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Floating Magnetic Membrane for Rapid Enrichment of Pathogenic Bacteria SCIE SCOPUS KCI

Title
Floating Magnetic Membrane for Rapid Enrichment of Pathogenic Bacteria
Authors
Kim, SuhyunLee, JeilKoo, BonhanKwon, DonghoonJEON, SANGMINShin, YongJoo, Jinmyoung
Date Issued
2021-02
Publisher
KOREAN BIOCHIP SOCIETY-KBCS
Abstract
Efficient separation and enrichment of pathogenic bacteria from complex matrices are crucial for the detection and downstream biomedical investigations. Herein, we report a floating magnetic membrane comprised of superparamagnetic nanoparticles and cationic polymer chains for rapid capture and enrichment of pathogenic bacteria under continuous flow. Magnetic nanoparticles combined with polymeric chains have shown affordable features to capture, release, and concentrate the pathogens by applying an external magnetic field. We have verified the modulated porous characteristics of the floating magnetic membrane depending on the molecular weight of cationic polymer chains and demonstrated rapid enrichment of pathogenic bacteria from aqueous fluid in the capillary glass tube (> 50-fold). Structural flexibility of the magnetic membrane allows the liquid and smaller species to pass through but efficiently induces binding of the bacteria on the antibody-functionalized magnetic nanoparticles of the floating virtual web. The magnetic membrane enables size-selective filtration and target-specific trapping through ionic exchange and immunomagnetic isolation. This study implies that spatiotemporal application of the magnetic membrane for rapid enrichment of biological targets in a large volume of continuous flow using microfluidic devices and biochips.
Keywords
Biochips; Ion exchange; Magnetic nanoparticles; Magnetism; Membranes; Microfiltration; Polymers; Biomedical investigations; External magnetic field; Immunomagnetic isolation; Micro-fluidic devices; Porous characteristics; Spatio-temporal applications; Structural flexibilities; Superparamagnetic nanoparticles; Bacteria
URI
https://oasis.postech.ac.kr/handle/2014.oak/105182
DOI
10.1007/s13206-021-00003-6
ISSN
1976-0280
Article Type
Article
Citation
BIOCHIP JOURNAL, vol. 15, no. 1, page. 61 - 68, 2021-02
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전상민JEON, SANGMIN
Dept. of Chemical Enginrg
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