Immobilization of lipase enzyme from candida antarctica on superparamagnetic maghemite nanoparticles and its behaviour in aqueous and organic catalyses

Biocatalysis has emerged as a green technology that is able to replace hazardous and extreme conditions faced in chemical based catalysis. By using magnetized nanomaterials, enhancement on the downstream processing is evident as it eases the immobilized enzyme separation from reaction mixture withou...

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Main Author: Kamel Ariffin, Maryam Farhana
Format: Thesis
Language:English
Published: 2021
Subjects:
Online Access:http://eprints.utm.my/101931/
http://eprints.utm.my/101931/1/MaryamFarhanaPSChE2021.pdf.pdf
http://dms.library.utm.my:8080/vital/access/manager/Repository/vital:145597
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spelling ftunivmalaysia:oai:generic.eprints.org:101931 2023-11-12T04:07:28+01:00 Immobilization of lipase enzyme from candida antarctica on superparamagnetic maghemite nanoparticles and its behaviour in aqueous and organic catalyses Kamel Ariffin, Maryam Farhana 2021 application/pdf http://eprints.utm.my/101931/ http://eprints.utm.my/101931/1/MaryamFarhanaPSChE2021.pdf.pdf http://dms.library.utm.my:8080/vital/access/manager/Repository/vital:145597 en eng http://eprints.utm.my/101931/1/MaryamFarhanaPSChE2021.pdf.pdf Kamel Ariffin, Maryam Farhana (2021) Immobilization of lipase enzyme from candida antarctica on superparamagnetic maghemite nanoparticles and its behaviour in aqueous and organic catalyses. PhD thesis, Universiti Teknologi Malaysia. TP Chemical technology Thesis NonPeerReviewed 2021 ftunivmalaysia 2023-10-24T18:13:55Z Biocatalysis has emerged as a green technology that is able to replace hazardous and extreme conditions faced in chemical based catalysis. By using magnetized nanomaterials, enhancement on the downstream processing is evident as it eases the immobilized enzyme separation from reaction mixture without having to interfere reaction cavity directly and is able to prepare the enzyme for wide working environment applications. Immobilization of lipase enzyme on superparamagnetic iron oxide nanoparticles is important to maintain the lipase open form as its active sites lie within a conserved catalytic triad which occurs naturally in a closed state. Optimization on synthesis of nanomagnetic materials was conducted using 2.45 GHz microwave. The nanoparticles were synthesized in an aqueous solution of FeCl3.6H2O as precursor and NH3 as nucleating agent. Optimization runs were designed and statistically analyzed using face centered central composite design in Minitab® software. The optimized conditions for microwave assisted synthesis of nanomagnet materials were 100 oC reaction temperature, 20 minutes reaction time at 631 W microwave power producing 0.371 g of magnetic nanoparticles. Based on the characteristic studies done on synthesized nanomagnets by using X-Ray diffraction crystallography, field emission scanning electrom microscopy, attenuated total reflectance – fourier transform infrared spectroscopy and vibrating sample magnetometer, the nanoparticles possessed the same structure as standard maghemite with good magnetic properties. Subsequent maghemite complex cross-linking with glutaraldehyde provide suitable environment for the enzyme to be immobilized. Optimization on the conditions for lipase immobilization was carried out using response surface methodology experimental design to obtain the precise optimized condition for the process. Selected process variables involved were incubation time, reaction temperature and glutaraldehyde content and optimized conditions obtained for lipase immobilization were at 5 ... Thesis Antarc* Antarctica Universiti Teknologi Malaysia: Institutional Repository
institution Open Polar
collection Universiti Teknologi Malaysia: Institutional Repository
op_collection_id ftunivmalaysia
language English
topic TP Chemical technology
spellingShingle TP Chemical technology
Kamel Ariffin, Maryam Farhana
Immobilization of lipase enzyme from candida antarctica on superparamagnetic maghemite nanoparticles and its behaviour in aqueous and organic catalyses
topic_facet TP Chemical technology
description Biocatalysis has emerged as a green technology that is able to replace hazardous and extreme conditions faced in chemical based catalysis. By using magnetized nanomaterials, enhancement on the downstream processing is evident as it eases the immobilized enzyme separation from reaction mixture without having to interfere reaction cavity directly and is able to prepare the enzyme for wide working environment applications. Immobilization of lipase enzyme on superparamagnetic iron oxide nanoparticles is important to maintain the lipase open form as its active sites lie within a conserved catalytic triad which occurs naturally in a closed state. Optimization on synthesis of nanomagnetic materials was conducted using 2.45 GHz microwave. The nanoparticles were synthesized in an aqueous solution of FeCl3.6H2O as precursor and NH3 as nucleating agent. Optimization runs were designed and statistically analyzed using face centered central composite design in Minitab® software. The optimized conditions for microwave assisted synthesis of nanomagnet materials were 100 oC reaction temperature, 20 minutes reaction time at 631 W microwave power producing 0.371 g of magnetic nanoparticles. Based on the characteristic studies done on synthesized nanomagnets by using X-Ray diffraction crystallography, field emission scanning electrom microscopy, attenuated total reflectance – fourier transform infrared spectroscopy and vibrating sample magnetometer, the nanoparticles possessed the same structure as standard maghemite with good magnetic properties. Subsequent maghemite complex cross-linking with glutaraldehyde provide suitable environment for the enzyme to be immobilized. Optimization on the conditions for lipase immobilization was carried out using response surface methodology experimental design to obtain the precise optimized condition for the process. Selected process variables involved were incubation time, reaction temperature and glutaraldehyde content and optimized conditions obtained for lipase immobilization were at 5 ...
format Thesis
author Kamel Ariffin, Maryam Farhana
author_facet Kamel Ariffin, Maryam Farhana
author_sort Kamel Ariffin, Maryam Farhana
title Immobilization of lipase enzyme from candida antarctica on superparamagnetic maghemite nanoparticles and its behaviour in aqueous and organic catalyses
title_short Immobilization of lipase enzyme from candida antarctica on superparamagnetic maghemite nanoparticles and its behaviour in aqueous and organic catalyses
title_full Immobilization of lipase enzyme from candida antarctica on superparamagnetic maghemite nanoparticles and its behaviour in aqueous and organic catalyses
title_fullStr Immobilization of lipase enzyme from candida antarctica on superparamagnetic maghemite nanoparticles and its behaviour in aqueous and organic catalyses
title_full_unstemmed Immobilization of lipase enzyme from candida antarctica on superparamagnetic maghemite nanoparticles and its behaviour in aqueous and organic catalyses
title_sort immobilization of lipase enzyme from candida antarctica on superparamagnetic maghemite nanoparticles and its behaviour in aqueous and organic catalyses
publishDate 2021
url http://eprints.utm.my/101931/
http://eprints.utm.my/101931/1/MaryamFarhanaPSChE2021.pdf.pdf
http://dms.library.utm.my:8080/vital/access/manager/Repository/vital:145597
genre Antarc*
Antarctica
genre_facet Antarc*
Antarctica
op_relation http://eprints.utm.my/101931/1/MaryamFarhanaPSChE2021.pdf.pdf
Kamel Ariffin, Maryam Farhana (2021) Immobilization of lipase enzyme from candida antarctica on superparamagnetic maghemite nanoparticles and its behaviour in aqueous and organic catalyses. PhD thesis, Universiti Teknologi Malaysia.
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