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Tailored-design of molecularly imprinted polymers with induced cavities of high conformational stability as new platforms for chemical sensing applications

Molecularly imprinted polymers (MIP) are highly promising materials that have many applications in different fields such as chromatography, catalysis, chemical and biochemical sensing, or even drug delivery. These materials can be tailored to contain intrinsic nano scaled cavities within their struc...

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Main Author: Selim, Ghada ALTaher
Format: Thesis
Published: AUC Knowledge Fountain 2016
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access_status_str Open Access
author Selim, Ghada ALTaher
author_browse Selim, Ghada ALTaher
author_facet Selim, Ghada ALTaher
author_sort Selim, Ghada ALTaher
collection Thesis
dc_rights_str_mv The author retains all rights with regard to copyright. The author certifies that written permission from the owner(s) of third-party copyrighted matter included in the thesis, dissertation, paper, or record of study has been obtained. The author further certifies that IRB approval has been obtained for this thesis, or that IRB approval is not necessary for this thesis. Insofar as this thesis, dissertation, paper, or record of study is an educational record as defined in the Family Educational Rights and Privacy Act (FERPA) (20 USC 1232g), the author has granted consent to disclosure of it to anyone who requests a copy.
description Molecularly imprinted polymers (MIP) are highly promising materials that have many applications in different fields such as chromatography, catalysis, chemical and biochemical sensing, or even drug delivery. These materials can be tailored to contain intrinsic nano scaled cavities within their structure. These cavities are highly interesting, because they can be made selective for an intended template. Thus, MIP are deeply researched to replace proteins in sensing applications. Proteins are highly delicate and labile to slight changes in the surrounding media, however MIP are polymer based. Therefore, they are easy to handle and mechanically more stable. In addition, they are much cheaper. Still MIP are not fully ready to replace proteins, because their selectivities are usually lower than that of proteins. The current study aims at controlling the physical and chemical properties of the cavities within MIP. Cavities in MIP are the template binding sites, which are the main determinants of the performance of MIP. Two parameters were selected to be studied and to reflect MIP performance; conformational stability and the binding capacity of the cavities. Conformational stability to the best of our Knowledge has never been studied in MIP. This feature was intended to be studied, in order to get information about the ability of different MIP systems to keep the conformational shape and specifity of their nanoscaled cavities. The study began first by a theoretical investigation of a library of monomers using computational modeling, and then was followed by a practical investigation. The theoretical investigation screened a library of monomers, and the best scoring two monomers with regards to conformational stability and binding energy were selected for practical investigation. The practical investigations aimed at validating the correlation between the theoretical performance of the selected candidates, and the practical performance of their MIP in a media containing the selected template, through measuring the MIP's binding capacities. The study could show the significant importance of assessing the conformational stabilities of the MIP building blocks (monomers), and that they directly affected the binding capacities of the studied MIP. Thus it can be suggested that research should not only focus on assessing the binding capacities of MIP, but also special focus should be given to studying the conformational stability of the binding sites.
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institution American University in Cairo (Egypt)
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license_str Other — see source repository
provenance_str_mv Harvested via OAI-PMH from AUC Knowledge Fountain — bepress
publishDate 2016
publishDateRange 2016
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spelling oai:fount.aucegypt.edu:etds-1340 Tailored-design of molecularly imprinted polymers with induced cavities of high conformational stability as new platforms for chemical sensing applications Selim, Ghada ALTaher Molecularly imprinted polymers (MIP) are highly promising materials that have many applications in different fields such as chromatography, catalysis, chemical and biochemical sensing, or even drug delivery. These materials can be tailored to contain intrinsic nano scaled cavities within their structure. These cavities are highly interesting, because they can be made selective for an intended template. Thus, MIP are deeply researched to replace proteins in sensing applications. Proteins are highly delicate and labile to slight changes in the surrounding media, however MIP are polymer based. Therefore, they are easy to handle and mechanically more stable. In addition, they are much cheaper. Still MIP are not fully ready to replace proteins, because their selectivities are usually lower than that of proteins. The current study aims at controlling the physical and chemical properties of the cavities within MIP. Cavities in MIP are the template binding sites, which are the main determinants of the performance of MIP. Two parameters were selected to be studied and to reflect MIP performance; conformational stability and the binding capacity of the cavities. Conformational stability to the best of our Knowledge has never been studied in MIP. This feature was intended to be studied, in order to get information about the ability of different MIP systems to keep the conformational shape and specifity of their nanoscaled cavities. The study began first by a theoretical investigation of a library of monomers using computational modeling, and then was followed by a practical investigation. The theoretical investigation screened a library of monomers, and the best scoring two monomers with regards to conformational stability and binding energy were selected for practical investigation. The practical investigations aimed at validating the correlation between the theoretical performance of the selected candidates, and the practical performance of their MIP in a media containing the selected template, through measuring the MIP's binding capacities. The study could show the significant importance of assessing the conformational stabilities of the MIP building blocks (monomers), and that they directly affected the binding capacities of the studied MIP. Thus it can be suggested that research should not only focus on assessing the binding capacities of MIP, but also special focus should be given to studying the conformational stability of the binding sites. 2016-06-01T07:00:00Z thesis application/pdf https://fount.aucegypt.edu/etds/341 https://fount.aucegypt.edu/context/etds/article/1340/viewcontent/Thesis.pdf The author retains all rights with regard to copyright. The author certifies that written permission from the owner(s) of third-party copyrighted matter included in the thesis, dissertation, paper, or record of study has been obtained. The author further certifies that IRB approval has been obtained for this thesis, or that IRB approval is not necessary for this thesis. Insofar as this thesis, dissertation, paper, or record of study is an educational record as defined in the Family Educational Rights and Privacy Act (FERPA) (20 USC 1232g), the author has granted consent to disclosure of it to anyone who requests a copy. Theses and Dissertations AUC Knowledge Fountain MIP Modeling
spellingShingle MIP
Modeling
Selim, Ghada ALTaher
Tailored-design of molecularly imprinted polymers with induced cavities of high conformational stability as new platforms for chemical sensing applications
title Tailored-design of molecularly imprinted polymers with induced cavities of high conformational stability as new platforms for chemical sensing applications
title_full Tailored-design of molecularly imprinted polymers with induced cavities of high conformational stability as new platforms for chemical sensing applications
title_fullStr Tailored-design of molecularly imprinted polymers with induced cavities of high conformational stability as new platforms for chemical sensing applications
title_full_unstemmed Tailored-design of molecularly imprinted polymers with induced cavities of high conformational stability as new platforms for chemical sensing applications
title_short Tailored-design of molecularly imprinted polymers with induced cavities of high conformational stability as new platforms for chemical sensing applications
title_sort tailored design of molecularly imprinted polymers with induced cavities of high conformational stability as new platforms for chemical sensing applications
topic MIP
Modeling
url https://fount.aucegypt.edu/etds/341
https://fount.aucegypt.edu/context/etds/article/1340/viewcontent/Thesis.pdf
work_keys_str_mv AT selimghadaaltaher tailoreddesignofmolecularlyimprintedpolymerswithinducedcavitiesofhighconformationalstabilityasnewplatformsforchemicalsensingapplications