Polymer functionalized nanostructures for antibacterial application

Bacterial infection and contamination are of great concern for a wide spectrum of consumer and industrial applications ranging from healthcare, cosmetics and food products to water and maritime industry. While antibiotics remain the primary measure for bacterial control, the increasing emergence...

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Main Author: Pu, Lu
Other Authors: Duan Hongwei
Format: Theses and Dissertations
Language:English
Published: 2017
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Online Access:http://hdl.handle.net/10356/72077
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-720772023-03-03T15:57:43Z Polymer functionalized nanostructures for antibacterial application Pu, Lu Duan Hongwei School of Chemical and Biomedical Engineering DRNTU::Engineering::Materials::Biomaterials Bacterial infection and contamination are of great concern for a wide spectrum of consumer and industrial applications ranging from healthcare, cosmetics and food products to water and maritime industry. While antibiotics remain the primary measure for bacterial control, the increasing emergence of superbugs that develop resistance to antibiotics by genetic mutation creates a formidable challenge in this field, stimulating considerable interest in developing alternative antibacterial materials. The purpose of this research is to take advantages of polymer-functionalized nanostructures for antibacterial applications. Due to dramatically enhanced surface area to volume ratio of nanomaterials, functionalized nanoparticles not only show superior antibacterial performance but also possess the ability to assemble into various structures. On one hand, nanomaterials serve as scaffolds for grafting abundant and distinct polymers to enlarge localized charge density of polymers, a critical factor in antibacterial material preparation, or to assemble into distinct structures for drug loading. On the other hand, intrinsic characteristics of nanomaterials may be employed into the killing system, such as hyperthermia effect and magnetic separation ability. Hence, firstly we prepared poly(4-vinylpyridine) functionalized GO and quaternized them by different alkyl chains. The composites were not only effective for microbial control in solution, but were facile to be modified into paper form to execute toxicity. Secondly, we synthesized biodegradable cationic polycarbonates and subsequently grafted them onto superparamagnetic nanoparticles. The materials display synergetic killing effect. On one hand, cationic polymers interacted with cell membrane and led to membrane destruction. On the other hand, the superparamagnetic core generated enough heat to kill bacteria under alternating magnetic field. The combined effect reached higher activity against bacteria. Thirdly, considering polymer based nanoparticles are able to be assembled into vesicles as drug carriers, we successfully synthesized vesicles based on the biodegradable polymer grafted superparamagnetic nanoparticles, encapsulating the antibiotic norfloxacin. The vesicles achieved on- demand drug release to kill bacteria triggered by bacteria secreting lipase. Besides, functionalized with targeted antibody, the vesicles were able to capture the S. aureus and enriched in lower amount of medium, reducing the requirement of material dosage. Doctor of Philosophy (SCBE) 2017-05-25T02:38:00Z 2017-05-25T02:38:00Z 2017 Thesis Pu, L. (2017). Polymer functionalized nanostructures for antibacterial application. Doctoral thesis, Nanyang Technological University, Singapore. http://hdl.handle.net/10356/72077 10.32657/10356/72077 en 163 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Materials::Biomaterials
spellingShingle DRNTU::Engineering::Materials::Biomaterials
Pu, Lu
Polymer functionalized nanostructures for antibacterial application
description Bacterial infection and contamination are of great concern for a wide spectrum of consumer and industrial applications ranging from healthcare, cosmetics and food products to water and maritime industry. While antibiotics remain the primary measure for bacterial control, the increasing emergence of superbugs that develop resistance to antibiotics by genetic mutation creates a formidable challenge in this field, stimulating considerable interest in developing alternative antibacterial materials. The purpose of this research is to take advantages of polymer-functionalized nanostructures for antibacterial applications. Due to dramatically enhanced surface area to volume ratio of nanomaterials, functionalized nanoparticles not only show superior antibacterial performance but also possess the ability to assemble into various structures. On one hand, nanomaterials serve as scaffolds for grafting abundant and distinct polymers to enlarge localized charge density of polymers, a critical factor in antibacterial material preparation, or to assemble into distinct structures for drug loading. On the other hand, intrinsic characteristics of nanomaterials may be employed into the killing system, such as hyperthermia effect and magnetic separation ability. Hence, firstly we prepared poly(4-vinylpyridine) functionalized GO and quaternized them by different alkyl chains. The composites were not only effective for microbial control in solution, but were facile to be modified into paper form to execute toxicity. Secondly, we synthesized biodegradable cationic polycarbonates and subsequently grafted them onto superparamagnetic nanoparticles. The materials display synergetic killing effect. On one hand, cationic polymers interacted with cell membrane and led to membrane destruction. On the other hand, the superparamagnetic core generated enough heat to kill bacteria under alternating magnetic field. The combined effect reached higher activity against bacteria. Thirdly, considering polymer based nanoparticles are able to be assembled into vesicles as drug carriers, we successfully synthesized vesicles based on the biodegradable polymer grafted superparamagnetic nanoparticles, encapsulating the antibiotic norfloxacin. The vesicles achieved on- demand drug release to kill bacteria triggered by bacteria secreting lipase. Besides, functionalized with targeted antibody, the vesicles were able to capture the S. aureus and enriched in lower amount of medium, reducing the requirement of material dosage.
author2 Duan Hongwei
author_facet Duan Hongwei
Pu, Lu
format Theses and Dissertations
author Pu, Lu
author_sort Pu, Lu
title Polymer functionalized nanostructures for antibacterial application
title_short Polymer functionalized nanostructures for antibacterial application
title_full Polymer functionalized nanostructures for antibacterial application
title_fullStr Polymer functionalized nanostructures for antibacterial application
title_full_unstemmed Polymer functionalized nanostructures for antibacterial application
title_sort polymer functionalized nanostructures for antibacterial application
publishDate 2017
url http://hdl.handle.net/10356/72077
_version_ 1759853495809212416