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Fabrication of a Floatable Micron-Sized Enzyme Device Using Diatom Frustules

[Image: see text] Immobilization of enzymes has been widely reported due to their reusability, thermal stability, better storage abilities, and so on. However, there are still problems that immobilized enzymes do not have free movements to react to substrates during enzyme reactions and their enzyme...

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Autores principales: Lin, Nay San, Hirayama, Kota, Kitamura, Masaki, Koide, Shinji, Kitajima, Hiromasa, Harada, Takunori, Mayama, Shigeki, Umemura, Kazuo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10268610/
https://www.ncbi.nlm.nih.gov/pubmed/37332799
http://dx.doi.org/10.1021/acsomega.3c02104
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author Lin, Nay San
Hirayama, Kota
Kitamura, Masaki
Koide, Shinji
Kitajima, Hiromasa
Harada, Takunori
Mayama, Shigeki
Umemura, Kazuo
author_facet Lin, Nay San
Hirayama, Kota
Kitamura, Masaki
Koide, Shinji
Kitajima, Hiromasa
Harada, Takunori
Mayama, Shigeki
Umemura, Kazuo
author_sort Lin, Nay San
collection PubMed
description [Image: see text] Immobilization of enzymes has been widely reported due to their reusability, thermal stability, better storage abilities, and so on. However, there are still problems that immobilized enzymes do not have free movements to react to substrates during enzyme reactions and their enzyme activity becomes weak. Moreover, when only the porosity of support materials is focused, some problems such as enzyme distortion can negatively affect the enzyme activity. Being a solution to these problems, a new function “floatability” of enzyme devices has been discussed. A “floatable” micron-sized enzyme device was fabricated to enhance the free movements of immobilized enzymes. Diatom frustules, natural nanoporous biosilica, were used to attach papain enzyme molecules. The floatability of the frustules, evaluated by macroscopic and microscopic methods, was significantly better than that of four other SiO(2) materials, such as diatomaceous earth (DE), which have been widely used to fabricate micron-sized enzyme devices. The frustules were fully suspended at 30 °C for 1 h without stirring, although they settled at room temperature. When enzyme assays were performed at room temperature, 37, and 60 °C with or without external stirring, the proposed frustule device showed the highest enzyme activity under all conditions among papain devices similarly prepared using other SiO(2) materials. It was confirmed by the free papain experiments that the frustule device was active enough for enzyme reactions. Our data indicated that the high floatability of the reusable frustule device, and its large surface area, is effective in maximizing enzyme activity due to the high probability to react to substrates.
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spelling pubmed-102686102023-06-16 Fabrication of a Floatable Micron-Sized Enzyme Device Using Diatom Frustules Lin, Nay San Hirayama, Kota Kitamura, Masaki Koide, Shinji Kitajima, Hiromasa Harada, Takunori Mayama, Shigeki Umemura, Kazuo ACS Omega [Image: see text] Immobilization of enzymes has been widely reported due to their reusability, thermal stability, better storage abilities, and so on. However, there are still problems that immobilized enzymes do not have free movements to react to substrates during enzyme reactions and their enzyme activity becomes weak. Moreover, when only the porosity of support materials is focused, some problems such as enzyme distortion can negatively affect the enzyme activity. Being a solution to these problems, a new function “floatability” of enzyme devices has been discussed. A “floatable” micron-sized enzyme device was fabricated to enhance the free movements of immobilized enzymes. Diatom frustules, natural nanoporous biosilica, were used to attach papain enzyme molecules. The floatability of the frustules, evaluated by macroscopic and microscopic methods, was significantly better than that of four other SiO(2) materials, such as diatomaceous earth (DE), which have been widely used to fabricate micron-sized enzyme devices. The frustules were fully suspended at 30 °C for 1 h without stirring, although they settled at room temperature. When enzyme assays were performed at room temperature, 37, and 60 °C with or without external stirring, the proposed frustule device showed the highest enzyme activity under all conditions among papain devices similarly prepared using other SiO(2) materials. It was confirmed by the free papain experiments that the frustule device was active enough for enzyme reactions. Our data indicated that the high floatability of the reusable frustule device, and its large surface area, is effective in maximizing enzyme activity due to the high probability to react to substrates. American Chemical Society 2023-05-27 /pmc/articles/PMC10268610/ /pubmed/37332799 http://dx.doi.org/10.1021/acsomega.3c02104 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 Lin, Nay San
Hirayama, Kota
Kitamura, Masaki
Koide, Shinji
Kitajima, Hiromasa
Harada, Takunori
Mayama, Shigeki
Umemura, Kazuo
Fabrication of a Floatable Micron-Sized Enzyme Device Using Diatom Frustules
title Fabrication of a Floatable Micron-Sized Enzyme Device Using Diatom Frustules
title_full Fabrication of a Floatable Micron-Sized Enzyme Device Using Diatom Frustules
title_fullStr Fabrication of a Floatable Micron-Sized Enzyme Device Using Diatom Frustules
title_full_unstemmed Fabrication of a Floatable Micron-Sized Enzyme Device Using Diatom Frustules
title_short Fabrication of a Floatable Micron-Sized Enzyme Device Using Diatom Frustules
title_sort fabrication of a floatable micron-sized enzyme device using diatom frustules
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10268610/
https://www.ncbi.nlm.nih.gov/pubmed/37332799
http://dx.doi.org/10.1021/acsomega.3c02104
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