Iron oxide nanoparticles improved biocompatibility and removal of middle molecule uremic toxin of polysulfone hollow fiber membranes

Middle molecule uremic toxins constitute to a quarter of uremic toxins present in human blood. In a condition where these uremic toxins accumulate in bloodstream due to renal failure, blood purification process using a high performance membrane is required. Here, we develop biocompatible mixed matri...

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Main Authors: Said, Noresah, Zainol Abidin, Muhammad Nidzhom, Hasbullah, Hasrinah, Ismail, Ahmad Fauzi, Goh, Pei Sean, Othman, Mohd. Hafiz Dzarfan, Abdullah, Mohd. Sohaimi, Ng, Be Cheer, Sheikh Abdul Kadir, Siti Hamimah, Kamal, Fatmawati
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Published: John Wiley and Sons Inc. 2019
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Online Access:http://eprints.utm.my/id/eprint/89296/
http://dx.doi.org/10.1002/app.48234
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spelling my.utm.892962021-02-09T08:25:54Z http://eprints.utm.my/id/eprint/89296/ Iron oxide nanoparticles improved biocompatibility and removal of middle molecule uremic toxin of polysulfone hollow fiber membranes Said, Noresah Zainol Abidin, Muhammad Nidzhom Hasbullah, Hasrinah Ismail, Ahmad Fauzi Goh, Pei Sean Othman, Mohd. Hafiz Dzarfan Abdullah, Mohd. Sohaimi Ng, Be Cheer Sheikh Abdul Kadir, Siti Hamimah Kamal, Fatmawati TP Chemical technology Middle molecule uremic toxins constitute to a quarter of uremic toxins present in human blood. In a condition where these uremic toxins accumulate in bloodstream due to renal failure, blood purification process using a high performance membrane is required. Here, we develop biocompatible mixed matrix membranes (MMMs) made up of polysulfone (PSf) and iron oxide nanoparticles (Fe2O3 NPs) with the focus to remove middle molecule uremic toxin effectively. The MMMs were evaluated in terms of their biocompatibility and separation performance. At higher Fe2O3 NPs loading, the MMM displayed a huge reduction of protein adsorption and platelet adhesion while maintaining normal blood coagulation time and acceptable complement activation. The optimized MMM exhibited high permeability (110.47 L m−2 h−1 bar−1), protein retention (99.9%) and demonstrated excellent clearance of urea (82%) and lysozyme (46.7%). The PSf/Fe2O3 MMM is proven to have promising attributes for hemodialysis application. John Wiley and Sons Inc. 2019-12 Article PeerReviewed Said, Noresah and Zainol Abidin, Muhammad Nidzhom and Hasbullah, Hasrinah and Ismail, Ahmad Fauzi and Goh, Pei Sean and Othman, Mohd. Hafiz Dzarfan and Abdullah, Mohd. Sohaimi and Ng, Be Cheer and Sheikh Abdul Kadir, Siti Hamimah and Kamal, Fatmawati (2019) Iron oxide nanoparticles improved biocompatibility and removal of middle molecule uremic toxin of polysulfone hollow fiber membranes. Journal of Applied Polymer Science, 136 (48). p. 48234. ISSN 0021-8995 http://dx.doi.org/10.1002/app.48234
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TP Chemical technology
spellingShingle TP Chemical technology
Said, Noresah
Zainol Abidin, Muhammad Nidzhom
Hasbullah, Hasrinah
Ismail, Ahmad Fauzi
Goh, Pei Sean
Othman, Mohd. Hafiz Dzarfan
Abdullah, Mohd. Sohaimi
Ng, Be Cheer
Sheikh Abdul Kadir, Siti Hamimah
Kamal, Fatmawati
Iron oxide nanoparticles improved biocompatibility and removal of middle molecule uremic toxin of polysulfone hollow fiber membranes
description Middle molecule uremic toxins constitute to a quarter of uremic toxins present in human blood. In a condition where these uremic toxins accumulate in bloodstream due to renal failure, blood purification process using a high performance membrane is required. Here, we develop biocompatible mixed matrix membranes (MMMs) made up of polysulfone (PSf) and iron oxide nanoparticles (Fe2O3 NPs) with the focus to remove middle molecule uremic toxin effectively. The MMMs were evaluated in terms of their biocompatibility and separation performance. At higher Fe2O3 NPs loading, the MMM displayed a huge reduction of protein adsorption and platelet adhesion while maintaining normal blood coagulation time and acceptable complement activation. The optimized MMM exhibited high permeability (110.47 L m−2 h−1 bar−1), protein retention (99.9%) and demonstrated excellent clearance of urea (82%) and lysozyme (46.7%). The PSf/Fe2O3 MMM is proven to have promising attributes for hemodialysis application.
format Article
author Said, Noresah
Zainol Abidin, Muhammad Nidzhom
Hasbullah, Hasrinah
Ismail, Ahmad Fauzi
Goh, Pei Sean
Othman, Mohd. Hafiz Dzarfan
Abdullah, Mohd. Sohaimi
Ng, Be Cheer
Sheikh Abdul Kadir, Siti Hamimah
Kamal, Fatmawati
author_facet Said, Noresah
Zainol Abidin, Muhammad Nidzhom
Hasbullah, Hasrinah
Ismail, Ahmad Fauzi
Goh, Pei Sean
Othman, Mohd. Hafiz Dzarfan
Abdullah, Mohd. Sohaimi
Ng, Be Cheer
Sheikh Abdul Kadir, Siti Hamimah
Kamal, Fatmawati
author_sort Said, Noresah
title Iron oxide nanoparticles improved biocompatibility and removal of middle molecule uremic toxin of polysulfone hollow fiber membranes
title_short Iron oxide nanoparticles improved biocompatibility and removal of middle molecule uremic toxin of polysulfone hollow fiber membranes
title_full Iron oxide nanoparticles improved biocompatibility and removal of middle molecule uremic toxin of polysulfone hollow fiber membranes
title_fullStr Iron oxide nanoparticles improved biocompatibility and removal of middle molecule uremic toxin of polysulfone hollow fiber membranes
title_full_unstemmed Iron oxide nanoparticles improved biocompatibility and removal of middle molecule uremic toxin of polysulfone hollow fiber membranes
title_sort iron oxide nanoparticles improved biocompatibility and removal of middle molecule uremic toxin of polysulfone hollow fiber membranes
publisher John Wiley and Sons Inc.
publishDate 2019
url http://eprints.utm.my/id/eprint/89296/
http://dx.doi.org/10.1002/app.48234
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score 13.211869