Structural Study of the Hydration of Lipid Membranes Upon Interaction With Mesoporous Supports Prepared by Standard Methods and/or X‐Ray Irradiation

Mesoporous materials feature ordered tailored structures with uniform pore sizes and highly accessible surface areas, making them an ideal host for functional organic molecules or nanoparticles for analytical and sensing applications. Moreover, as their porosity could be employed to deliver fluids,...

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Main Authors: Benedetta Marmiroli, Barbara Sartori, Adriana R. Kyvik, Imma Ratera, Heinz Amenitsch
Format: Article
Language:English
Published: Frontiers Media S.A. 2021-08-01
Series:Frontiers in Materials
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fmats.2021.686353/full
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spelling doaj-60ec67e3ad974cd19ffb5bfde3f0e9772021-08-05T06:23:36ZengFrontiers Media S.A.Frontiers in Materials2296-80162021-08-01810.3389/fmats.2021.686353686353Structural Study of the Hydration of Lipid Membranes Upon Interaction With Mesoporous Supports Prepared by Standard Methods and/or X‐Ray IrradiationBenedetta Marmiroli0Barbara Sartori1Adriana R. Kyvik2Adriana R. Kyvik3Imma Ratera4Imma Ratera5Heinz Amenitsch6Institute of Inorganic Chemistry, Graz University of Technology, Graz, AustriaInstitute of Inorganic Chemistry, Graz University of Technology, Graz, AustriaInstitute of Materials Science of Barcelona (ICMAB-CSIC), Campus UAB, Bellaterra, SpainNetworking Research Center on Bioengineering, Biomaterials and Nanomedicine (CIBER-BBN), Campus UAB, Bellaterra, SpainInstitute of Materials Science of Barcelona (ICMAB-CSIC), Campus UAB, Bellaterra, SpainNetworking Research Center on Bioengineering, Biomaterials and Nanomedicine (CIBER-BBN), Campus UAB, Bellaterra, SpainInstitute of Inorganic Chemistry, Graz University of Technology, Graz, AustriaMesoporous materials feature ordered tailored structures with uniform pore sizes and highly accessible surface areas, making them an ideal host for functional organic molecules or nanoparticles for analytical and sensing applications. Moreover, as their porosity could be employed to deliver fluids, they could be suitable materials for nanofluidic devices. As a first step in this direction, we present a study of the hydration of 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine (POPC) model lipid membranes on solid mesoporous support. POPC was selected as it changes the structure upon hydration at room temperature. Mesoporous films were prepared using two different templating agents, Pluronic P123 (PEO–PPO–PEO triblock copolymer where PEO is polyethylene oxide and PPO is polypropylene oxide) and Brij 58 (C16H33(EO)20OH where EO is ethylene oxide), both following the conventional route and by X-ray irradiation via deep X-ray lithography technique and subsequent development. The same samples were additionally functionalized with a self-assembly monolayer (SAM) of (3-aminopropyl)triethoxysilane. For every film, the contact angle was measured. A time resolved structural study was conducted using in situ grazing incidence small-angle X-ray scattering while increasing the external humidity (RH), from 15 to 75% in a specially designed chamber. The measurements evidenced that the lipid membrane hydration on mesoporous films occurs at a lower humidity value with respect to POPC deposited on silicon substrates, demonstrating the possibility of using porosity to convey water from below. A different level of hydration was reached by using the mesoporous thin film prepared with conventional methods or the irradiated ones, or by functionalizing the film using the SAM strategy, meaning that the hydration can be partially selectively tuned. Therefore, mesoporous films can be employed as “interactive” sample holders with specimens deposited on them. Moreover, thanks to the possibility of patterning the films using deep X-ray lithography, devices for biological studies of increasing complexity by selectively functionalizing the mesopores with biofunctional SAMs could be designed and fabricated.https://www.frontiersin.org/articles/10.3389/fmats.2021.686353/fulldeep X-ray lithographymesoporous silica thin filmslipid membrane hydrationsmall-angle X-ray scatteringcontact anglemolecular surface functionalization
collection DOAJ
