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Mapping Nanocellulose- and Alginate-Based Photosynthetic Cell Factory Scaffolds: Interlinking Porosity, Wet Strength, and Gas Exchange

[Image: see text] To develop efficient solid-state photosynthetic cell factories for sustainable chemical production, we present an interdisciplinary experimental toolbox to investigate and interlink the structure, operative stability, and gas transfer properties of alginate- and nanocellulose-based...

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Autores principales: Levä, Tuukka, Rissanen, Ville, Nikkanen, Lauri, Siitonen, Vilja, Heilala, Maria, Phiri, Josphat, Maloney, Thaddeus C., Kosourov, Sergey, Allahverdiyeva, Yagut, Mäkelä, Mikko, Tammelin, Tekla
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10428157/
https://www.ncbi.nlm.nih.gov/pubmed/37384553
http://dx.doi.org/10.1021/acs.biomac.3c00261
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author Levä, Tuukka
Rissanen, Ville
Nikkanen, Lauri
Siitonen, Vilja
Heilala, Maria
Phiri, Josphat
Maloney, Thaddeus C.
Kosourov, Sergey
Allahverdiyeva, Yagut
Mäkelä, Mikko
Tammelin, Tekla
author_facet Levä, Tuukka
Rissanen, Ville
Nikkanen, Lauri
Siitonen, Vilja
Heilala, Maria
Phiri, Josphat
Maloney, Thaddeus C.
Kosourov, Sergey
Allahverdiyeva, Yagut
Mäkelä, Mikko
Tammelin, Tekla
author_sort Levä, Tuukka
collection PubMed
description [Image: see text] To develop efficient solid-state photosynthetic cell factories for sustainable chemical production, we present an interdisciplinary experimental toolbox to investigate and interlink the structure, operative stability, and gas transfer properties of alginate- and nanocellulose-based hydrogel matrices with entrapped wild-type Synechocystis PCC 6803 cyanobacteria. We created a rheological map based on the mechanical performance of the hydrogel matrices. The results highlighted the importance of Ca(2+)-cross-linking and showed that nanocellulose matrices possess higher yield properties, and alginate matrices possess higher rest properties. We observed higher porosity for nanocellulose-based matrices in a water-swollen state via calorimetric thermoporosimetry and scanning electron microscopy imaging. Finally, by pioneering a gas flux analysis via membrane-inlet mass spectrometry for entrapped cells, we observed that the porosity and rigidity of the matrices are connected to their gas exchange rates over time. Overall, these findings link the dynamic properties of the life-sustaining matrix to the performance of the immobilized cells in tailored solid-state photosynthetic cell factories.
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spelling pubmed-104281572023-08-17 Mapping Nanocellulose- and Alginate-Based Photosynthetic Cell Factory Scaffolds: Interlinking Porosity, Wet Strength, and Gas Exchange Levä, Tuukka Rissanen, Ville Nikkanen, Lauri Siitonen, Vilja Heilala, Maria Phiri, Josphat Maloney, Thaddeus C. Kosourov, Sergey Allahverdiyeva, Yagut Mäkelä, Mikko Tammelin, Tekla Biomacromolecules [Image: see text] To develop efficient solid-state photosynthetic cell factories for sustainable chemical production, we present an interdisciplinary experimental toolbox to investigate and interlink the structure, operative stability, and gas transfer properties of alginate- and nanocellulose-based hydrogel matrices with entrapped wild-type Synechocystis PCC 6803 cyanobacteria. We created a rheological map based on the mechanical performance of the hydrogel matrices. The results highlighted the importance of Ca(2+)-cross-linking and showed that nanocellulose matrices possess higher yield properties, and alginate matrices possess higher rest properties. We observed higher porosity for nanocellulose-based matrices in a water-swollen state via calorimetric thermoporosimetry and scanning electron microscopy imaging. Finally, by pioneering a gas flux analysis via membrane-inlet mass spectrometry for entrapped cells, we observed that the porosity and rigidity of the matrices are connected to their gas exchange rates over time. Overall, these findings link the dynamic properties of the life-sustaining matrix to the performance of the immobilized cells in tailored solid-state photosynthetic cell factories. American Chemical Society 2023-06-29 /pmc/articles/PMC10428157/ /pubmed/37384553 http://dx.doi.org/10.1021/acs.biomac.3c00261 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Levä, Tuukka
Rissanen, Ville
Nikkanen, Lauri
Siitonen, Vilja
Heilala, Maria
Phiri, Josphat
Maloney, Thaddeus C.
Kosourov, Sergey
Allahverdiyeva, Yagut
Mäkelä, Mikko
Tammelin, Tekla
Mapping Nanocellulose- and Alginate-Based Photosynthetic Cell Factory Scaffolds: Interlinking Porosity, Wet Strength, and Gas Exchange
title Mapping Nanocellulose- and Alginate-Based Photosynthetic Cell Factory Scaffolds: Interlinking Porosity, Wet Strength, and Gas Exchange
title_full Mapping Nanocellulose- and Alginate-Based Photosynthetic Cell Factory Scaffolds: Interlinking Porosity, Wet Strength, and Gas Exchange
title_fullStr Mapping Nanocellulose- and Alginate-Based Photosynthetic Cell Factory Scaffolds: Interlinking Porosity, Wet Strength, and Gas Exchange
title_full_unstemmed Mapping Nanocellulose- and Alginate-Based Photosynthetic Cell Factory Scaffolds: Interlinking Porosity, Wet Strength, and Gas Exchange
title_short Mapping Nanocellulose- and Alginate-Based Photosynthetic Cell Factory Scaffolds: Interlinking Porosity, Wet Strength, and Gas Exchange
title_sort mapping nanocellulose- and alginate-based photosynthetic cell factory scaffolds: interlinking porosity, wet strength, and gas exchange
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10428157/
https://www.ncbi.nlm.nih.gov/pubmed/37384553
http://dx.doi.org/10.1021/acs.biomac.3c00261
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