Newly Synthesized Multifunctional Biopolymer Coated Magnetic Core/Shell Fe3O4@Au Nanoparticles for Evaluation of L-asparaginase Immobilization
Loading...
Date
2022
Journal Title
Journal ISSN
Volume Title
Publisher
SpringerLink
Open Access Color
Green Open Access
No
OpenAIRE Downloads
OpenAIRE Views
Publicly Funded
No
Abstract
The immobilization strategy can promote greater enzyme utilization in applications by improving the overall stability and reusability of the enzyme. In this work, the L-asparaginase (L-ASNase) obtained from Escherichia coli was chosen as a model enzyme and immobilized onto the Fe3O4@Au-carboxymethyl chitosan (CMC) magnetic nanoparticles (MNPs) through adsorption. TEM, SEM, FT-IR, XRD, EDS, and TGA analyses were performed to examine the structure with and without L-ASNase. The yield of immobilized L-ASNase on Fe3O4@Au-CMC was found to be 68%. The biochemical properties such as optimum pH, optimum temperature, reusability, and thermal stability of the Fe3O4@Au-CMC/L-ASNase were comprehensively investigated. For instance, Fe3O4@Au-CMC/L-ASNase reached maximum activity at pH 7.0 and the optimum temperature was found to be 50 °C. The noticeably lower Ea value of the Fe3O4@Au-CMC/L-ASNase revealed the enhanced catalytic activity of this enzyme after immobilization. The Km and Vmax values were 3.27 ± 0.48 mM, and 51.54 ± 0.51 μmol min−1 for Fe3O4@Au-CMC/L-ASNase, respectively, which means good substrate affinity. The Fe3O4@Au-CMC/L-ASNase retained 65% of its initial activity even after 90 min at 60 °C. Moreover, it maintained more than 75% of its original activity after 10 cycles, indicating its excellent reusability. The results obtained suggested that this investigation highlights the use of MNPs as a support for the development of more economical and sustainable immobilized enzyme systems
Description
ORCID
Keywords
Carboxymethyl chitosan; Enhanced stability; Enzyme carrier; Fe3O4@Au; L-asparaginase immobilization, Carboxymethyl chitosan; Enhanced stability; Enzyme carrier; Fe3O4@Au; L-asparaginase immobilization, Fe3o4@Au, Enhanced Stability, Enzyme Carrier, Carboxymethyl Chitosan, L-Asparaginase Immobilization
Fields of Science
02 engineering and technology, 0210 nano-technology, 01 natural sciences, 0104 chemical sciences
Citation
Tarhan, T., Dik, G., Ulu, A., Tural, B., Tural, S., & Ateş, B. (2022). Newly Synthesized Multifunctional Biopolymer Coated Magnetic Core/Shell Fe3O4@ Au Nanoparticles for Evaluation of L-asparaginase Immobilization. Topics in Catalysis, 1-15.
WoS Q
Q2
Scopus Q
Q2

OpenCitations Citation Count
16
Source
Topics in Catalysis
Volume
66
Issue
Start Page
1
End Page
15
PlumX Metrics
Citations
CrossRef : 2
Scopus : 20
Captures
Mendeley Readers : 15
SCOPUS™ Citations
20
checked on Mar 04, 2026
Web of Science™ Citations
19
checked on Mar 04, 2026
Page Views
4
checked on Mar 04, 2026
Downloads
54
checked on Mar 04, 2026
Google Scholar™


