Advanced Techniques for Glucose Oxidase Immobilization: Evolution, Computational Integration, and Biomedical Applications

Glucose oxidase is a crucial enzyme used in industries such as chemicals, pharmaceuticals, food, and biotechnology due to its ability to oxidize glucose into hydrogen peroxide and gluconic acid (C6H12O7). However, its limited and costly production necessitates strategies for improved efficiency. Imm...

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Main Authors: G Sreenivasulu, R. Ramakoteswara Rao
Format: Article
Language:English
Published: Bilijipub publisher 2024-09-01
Series:Advances in Engineering and Intelligence Systems
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Online Access:https://aeis.bilijipub.com/article_206708_4ce0fd649453ae7fab4162341c4009e0.pdf
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author G Sreenivasulu
R. Ramakoteswara Rao
author_facet G Sreenivasulu
R. Ramakoteswara Rao
author_sort G Sreenivasulu
collection DOAJ
description Glucose oxidase is a crucial enzyme used in industries such as chemicals, pharmaceuticals, food, and biotechnology due to its ability to oxidize glucose into hydrogen peroxide and gluconic acid (C6H12O7). However, its limited and costly production necessitates strategies for improved efficiency. Immobilization, which involves attaching enzymes to surfaces, is a key method that enhances glucose oxidase's activity, stability, and reusability, making it more practical for repeated industrial use. This study comprehensively reviews glucose oxidase immobilization techniques, emphasizing their evolution, advanced methods, and diverse applications, particularly in biomedical fields. By immobilizing glucose oxidase, its stability, activity, and reusability are significantly enhanced, addressing the challenges of enzyme production and operational efficiency. The review discusses various immobilization methods, including physical adsorption, covalent binding, entrapment, and encapsulation, comparing their advantages and limitations. Incorporating nanomaterials and computational methods, such as molecular modeling and simulations, further optimizes the immobilization process, providing insights into enzyme-support interactions and improving performance in applications like biosensors, biofuel cells, and drug delivery systems. The study also explores future trends, including artificial intelligence and innovative support materials, to drive advancements in glucose oxidase immobilization. By integrating these techniques, the study aims to pave the way for more effective and versatile biomedical solutions, contributing to the ongoing evolution of enzyme immobilization technology.
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spelling doaj-art-d800942499184f75ae8abaee4f57ee692025-02-12T08:48:04ZengBilijipub publisherAdvances in Engineering and Intelligence Systems2821-02632024-09-0100303829310.22034/aeis.2024.473823.1216206708Advanced Techniques for Glucose Oxidase Immobilization: Evolution, Computational Integration, and Biomedical ApplicationsG Sreenivasulu0R. Ramakoteswara Rao1Department of Chemical Engineering, SVU College of Engineering, Sri Venkateswara University, Tirupati, Andhra Pradesh, 517502, IndiaDepartment of Chemical Engineering, SVU College of Engineering, Sri Venkateswara University, Tirupati, Andhra Pradesh, 517502, IndiaGlucose oxidase is a crucial enzyme used in industries such as chemicals, pharmaceuticals, food, and biotechnology due to its ability to oxidize glucose into hydrogen peroxide and gluconic acid (C6H12O7). However, its limited and costly production necessitates strategies for improved efficiency. Immobilization, which involves attaching enzymes to surfaces, is a key method that enhances glucose oxidase's activity, stability, and reusability, making it more practical for repeated industrial use. This study comprehensively reviews glucose oxidase immobilization techniques, emphasizing their evolution, advanced methods, and diverse applications, particularly in biomedical fields. By immobilizing glucose oxidase, its stability, activity, and reusability are significantly enhanced, addressing the challenges of enzyme production and operational efficiency. The review discusses various immobilization methods, including physical adsorption, covalent binding, entrapment, and encapsulation, comparing their advantages and limitations. Incorporating nanomaterials and computational methods, such as molecular modeling and simulations, further optimizes the immobilization process, providing insights into enzyme-support interactions and improving performance in applications like biosensors, biofuel cells, and drug delivery systems. The study also explores future trends, including artificial intelligence and innovative support materials, to drive advancements in glucose oxidase immobilization. By integrating these techniques, the study aims to pave the way for more effective and versatile biomedical solutions, contributing to the ongoing evolution of enzyme immobilization technology.https://aeis.bilijipub.com/article_206708_4ce0fd649453ae7fab4162341c4009e0.pdfbiomedical applicationscomputational modelingdrug delivery systemsenzyme immobilizationglucose oxidasenanoparticles
spellingShingle G Sreenivasulu
R. Ramakoteswara Rao
Advanced Techniques for Glucose Oxidase Immobilization: Evolution, Computational Integration, and Biomedical Applications
Advances in Engineering and Intelligence Systems
biomedical applications
computational modeling
drug delivery systems
enzyme immobilization
glucose oxidase
nanoparticles
title Advanced Techniques for Glucose Oxidase Immobilization: Evolution, Computational Integration, and Biomedical Applications
title_full Advanced Techniques for Glucose Oxidase Immobilization: Evolution, Computational Integration, and Biomedical Applications
title_fullStr Advanced Techniques for Glucose Oxidase Immobilization: Evolution, Computational Integration, and Biomedical Applications
title_full_unstemmed Advanced Techniques for Glucose Oxidase Immobilization: Evolution, Computational Integration, and Biomedical Applications
title_short Advanced Techniques for Glucose Oxidase Immobilization: Evolution, Computational Integration, and Biomedical Applications
title_sort advanced techniques for glucose oxidase immobilization evolution computational integration and biomedical applications
topic biomedical applications
computational modeling
drug delivery systems
enzyme immobilization
glucose oxidase
nanoparticles
url https://aeis.bilijipub.com/article_206708_4ce0fd649453ae7fab4162341c4009e0.pdf
work_keys_str_mv AT gsreenivasulu advancedtechniquesforglucoseoxidaseimmobilizationevolutioncomputationalintegrationandbiomedicalapplications
AT rramakoteswararao advancedtechniquesforglucoseoxidaseimmobilizationevolutioncomputationalintegrationandbiomedicalapplications