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Mechanism of Introduction of Exogenous Genes into Cultured Cells Using DEAE-Dextran-MMA Graft Copolymer as Non-Viral Gene Carrier

Comparative investigations were carried out regarding the efficiency of introduction of exogenous genes into cultured cells using a cationic polysaccharide DEAE-dextran-MMA (methyl methacrylate ester) graft copolymer (2-diethylaminoethyl-dextran-methyl methacrylate graft copolymer; DDMC) as a nonvir...

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Autores principales: Eshita, Yuki, Higashihara, Junko, Onishi, Masayasu, Mizuno, Masaaki, Yoshida, Jun, Takasaki, Tomohiko, Kubota, Naoji, Onishi, Yasuhiko
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Molecular Diversity Preservation International 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6254718/
https://www.ncbi.nlm.nih.gov/pubmed/19633632
http://dx.doi.org/10.3390/molecules14072669
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author Eshita, Yuki
Higashihara, Junko
Onishi, Masayasu
Mizuno, Masaaki
Yoshida, Jun
Takasaki, Tomohiko
Kubota, Naoji
Onishi, Yasuhiko
author_facet Eshita, Yuki
Higashihara, Junko
Onishi, Masayasu
Mizuno, Masaaki
Yoshida, Jun
Takasaki, Tomohiko
Kubota, Naoji
Onishi, Yasuhiko
author_sort Eshita, Yuki
collection PubMed
description Comparative investigations were carried out regarding the efficiency of introduction of exogenous genes into cultured cells using a cationic polysaccharide DEAE-dextran-MMA (methyl methacrylate ester) graft copolymer (2-diethylaminoethyl-dextran-methyl methacrylate graft copolymer; DDMC) as a nonviral carrier for gene introduction. The results confirmed that the gene introduction efficiency was improved with DDMC relative to DEAE-dextran. Comparative investigations were carried out using various concentrations of DDMC and DNA in the introduction of DNA encoding luciferase (pGL3 control vector; Promega) into COS-7 cells derived from African green monkey kidney cells. The complex formation reaction is thought to be directly proportional to the transformation rate, but the complex formation reaction between DDMC and DNA is significantly influenced by hydrophobic bonding strength along with hydrogen bonding strength and Coulomb forces due to the hydrophobicity of the grafted MMA sections. It is thought that the reaction is a Michaelis-Menten type complex formation reaction described by the following equation: Complex amount = K1 (DNA concentration)(DDMC concentration). In support of this equation, it was confirmed that the amount of formed complex was proportional to the RLU value.
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spelling pubmed-62547182018-11-30 Mechanism of Introduction of Exogenous Genes into Cultured Cells Using DEAE-Dextran-MMA Graft Copolymer as Non-Viral Gene Carrier Eshita, Yuki Higashihara, Junko Onishi, Masayasu Mizuno, Masaaki Yoshida, Jun Takasaki, Tomohiko Kubota, Naoji Onishi, Yasuhiko Molecules Article Comparative investigations were carried out regarding the efficiency of introduction of exogenous genes into cultured cells using a cationic polysaccharide DEAE-dextran-MMA (methyl methacrylate ester) graft copolymer (2-diethylaminoethyl-dextran-methyl methacrylate graft copolymer; DDMC) as a nonviral carrier for gene introduction. The results confirmed that the gene introduction efficiency was improved with DDMC relative to DEAE-dextran. Comparative investigations were carried out using various concentrations of DDMC and DNA in the introduction of DNA encoding luciferase (pGL3 control vector; Promega) into COS-7 cells derived from African green monkey kidney cells. The complex formation reaction is thought to be directly proportional to the transformation rate, but the complex formation reaction between DDMC and DNA is significantly influenced by hydrophobic bonding strength along with hydrogen bonding strength and Coulomb forces due to the hydrophobicity of the grafted MMA sections. It is thought that the reaction is a Michaelis-Menten type complex formation reaction described by the following equation: Complex amount = K1 (DNA concentration)(DDMC concentration). In support of this equation, it was confirmed that the amount of formed complex was proportional to the RLU value. Molecular Diversity Preservation International 2009-07-23 /pmc/articles/PMC6254718/ /pubmed/19633632 http://dx.doi.org/10.3390/molecules14072669 Text en © 2009 by the authors; licensee Molecular Diversity Preservation International, Basel, Switzerland. This article is an open-access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/3.0/).
spellingShingle Article
Eshita, Yuki
Higashihara, Junko
Onishi, Masayasu
Mizuno, Masaaki
Yoshida, Jun
Takasaki, Tomohiko
Kubota, Naoji
Onishi, Yasuhiko
Mechanism of Introduction of Exogenous Genes into Cultured Cells Using DEAE-Dextran-MMA Graft Copolymer as Non-Viral Gene Carrier
title Mechanism of Introduction of Exogenous Genes into Cultured Cells Using DEAE-Dextran-MMA Graft Copolymer as Non-Viral Gene Carrier
title_full Mechanism of Introduction of Exogenous Genes into Cultured Cells Using DEAE-Dextran-MMA Graft Copolymer as Non-Viral Gene Carrier
title_fullStr Mechanism of Introduction of Exogenous Genes into Cultured Cells Using DEAE-Dextran-MMA Graft Copolymer as Non-Viral Gene Carrier
title_full_unstemmed Mechanism of Introduction of Exogenous Genes into Cultured Cells Using DEAE-Dextran-MMA Graft Copolymer as Non-Viral Gene Carrier
title_short Mechanism of Introduction of Exogenous Genes into Cultured Cells Using DEAE-Dextran-MMA Graft Copolymer as Non-Viral Gene Carrier
title_sort mechanism of introduction of exogenous genes into cultured cells using deae-dextran-mma graft copolymer as non-viral gene carrier
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6254718/
https://www.ncbi.nlm.nih.gov/pubmed/19633632
http://dx.doi.org/10.3390/molecules14072669
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