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Electrochemically-Driven Insertion of Biological Nanodiscs into Solid State Membrane Pores as a Basis for “Pore-In-Pore” Membranes

Nanoporous membranes are of increasing interest for many applications, such as molecular filters, biosensors, nanofluidic logic and energy conversion devices. To meet high-quality standards, e.g., in molecular separation processes, membranes with well-defined pores in terms of pore diameter and chem...

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Autores principales: Farajollahi, Farid, Seidenstücker, Axel, Altintoprak, Klara, Walther, Paul, Ziemann, Paul, Plettl, Alfred, Marti, Othmar, Wege, Christina, Gliemann, Hartmut
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5923567/
https://www.ncbi.nlm.nih.gov/pubmed/29652841
http://dx.doi.org/10.3390/nano8040237
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author Farajollahi, Farid
Seidenstücker, Axel
Altintoprak, Klara
Walther, Paul
Ziemann, Paul
Plettl, Alfred
Marti, Othmar
Wege, Christina
Gliemann, Hartmut
author_facet Farajollahi, Farid
Seidenstücker, Axel
Altintoprak, Klara
Walther, Paul
Ziemann, Paul
Plettl, Alfred
Marti, Othmar
Wege, Christina
Gliemann, Hartmut
author_sort Farajollahi, Farid
collection PubMed
description Nanoporous membranes are of increasing interest for many applications, such as molecular filters, biosensors, nanofluidic logic and energy conversion devices. To meet high-quality standards, e.g., in molecular separation processes, membranes with well-defined pores in terms of pore diameter and chemical properties are required. However, the preparation of membranes with narrow pore diameter distributions is still challenging. In the work presented here, we demonstrate a strategy, a “pore-in-pore” approach, where the conical pores of a solid state membrane produced by a multi-step top-down lithography procedure are used as a template to insert precisely-formed biomolecular nanodiscs with exactly defined inner and outer diameters. These nanodiscs, which are the building blocks of tobacco mosaic virus-deduced particles, consist of coat proteins, which self-assemble under defined experimental conditions with a stabilizing short RNA. We demonstrate that the insertion of the nanodiscs can be driven either by diffusion due to a concentration gradient or by applying an electric field along the cross-section of the solid state membrane. It is found that the electrophoresis-driven insertion is significantly more effective than the insertion via the concentration gradient.
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spelling pubmed-59235672018-05-03 Electrochemically-Driven Insertion of Biological Nanodiscs into Solid State Membrane Pores as a Basis for “Pore-In-Pore” Membranes Farajollahi, Farid Seidenstücker, Axel Altintoprak, Klara Walther, Paul Ziemann, Paul Plettl, Alfred Marti, Othmar Wege, Christina Gliemann, Hartmut Nanomaterials (Basel) Article Nanoporous membranes are of increasing interest for many applications, such as molecular filters, biosensors, nanofluidic logic and energy conversion devices. To meet high-quality standards, e.g., in molecular separation processes, membranes with well-defined pores in terms of pore diameter and chemical properties are required. However, the preparation of membranes with narrow pore diameter distributions is still challenging. In the work presented here, we demonstrate a strategy, a “pore-in-pore” approach, where the conical pores of a solid state membrane produced by a multi-step top-down lithography procedure are used as a template to insert precisely-formed biomolecular nanodiscs with exactly defined inner and outer diameters. These nanodiscs, which are the building blocks of tobacco mosaic virus-deduced particles, consist of coat proteins, which self-assemble under defined experimental conditions with a stabilizing short RNA. We demonstrate that the insertion of the nanodiscs can be driven either by diffusion due to a concentration gradient or by applying an electric field along the cross-section of the solid state membrane. It is found that the electrophoresis-driven insertion is significantly more effective than the insertion via the concentration gradient. MDPI 2018-04-13 /pmc/articles/PMC5923567/ /pubmed/29652841 http://dx.doi.org/10.3390/nano8040237 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Farajollahi, Farid
Seidenstücker, Axel
Altintoprak, Klara
Walther, Paul
Ziemann, Paul
Plettl, Alfred
Marti, Othmar
Wege, Christina
Gliemann, Hartmut
Electrochemically-Driven Insertion of Biological Nanodiscs into Solid State Membrane Pores as a Basis for “Pore-In-Pore” Membranes
title Electrochemically-Driven Insertion of Biological Nanodiscs into Solid State Membrane Pores as a Basis for “Pore-In-Pore” Membranes
title_full Electrochemically-Driven Insertion of Biological Nanodiscs into Solid State Membrane Pores as a Basis for “Pore-In-Pore” Membranes
title_fullStr Electrochemically-Driven Insertion of Biological Nanodiscs into Solid State Membrane Pores as a Basis for “Pore-In-Pore” Membranes
title_full_unstemmed Electrochemically-Driven Insertion of Biological Nanodiscs into Solid State Membrane Pores as a Basis for “Pore-In-Pore” Membranes
title_short Electrochemically-Driven Insertion of Biological Nanodiscs into Solid State Membrane Pores as a Basis for “Pore-In-Pore” Membranes
title_sort electrochemically-driven insertion of biological nanodiscs into solid state membrane pores as a basis for “pore-in-pore” membranes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5923567/
https://www.ncbi.nlm.nih.gov/pubmed/29652841
http://dx.doi.org/10.3390/nano8040237
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