isabella
Corni, Stefano
Rusconi, Francesco
Biagioni, Paolo
Baldassarre, Leonetta
Ortolani, Michele
Tip-Enhanced Infrared Difference-Nanospectroscopy of the Proton Pump Activity of Bacteriorhodopsin in Single Purple Membrane Patches
title Tip-Enhanced Infrared Difference-Nanospectroscopy of the Proton Pump Activity of Bacteriorhodopsin in Single Purple Membrane Patches
title_full Tip-Enhanced Infrared Difference-Nanospectroscopy of the Proton Pump Activity of Bacteriorhodopsin in Single Purple Membrane Patches
title_fullStr Tip-Enhanced Infrared Difference-Nanospectroscopy of the Proton Pump Activity of Bacteriorhodopsin in Single Purple Membrane Patches
title_full_unstemmed Tip-Enhanced Infrared Difference-Nanospectroscopy of the Proton Pump Activity of Bacteriorhodopsin in Single Purple Membrane Patches
title_short Tip-Enhanced Infrared Difference-Nanospectroscopy of the Proton Pump Activity of Bacteriorhodopsin in Single Purple Membrane Patches
title_sort tip-enhanced infrared difference-nanospectroscopy of the proton pump activity of bacteriorhodopsin in single purple membrane patches
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6745627/
https://www.ncbi.nlm.nih.gov/pubmed/30950626
http://dx.doi.org/10.1021/acs.nanolett.9b00512
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