language English
format Article
sources DOAJ
author Benedetta Marmiroli
Barbara Sartori
Adriana R. Kyvik
Adriana R. Kyvik
Imma Ratera
Imma Ratera
Heinz Amenitsch
spellingShingle Benedetta Marmiroli
Barbara Sartori
Adriana R. Kyvik
Adriana R. Kyvik
Imma Ratera
Imma Ratera
Heinz Amenitsch
Structural Study of the Hydration of Lipid Membranes Upon Interaction With Mesoporous Supports Prepared by Standard Methods and/or X‐Ray Irradiation
Frontiers in Materials
deep X-ray lithography
mesoporous silica thin films
lipid membrane hydration
small-angle X-ray scattering
contact angle
molecular surface functionalization
author_facet Benedetta Marmiroli
Barbara Sartori
Adriana R. Kyvik
Adriana R. Kyvik
Imma Ratera
Imma Ratera
Heinz Amenitsch
author_sort Benedetta Marmiroli
title Structural Study of the Hydration of Lipid Membranes Upon Interaction With Mesoporous Supports Prepared by Standard Methods and/or X‐Ray Irradiation
title_short Structural Study of the Hydration of Lipid Membranes Upon Interaction With Mesoporous Supports Prepared by Standard Methods and/or X‐Ray Irradiation
title_full Structural Study of the Hydration of Lipid Membranes Upon Interaction With Mesoporous Supports Prepared by Standard Methods and/or X‐Ray Irradiation
title_fullStr Structural Study of the Hydration of Lipid Membranes Upon Interaction With Mesoporous Supports Prepared by Standard Methods and/or X‐Ray Irradiation
title_full_unstemmed Structural Study of the Hydration of Lipid Membranes Upon Interaction With Mesoporous Supports Prepared by Standard Methods and/or X‐Ray Irradiation
title_sort structural study of the hydration of lipid membranes upon interaction with mesoporous supports prepared by standard methods and/or x‐ray irradiation
publisher Frontiers Media S.A.
series Frontiers in Materials
issn 2296-8016
publishDate 2021-08-01
description Mesoporous materials feature ordered tailored structures with uniform pore sizes and highly accessible surface areas, making them an ideal host for functional organic molecules or nanoparticles for analytical and sensing applications. Moreover, as their porosity could be employed to deliver fluids, they could be suitable materials for nanofluidic devices. As a first step in this direction, we present a study of the hydration of 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine (POPC) model lipid membranes on solid mesoporous support. POPC was selected as it changes the structure upon hydration at room temperature. Mesoporous films were prepared using two different templating agents, Pluronic P123 (PEO–PPO–PEO triblock copolymer where PEO is polyethylene oxide and PPO is polypropylene oxide) and Brij 58 (C16H33(EO)20OH where EO is ethylene oxide), both following the conventional route and by X-ray irradiation via deep X-ray lithography technique and subsequent development. The same samples were additionally functionalized with a self-assembly monolayer (SAM) of (3-aminopropyl)triethoxysilane. For every film, the contact angle was measured. A time resolved structural study was conducted using in situ grazing incidence small-angle X-ray scattering while increasing the external humidity (RH), from 15 to 75% in a specially designed chamber. The measurements evidenced that the lipid membrane hydration on mesoporous films occurs at a lower humidity value with respect to POPC deposited on silicon substrates, demonstrating the possibility of using porosity to convey water from below. A different level of hydration was reached by using the mesoporous thin film prepared with conventional methods or the irradiated ones, or by functionalizing the film using the SAM strategy, meaning that the hydration can be partially selectively tuned. Therefore, mesoporous films can be employed as “interactive” sample holders with specimens deposited on them. Moreover, thanks to the possibility of patterning the films using deep X-ray lithography, devices for biological studies of increasing complexity by selectively functionalizing the mesopores with biofunctional SAMs could be designed and fabricated.
topic deep X-ray lithography
mesoporous silica thin films
lipid membrane hydration
small-angle X-ray scattering
contact angle
molecular surface functionalization
url https://www.frontiersin.org/articles/10.3389/fmats.2021.686353/full
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