Heterogeneous Biocatalysts Prepared by Immuring Enzymatic Active Components inside Silica Xerogel and Nanocarbons-In-Silica Composites

Proprietary results on preparation and studies of whole-cell and lysates-based heterogeneous biocatalysts with different enzymatic activity were reviewed. A peculiar method was developed for preparing these biocatalysts by immuring (entrapping) enzymatic active components (EAC) inside silica (SiO2)...

Full description

Bibliographic Details
Main Authors: Galina A. Kovalenko, Larisa V. Perminova, Anatoly B. Beklemishev, Valentin N. Parmon
Format: Article
Language:English
Published: MDPI AG 2018-04-01
Series:Catalysts
Subjects:
Online Access:http://www.mdpi.com/2073-4344/8/5/177
id doaj-51cad7c595d646a79d6aa6c4431b749b
record_format Article
spelling doaj-51cad7c595d646a79d6aa6c4431b749b2020-11-24T21:01:11ZengMDPI AGCatalysts2073-43442018-04-018517710.3390/catal8050177catal8050177Heterogeneous Biocatalysts Prepared by Immuring Enzymatic Active Components inside Silica Xerogel and Nanocarbons-In-Silica CompositesGalina A. Kovalenko0Larisa V. Perminova1Anatoly B. Beklemishev2Valentin N. Parmon3Institute of Catalysis, 630090 Novosibirsk, RussiaInstitute of Catalysis, 630090 Novosibirsk, RussiaInstitute of Catalysis, 630090 Novosibirsk, RussiaInstitute of Catalysis, 630090 Novosibirsk, RussiaProprietary results on preparation and studies of whole-cell and lysates-based heterogeneous biocatalysts with different enzymatic activity were reviewed. A peculiar method was developed for preparing these biocatalysts by immuring (entrapping) enzymatic active components (EAC) inside silica (SiO2) xerogel and nanocarbons-in-silica composites. Properties of the multi-component composite biocatalysts such as enzymatic activity and operational stability were compared. The effect of the inclusion of nanocarbons such as nanotubes, nanofibers, and onion-like nanospheres with various texture, nanostructure and dispersion were thoroughly studied. With invertase-active biocatalysts, the direct correlation between an increase in the enzymatic activity of the nanocarbons-in-silica biocatalyst and efficiency of EAC adhesion on nanocarbons was observed. The steady-state invertase activity of the baker yeast lysates-based biocatalysts was determined to increase by a factor of 5–6 after inclusion of the multi-walled carbon nanotubes inside SiO2-xerogel. With lipase-active biocatalysts, the effect of the included nanocarbons on the biocatalytic properties depended significantly on the reaction type. In interesterification of oil-fat blends, the biocatalysts without any included nanocarbons demonstrated the maximal lipase activity. In esterification of fatty acids with aliphatic alcohols, the activity of the biocatalysts increased by a factor of 1.5–2 after inclusion of the aggregated multi-walled carbon nanotubes (CNTs) inside SiO2-xerogel. In the low-temperature synthesis of isopentyl esters of butyric (C4:0), capric (C10:0), and srearic (C18:0) fatty acids, the lipase-active composite CNTs-in-silica biocatalysts operated without loss of activity for more than thousand hours.http://www.mdpi.com/2073-4344/8/5/177heterogeneous biocatalystsimmuring enzymatic active componentsnanocarbons-in-silica composite
collection DOAJ
language English
format Article
sources DOAJ
author Galina A. Kovalenko
Larisa V. Perminova
Anatoly B. Beklemishev
Valentin N. Parmon
spellingShingle Galina A. Kovalenko
Larisa V. Perminova
Anatoly B. Beklemishev
Valentin N. Parmon
Heterogeneous Biocatalysts Prepared by Immuring Enzymatic Active Components inside Silica Xerogel and Nanocarbons-In-Silica Composites
Catalysts
heterogeneous biocatalysts
