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Hepatocyte-targeting gene transfer mediated by galactosylated poly(ethylene glycol)-graft-polyethylenimine derivative
Biscarbamate cross-linked polyethylenimine derivative (PEI-Et) has been reported as a novel nonviral vector for efficient and safe gene transfer in our previous work. However, it had no cell-specificity. To achieve specific delivery of genes to hepatocytes, galactosylated poly(ethylene glycol)-graft...
Autores principales: | , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Dove Medical Press
2013
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3617917/ https://www.ncbi.nlm.nih.gov/pubmed/23576866 http://dx.doi.org/10.2147/DDDT.S42582 |
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author | Wang, Yuqiang Su, Jing Cai, Wenwei Lu, Ping Yuan, Lifen Jin, Tuo Chen, Shuyan Sheng, Jing |
author_facet | Wang, Yuqiang Su, Jing Cai, Wenwei Lu, Ping Yuan, Lifen Jin, Tuo Chen, Shuyan Sheng, Jing |
author_sort | Wang, Yuqiang |
collection | PubMed |
description | Biscarbamate cross-linked polyethylenimine derivative (PEI-Et) has been reported as a novel nonviral vector for efficient and safe gene transfer in our previous work. However, it had no cell-specificity. To achieve specific delivery of genes to hepatocytes, galactosylated poly(ethylene glycol)-graft-polyethylenimine derivative (GPE) was prepared through modification of PEI-Et with poly(ethylene glycol) and lactobionic acid, bearing a galactose group as a hepatocyte-targeting moiety. The composition of GPE was characterized by proton nuclear magnetic resonance. The weight-average molecular weight of GPE measured with a gel permeation chromatography instrument was 9489 Da, with a polydispersity of 1.44. GPE could effectively condense plasmid DNA (pDNA) into nanoparticles. Gel retardation assay showed that GPE/pDNA complexes were completely formed at weigh ratios (w/w) over 3. The particle size of GPE/pDNA complexes was 79–100 nm and zeta potential was 6–15 mV, values which were appropriate for cellular uptake. The morphology of GPE/pDNA complexes under atomic force microscopy appeared spherical and uniform in size, with diameters of 53–65 nm. GPE displayed much higher transfection efficiency than commercially available PEI 25 kDa in BRL-3A cell lines. Importantly, GPE showed good hepatocyte specificity. Also, the polymer exhibited significantly lower cytotoxicity compared to PEI 25 kDa at the same concentration or weight ratio in BRL-3A cell lines. To sum up, our results indicated that GPE might carry great potential in safe and efficient hepatocyte-targeting gene delivery. |
format | Online Article Text |
id | pubmed-3617917 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2013 |
publisher | Dove Medical Press |
record_format | MEDLINE/PubMed |
spelling | pubmed-36179172013-04-10 Hepatocyte-targeting gene transfer mediated by galactosylated poly(ethylene glycol)-graft-polyethylenimine derivative Wang, Yuqiang Su, Jing Cai, Wenwei Lu, Ping Yuan, Lifen Jin, Tuo Chen, Shuyan Sheng, Jing Drug Des Devel Ther Original Research Biscarbamate cross-linked polyethylenimine derivative (PEI-Et) has been reported as a novel nonviral vector for efficient and safe gene transfer in our previous work. However, it had no cell-specificity. To achieve specific delivery of genes to hepatocytes, galactosylated poly(ethylene glycol)-graft-polyethylenimine derivative (GPE) was prepared through modification of PEI-Et with poly(ethylene glycol) and lactobionic acid, bearing a galactose group as a hepatocyte-targeting moiety. The composition of GPE was characterized by proton nuclear magnetic resonance. The weight-average molecular weight of GPE measured with a gel permeation chromatography instrument was 9489 Da, with a polydispersity of 1.44. GPE could effectively condense plasmid DNA (pDNA) into nanoparticles. Gel retardation assay showed that GPE/pDNA complexes were completely formed at weigh ratios (w/w) over 3. The particle size of GPE/pDNA complexes was 79–100 nm and zeta potential was 6–15 mV, values which were appropriate for cellular uptake. The morphology of GPE/pDNA complexes under atomic force microscopy appeared spherical and uniform in size, with diameters of 53–65 nm. GPE displayed much higher transfection efficiency than commercially available PEI 25 kDa in BRL-3A cell lines. Importantly, GPE showed good hepatocyte specificity. Also, the polymer exhibited significantly lower cytotoxicity compared to PEI 25 kDa at the same concentration or weight ratio in BRL-3A cell lines. To sum up, our results indicated that GPE might carry great potential in safe and efficient hepatocyte-targeting gene delivery. Dove Medical Press 2013-03-26 /pmc/articles/PMC3617917/ /pubmed/23576866 http://dx.doi.org/10.2147/DDDT.S42582 Text en © 2013 Wang et al, publisher and licensee Dove Medical Press Ltd This is an Open Access article which permits unrestricted noncommercial use, provided the original work is properly cited. |
spellingShingle | Original Research Wang, Yuqiang Su, Jing Cai, Wenwei Lu, Ping Yuan, Lifen Jin, Tuo Chen, Shuyan Sheng, Jing Hepatocyte-targeting gene transfer mediated by galactosylated poly(ethylene glycol)-graft-polyethylenimine derivative |
title | Hepatocyte-targeting gene transfer mediated by galactosylated poly(ethylene
glycol)-graft-polyethylenimine derivative |
title_full | Hepatocyte-targeting gene transfer mediated by galactosylated poly(ethylene
glycol)-graft-polyethylenimine derivative |
title_fullStr | Hepatocyte-targeting gene transfer mediated by galactosylated poly(ethylene
glycol)-graft-polyethylenimine derivative |
title_full_unstemmed | Hepatocyte-targeting gene transfer mediated by galactosylated poly(ethylene
glycol)-graft-polyethylenimine derivative |
title_short | Hepatocyte-targeting gene transfer mediated by galactosylated poly(ethylene
glycol)-graft-polyethylenimine derivative |
title_sort | hepatocyte-targeting gene transfer mediated by galactosylated poly(ethylene
glycol)-graft-polyethylenimine derivative |
topic | Original Research |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3617917/ https://www.ncbi.nlm.nih.gov/pubmed/23576866 http://dx.doi.org/10.2147/DDDT.S42582 |
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