New insights on the mechanism of polyethylenimine transfection and their implications on gene therapy and DNA vaccines

被引:0
|
作者
Sabin, Juan [1 ,2 ]
Alatorre-Meda, Manuel [3 ]
Minones Jr, Jose [4 ]
Dominguez-Arca, Vicente [1 ]
Prieto, Gerardo [1 ]
机构
[1] Univ Santiago de Compostela, Appl Phys Dept, Biophys & Interfaces Grp, Santiago De Compostela, Spain
[2] AFFINImeter Software 4 Sci Dev SL, Edificio Emprendia S-N,Campus Vida, Santiago De Compostela, Spain
[3] Ciitedras CONACyT Tecnol Nacl Mexico IT Tijuana, Ctr Grad & Invest Quim Grp Biomat & Nanomed, Blvd Alberto Limon Padilla S-N, Tijuana 22510, BC, Mexico
[4] Univ Santiago de Compostela, Dept Phys Chem, Fac Pharm, Santiago De Compostela, Spain
关键词
Polyethylenimine; Pore formation; Mimicking nuclear membranes; DNA vectors; Molecular dynamics simulations; GUI MEMBRANE-BUILDER; MOLECULAR-DYNAMICS; FORCE-FIELD; PHOSPHOLIPID-VESICLES; DELIVERY-SYSTEM; POTENT; PEI; SIMULATIONS; LIPOPLEXES; COMPLEXES;
D O I
10.1016/j.colsurfb.2021.112219
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Polyethylenimine (PEI) has been demonstrated as an efficient DNA delivery vehicle both in vitro and in vivo. There is a consensus that PEI-DNA complexes enter the cells by endocytosis and escape from endosomes by the so-called "proton sponge" effect. However, little is known on how and where the polyplexes are de-complexed for DNA transcription and replication to occur inside the cell nucleus. To better understand this issue, we (i) tracked the cell internalization of PEI upon transfection to human epithelial cells and (ii) studied the interaction of PEI with phospholipidic layers mimicking nuclear membranes. Both the biological and physicochemical experiments provided evidence of a strong binding affinity between PEI and the lipidic bilayer. Firstly, confocal microscopy revealed that PEI alone could not penetrate the cell nucleus; instead, it arranged throughout the cytoplasm and formed a sort of aureole surrounding the nuclei periphery. Secondly, surface tension measurements, fluorescence dye leakage assays, and differential scanning calorimetry demonstrated that a combination of hydrophobic and electrostatic interactions between PEI and the phospholipidic monolayers/bilayers led to the formation of stable defects along the model membranes, allowing the intercalation of PEI through the monolayer/bilayer structure. Results are also supported by molecular dynamics simulation of the pore formation in PEI-lipidic bilayers. As discussed throughout the text, these results might shed light on a the mechanism in which the interaction between PEI and the nucleus membrane might play an active role on the DNA release: on the one hand, the PEImembrane interaction is anticipated to facilitate the DNA disassembly from the polyplex by establishing a competition with DNA for the PEI binding and on the other hand, the forming defects are expected to serve as channels for the entrance of de-complexed DNA into the cell nucleus. A better understanding of the mechanism of transfection of cationic polymers opens paths to development of more efficiency vectors to improve gene therapy treatment and the new generation of DNA vaccines.
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页数:10
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