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Biocatalytic traits of a new nanobiocatalyst prepared via immobilization of alginate lyase from a novel <italic>Streptomyces</italic> sp. LB55 onto silicon dioxide nanoparticles.

Authors :
Mohapatra, Bidyut R.
Source :
Biocatalysis & Biotransformation. Nov2024, p1-12. 12p. 8 Illustrations.
Publication Year :
2024

Abstract

AbstractAlginate lyase, which catalyzes the cleavage of alginate, has potential biocatalytic applications in agriculture, food, fodder, nutraceutical, pharmaceuticals, medical diagnostic and bioenergy industries. In this study, a novel alginate lyase-producing &lt;italic&gt;Streptomyces&lt;/italic&gt; sp. LB55 (GenBank Accession No. MT176164) was isolated from &lt;italic&gt;Sargassum&lt;/italic&gt; seaweed waste, and its extracted alginate lyase was immobilized onto glutaraldehyde cross-linked silicon dioxide nanoparticles. Fourier-transform infrared (FTIR) spectroscopic analysis suggests the binding of extracted alginate lyase with silicon dioxide nanoparticles &lt;italic&gt;via&lt;/italic&gt; covalent bonds. FTIR analysis also revealed the retention of the secondary structure of immobilized alginate lyase by exhibiting amide I and amide II bands. The glutaraldehyde cross-linked silicon dioxide nanoparticles retained 71.9 &#177; 2.63% of alginate lyase activity. The optimal pH and temperature for maximal alginate lyase activity were recorded at pH 7.5 and temperatures of 40 and 45 &#176;C, for free and immobilized forms, respectively. In comparison to free alginate lyase, the immobilized enzyme was thermodynamically efficient by displaying higher values of activation energy (52.3 kJ/mol), enthalpy (49.8 kJ/mol) and entropy (–69.7 J/mol/K) of catalysis. The immobilized alginate lyase had a strong affinity for alginate by exhibiting low &lt;italic&gt;Km&lt;/italic&gt; (1.75 &#177; 0.12 mg/mL) and high &lt;italic&gt;V&lt;/italic&gt;max (30.4 &#177; 2.66 U/mg-protein) values. The immobilized alginate lyase activity was unaffected at 2% NaCl concentration and could be successively reused six times without considerable loss of activity. The overall results demonstrate for the first time the potential of silicon dioxide nanoparticles as an effective matrix to immobilize alginate lyase for sustainable and cost-effective depolymerization of alginate. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
10242422
Database :
Academic Search Index
Journal :
Biocatalysis & Biotransformation
Publication Type :
Academic Journal
Accession number :
181187719
Full Text :
https://doi.org/10.1080/10242422.2024.2433609