Cargando…

A brain glioma gene delivery strategy by angiopep-2 and TAT-modified magnetic lipid-polymer hybrid nanoparticles

Owing to the existence of the blood–brain barrier (BBB), most treatments cannot achieve significant effects on gliomas. In this study, synergistic multitarget Ang-TAT-Fe(3)O(4)-pDNA-(ss)373 lipid-polymer hybrid nanoparticles (LPNPs) were designed to penetrate the BBB and deliver therapeutic genes to...

Descripción completa

Detalles Bibliográficos
Autores principales: Qiao, Lanxin, Qin, Yu, Wang, Yaxin, Liang, Yi, Zhu, Dunwan, Xiong, Wei, Li, Lu, Bao, Di, Zhang, Linhua, Jin, Xu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9057840/
https://www.ncbi.nlm.nih.gov/pubmed/35516547
http://dx.doi.org/10.1039/d0ra07161g
_version_ 1784697993205645312
author Qiao, Lanxin
Qin, Yu
Wang, Yaxin
Liang, Yi
Zhu, Dunwan
Xiong, Wei
Li, Lu
Bao, Di
Zhang, Linhua
Jin, Xu
author_facet Qiao, Lanxin
Qin, Yu
Wang, Yaxin
Liang, Yi
Zhu, Dunwan
Xiong, Wei
Li, Lu
Bao, Di
Zhang, Linhua
Jin, Xu
author_sort Qiao, Lanxin
collection PubMed
description Owing to the existence of the blood–brain barrier (BBB), most treatments cannot achieve significant effects on gliomas. In this study, synergistic multitarget Ang-TAT-Fe(3)O(4)-pDNA-(ss)373 lipid-polymer hybrid nanoparticles (LPNPs) were designed to penetrate the BBB and deliver therapeutic genes to glioma cells. The basic material of the nanoparticles was PCL(3750)-ss-PEG(7500)-ss-PCL(3750), and is called (ss)373 herein. (ss)373 NPs, Fe(3)O(4) magnetic nanoparticles (MNPs), DOTAP, and DSPE-PEG-MAL formed the basic structure of LPNPs by self-assembly. The Fe(3)O(4) MNPs were wrapped in (ss)373 NPs to implement magnetic targeting. Then, the Angiopep-2 peptide (Ang) and transactivator of transcription (TAT) were coupled with DSPE-PEG-MAL. Both can enhance BBB penetration and tumor targeting. Finally, the pDNA was compressed on DOTAP to form the complete gene delivery system. The results indicated that the Ang-TAT-Fe(3)O(4)-pDNA-(ss)373 LPNPs were 302.33 nm in size. In addition, their zeta potential was 4.66 mV, and they had good biocompatibility. The optimal nanoparticles/pDNA ratio was 5 : 1, as shown by gel retardation assay. In this characterization, compared with other LPNPs, the modified single Ang or without the addition of the Fe(3)O(4) MNPs, the penetration efficiency of the BBB model formed by hCMEC/D3 cells, and the transfection efficiency of C6 cells using pEGFP-C1 as the reporter gene were significantly improved with Ang-TAT-Fe(3)O(4)-pDNA-(ss)373 LPNPs in the magnetic field.
format Online
Article
Text
id pubmed-9057840
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-90578402022-05-04 A brain glioma gene delivery strategy by angiopep-2 and TAT-modified magnetic lipid-polymer hybrid nanoparticles Qiao, Lanxin Qin, Yu Wang, Yaxin Liang, Yi Zhu, Dunwan Xiong, Wei Li, Lu Bao, Di Zhang, Linhua Jin, Xu RSC Adv Chemistry Owing to the existence of the blood–brain barrier (BBB), most treatments cannot achieve significant effects on gliomas. In this study, synergistic multitarget Ang-TAT-Fe(3)O(4)-pDNA-(ss)373 lipid-polymer hybrid nanoparticles (LPNPs) were designed to penetrate the BBB and deliver therapeutic genes to glioma cells. The basic material of the nanoparticles was PCL(3750)-ss-PEG(7500)-ss-PCL(3750), and is called (ss)373 herein. (ss)373 NPs, Fe(3)O(4) magnetic nanoparticles (MNPs), DOTAP, and DSPE-PEG-MAL formed the basic structure of LPNPs by self-assembly. The Fe(3)O(4) MNPs were wrapped in (ss)373 NPs to implement magnetic targeting. Then, the Angiopep-2 peptide (Ang) and transactivator of transcription (TAT) were coupled with DSPE-PEG-MAL. Both can enhance BBB penetration and tumor targeting. Finally, the pDNA was compressed on DOTAP to form the complete gene delivery system. The results indicated that the Ang-TAT-Fe(3)O(4)-pDNA-(ss)373 LPNPs were 302.33 nm in size. In addition, their zeta potential was 4.66 