immuring enzymatic active components
nanocarbons-in-silica composite
author_facet Galina A. Kovalenko
Larisa V. Perminova
Anatoly B. Beklemishev
Valentin N. Parmon
author_sort Galina A. Kovalenko
title Heterogeneous Biocatalysts Prepared by Immuring Enzymatic Active Components inside Silica Xerogel and Nanocarbons-In-Silica Composites
title_short Heterogeneous Biocatalysts Prepared by Immuring Enzymatic Active Components inside Silica Xerogel and Nanocarbons-In-Silica Composites
title_full Heterogeneous Biocatalysts Prepared by Immuring Enzymatic Active Components inside Silica Xerogel and Nanocarbons-In-Silica Composites
title_fullStr Heterogeneous Biocatalysts Prepared by Immuring Enzymatic Active Components inside Silica Xerogel and Nanocarbons-In-Silica Composites
title_full_unstemmed Heterogeneous Biocatalysts Prepared by Immuring Enzymatic Active Components inside Silica Xerogel and Nanocarbons-In-Silica Composites
title_sort heterogeneous biocatalysts prepared by immuring enzymatic active components inside silica xerogel and nanocarbons-in-silica composites
publisher MDPI AG
series Catalysts
issn 2073-4344
publishDate 2018-04-01
description Proprietary results on preparation and studies of whole-cell and lysates-based heterogeneous biocatalysts with different enzymatic activity were reviewed. A peculiar method was developed for preparing these biocatalysts by immuring (entrapping) enzymatic active components (EAC) inside silica (SiO2) xerogel and nanocarbons-in-silica composites. Properties of the multi-component composite biocatalysts such as enzymatic activity and operational stability were compared. The effect of the inclusion of nanocarbons such as nanotubes, nanofibers, and onion-like nanospheres with various texture, nanostructure and dispersion were thoroughly studied. With invertase-active biocatalysts, the direct correlation between an increase in the enzymatic activity of the nanocarbons-in-silica biocatalyst and efficiency of EAC adhesion on nanocarbons was observed. The steady-state invertase activity of the baker yeast lysates-based biocatalysts was determined to increase by a factor of 5–6 after inclusion of the multi-walled carbon nanotubes inside SiO2-xerogel. With lipase-active biocatalysts, the effect of the included nanocarbons on the biocatalytic properties depended significantly on the reaction type. In interesterification of oil-fat blends, the biocatalysts without any included nanocarbons demonstrated the maximal lipase activity. In esterification of fatty acids with aliphatic alcohols, the activity of the biocatalysts increased by a factor of 1.5–2 after inclusion of the aggregated multi-walled carbon nanotubes (CNTs) inside SiO2-xerogel. In the low-temperature synthesis of isopentyl esters of butyric (C4:0), capric (C10:0), and srearic (C18:0) fatty acids, the lipase-active composite CNTs-in-silica biocatalysts operated without loss of activity for more than thousand hours.
topic heterogeneous biocatalysts
immuring enzymatic active components
nanocarbons-in-silica composite
url http://www.mdpi.com/2073-4344/8/5/177
work_keys_str_mv AT galinaakovalenko heterogeneousbiocatalystspreparedbyimmuringenzymaticactivecomponentsinsidesilicaxerogelandnanocarbonsinsilicacomposites
AT larisavperminova heterogeneousbiocatalystspreparedbyimmuringenzymaticactivecomponentsinsidesilicaxerogelandnanocarbonsinsilicacomposites
AT anatolybbeklemishev heterogeneousbiocatalystspreparedbyimmuringenzymaticactivecomponentsinsidesilicaxerogelandnanocarbonsinsilicacomposites
AT valentinnparmon heterogeneousbiocatalystspreparedbyimmuringenzymaticactivecomponentsinsidesilicaxerogelandnanocarbonsinsilicacomposites
_version_ 1716778653048635392