Cargando…

Fabrication of a Novel Protein Sponge with Dual-Scale Porosity and Mixed Wettability Using a Clean and Versatile Microwave-Based Process

An open-porous protein sponge with mixed wettability is presented made entirely from whey proteins and with promising applications in biomedicine, pharmaceutical, and food industry. The fabrication relies on an additive-free, clean and scalable process consisting of foaming followed by controlled mi...

Descripción completa

Detalles Bibliográficos
Autores principales: Wemmer, Judith, Malafronte, Loredana, Foschini, Socrates, Schneider, Aline, Schlepütz, Christian M., Leser, Martin E., Michel, Martin, Burbigde, Adam, Windhab, Erich J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8124266/
https://www.ncbi.nlm.nih.gov/pubmed/33946697
http://dx.doi.org/10.3390/ma14092298
_version_ 1783693153740521472
author Wemmer, Judith
Malafronte, Loredana
Foschini, Socrates
Schneider, Aline
Schlepütz, Christian M.
Leser, Martin E.
Michel, Martin
Burbigde, Adam
Windhab, Erich J.
author_facet Wemmer, Judith
Malafronte, Loredana
Foschini, Socrates
Schneider, Aline
Schlepütz, Christian M.
Leser, Martin E.
Michel, Martin
Burbigde, Adam
Windhab, Erich J.
author_sort Wemmer, Judith
collection PubMed
description An open-porous protein sponge with mixed wettability is presented made entirely from whey proteins and with promising applications in biomedicine, pharmaceutical, and food industry. The fabrication relies on an additive-free, clean and scalable process consisting of foaming followed by controlled microwave-convection drying. Volumetric heating throughout the matrix induced by microwaves causes fast expansion and elongation of the foam bubbles, retards crust formation and promotes early protein denaturation. These effects counteract collapse and shrinkage typically encountered in convection drying of foams. The interplay of high protein content, tailored gas incorporation and controlled drying result in a dried structure with dual-scale porosity composed of open macroscopic elongated foam bubbles and microscopic pores in the surrounding solid lamellae induced by water evaporation. Due to the insolubility and mixed wettability of the denatured protein network, polar and non-polar liquids are rapidly absorbed into the interconnected capillary system of the sponge without disintegrating. While non-watery liquids penetrate the pores by capillary suction, water diffuses also into the stiff protein matrix, inducing swelling and softening. Consequently, the water-filled soft sponge can be emptied by compression and re-absorbs any wetting liquid into the free capillary space.
format Online
Article
Text
id pubmed-8124266
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-81242662021-05-17 Fabrication of a Novel Protein Sponge with Dual-Scale Porosity and Mixed Wettability Using a Clean and Versatile Microwave-Based Process Wemmer, Judith Malafronte, Loredana Foschini, Socrates Schneider, Aline Schlepütz, Christian M. Leser, Martin E. Michel, Martin Burbigde, Adam Windhab, Erich J. Materials (Basel) Article An open-porous protein sponge with mixed wettability is presented made entirely from whey proteins and with promising applications in biomedicine, pharmaceutical, and food industry. The fabrication relies on an additive-free, clean and scalable process consisting of foaming followed by controlled microwave-convection drying. Volumetric heating throughout the matrix induced by microwaves causes fast expansion and elongation of the foam bubbles, retards crust formation and promotes early protein denaturation. These effects counteract collapse and shrinkage typically encountered in convection drying of foams. The interplay of high protein content, tailored gas incorporation and controlled drying result in a dried structure with dual-scale porosity composed of open macroscopic elongated foam bubbles and microscopic pores in the surrounding solid lamellae induced by water evaporation. Due to the insolubility and mixed wettability of the denatured protein network, polar and non-polar liquids are rapidly absorbed into the interconnected capillary system of the sponge without disintegrating. While non-watery liquids penetrate the pores by capillary suction, water diffuses also into the stiff protein matrix, inducing swelling and softening. Consequently, the water-filled soft sponge can be emptied by compression and re-absorbs any wetting liquid into the free capillary space. MDPI 2021-04-29 /pmc/articles/PMC8124266/ /pubmed/33946697 http://dx.doi.org/10.3390/ma14092298 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wemmer, Judith
Malafronte, Loredana
Foschini, Socrates
Schneider, Aline
Schlepütz, Christian M.
Leser, Martin E.
Michel, Martin
Burbigde, Adam
Windhab, Erich J.
Fabrication of a Novel Protein Sponge with Dual-Scale Porosity and Mixed Wettability Using a Clean and Versatile Microwave-Based Process
title Fabrication of a Novel Protein Sponge with Dual-Scale Porosity and Mixed Wettability Using a Clean and Versatile Microwave-Based Process
title_full Fabrication of a Novel Protein Sponge with Dual-Scale Porosity and Mixed Wettability Using a Clean and Versatile Microwave-Based Process
title_fullStr Fabrication of a Novel Protein Sponge with Dual-Scale Porosity and Mixed Wettability Using a Clean and Versatile Microwave-Based Process
title_full_unstemmed Fabrication of a Novel Protein Sponge with Dual-Scale Porosity and Mixed Wettability Using a Clean and Versatile Microwave-Based Process
title_short Fabrication of a Novel Protein Sponge with Dual-Scale Porosity and Mixed Wettability Using a Clean and Versatile Microwave-Based Process
title_sort fabrication of a novel protein sponge with dual-scale porosity and mixed wettability using a clean and versatile microwave-based process
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8124266/
https://www.ncbi.nlm.nih.gov/pubmed/33946697
http://dx.doi.org/10.3390/ma14092298
work_keys_str_mv AT wemmerjudith fabricationofanovelproteinspongewithdualscaleporosityandmixedwettabilityusingacleanandversatilemicrowavebasedprocess
AT malafronteloredana fabricationofanovelproteinspongewithdualscaleporosityandmixedwettabilityusingacleanandversatilemicrowavebasedprocess
AT foschinisocrates fabricationofanovelproteinspongewithdualscaleporosityandmixedwettabilityusingacleanandversatilemicrowavebasedprocess
AT schneideraline fabricationofanovelproteinspongewithdualscaleporosityandmixedwettabilityusingacleanandversatilemicrowavebasedprocess
AT schleputzchristianm fabricationofanovelproteinspongewithdualscaleporosityandmixedwettabilityusingacleanandversatilemicrowavebasedprocess
AT lesermartine fabricationofanovelproteinspongewithdualscaleporosityandmixedwettabilityusingacleanandversatilemicrowavebasedprocess
AT michelmartin fabricationofanovelproteinspongewithdualscaleporosityandmixedwettabilityusingacleanandversatilemicrowavebasedprocess
AT burbigdeadam fabricationofanovelproteinspongewithdualscaleporosityandmixedwettabilityusingacleanandversatilemicrowavebasedprocess
AT windhaberichj fabricationofanovelproteinspongewithdualscaleporosityandmixedwettabilityusingacleanandversatilemicrowavebasedprocess