mV, and they had good biocompatibility. The optimal nanoparticles/pDNA ratio was 5 : 1, as shown by gel retardation assay. In this characterization, compared with other LPNPs, the modified single Ang or without the addition of the Fe(3)O(4) MNPs, the penetration efficiency of the BBB model formed by hCMEC/D3 cells, and the transfection efficiency of C6 cells using pEGFP-C1 as the reporter gene were significantly improved with Ang-TAT-Fe(3)O(4)-pDNA-(ss)373 LPNPs in the magnetic field. The Royal Society of Chemistry 2020-11-13 /pmc/articles/PMC9057840/ /pubmed/35516547 http://dx.doi.org/10.1039/d0ra07161g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Qiao, Lanxin
Qin, Yu
Wang, Yaxin
Liang, Yi
Zhu, Dunwan
Xiong, Wei
Li, Lu
Bao, Di
Zhang, Linhua
Jin, Xu
A brain glioma gene delivery strategy by angiopep-2 and TAT-modified magnetic lipid-polymer hybrid nanoparticles
title A brain glioma gene delivery strategy by angiopep-2 and TAT-modified magnetic lipid-polymer hybrid nanoparticles
title_full A brain glioma gene delivery strategy by angiopep-2 and TAT-modified magnetic lipid-polymer hybrid nanoparticles
title_fullStr A brain glioma gene delivery strategy by angiopep-2 and TAT-modified magnetic lipid-polymer hybrid nanoparticles
title_full_unstemmed A brain glioma gene delivery strategy by angiopep-2 and TAT-modified magnetic lipid-polymer hybrid nanoparticles
title_short A brain glioma gene delivery strategy by angiopep-2 and TAT-modified magnetic lipid-polymer hybrid nanoparticles
title_sort brain glioma gene delivery strategy by angiopep-2 and tat-modified magnetic lipid-polymer hybrid nanoparticles
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9057840/
https://www.ncbi.nlm.nih.gov/pubmed/35516547
http://dx.doi.org/10.1039/d0ra07161g
work_keys_str_mv AT qiaolanxin abraingliomagenedeliverystrategybyangiopep2andtatmodifiedmagneticlipidpolymerhybridnanoparticles
AT qinyu abraingliomagenedeliverystrategybyangiopep2andtatmodifiedmagneticlipidpolymerhybridnanoparticles
AT wangyaxin abraingliomagenedeliverystrategybyangiopep2andtatmodifiedmagneticlipidpolymerhybridnanoparticles
AT liangyi abraingliomagenedeliverystrategybyangiopep2andtatmodifiedmagneticlipidpolymerhybridnanoparticles
AT zhudunwan abraingliomagenedeliverystrategybyangiopep2andtatmodifiedmagneticlipidpolymerhybridnanoparticles
AT xiongwei abraingliomagenedeliverystrategybyangiopep2andtatmodifiedmagneticlipidpolymerhybridnanoparticles
AT lilu abraingliomagenedeliverystrategybyangiopep2andtatmodifiedmagneticlipidpolymerhybridnanoparticles
AT baodi abraingliomagenedeliverystrategybyangiopep2andtatmodifiedmagneticlipidpolymerhybridnanoparticles
AT zhanglinhua abraingliomagenedeliverystrategybyangiopep2andtatmodifiedmagneticlipidpolymerhybridnanoparticles
AT jinxu abraingliomagenedeliverystrategybyangiopep2andtatmodifiedmagneticlipidpolymerhybridnanoparticles
AT qiaolanxin braingliomagenedeliverystrategybyangiopep2andtatmodifiedmagneticlipidpolymerhybridnanoparticles
AT qinyu braingliomagenedeliverystrategybyangiopep2andtatmodifiedmagneticlipidpolymerhybridnanoparticles
AT wangyaxin braingliomagenedeliverystrategybyangiopep2andtatmodifiedmagneticlipidpolymerhybridnanoparticles
AT liangyi braingliomagenedeliverystrategybyangiopep2andtatmodifiedmagneticlipidpolymerhybridnanoparticles
AT zhudunwan braingliomagenedeliverystrategybyangiopep2andtatmodifiedmagneticlipidpolymerhybridnanoparticles
AT xiongwei braingliomagenedeliverystrategybyangiopep2andtatmodifiedmagneticlipidpolymerhybridnanoparticles
AT lilu braingliomagenedeliverystrategybyangiopep2andtatmodifiedmagneticlipidpolymerhybridnanoparticles
AT baodi braingliomagenedeliverystrategybyangiopep2andtatmodifiedmagneticlipidpolymerhybridnanoparticles
AT zhanglinhua braingliomagenedeliverystrategybyangiopep2andtatmodifiedmagneticlipidpolymerhybridnanoparticles
AT jinxu braingliomagenedeliverystrategybyangiopep2andtatmodifiedmagneticlipidpolymerhybridnanoparticles