Application of membrane-active peptides for nonviral gene delivery

被引:154
作者
Wagner, E [1 ]
机构
[1] Univ Vienna, Bioctr, Inst Biochem, A-1030 Vienna, Austria
关键词
polylysine; polyethylenimine; receptor-mediated gene transfer; endosomal release; amphipathic peptides; transfection;
D O I
10.1016/S0169-409X(99)00033-2
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
A variety of membrane-modifying agents including pH-specific fusogenic or lytic peptides, bacterial proteins, lipids, glycerol, or inactivated virus particles have been evaluated for the enhancement of DNA-polycation complex-based gene transfer. The enhancement depends on the characteristics of both the cationic carrier for DNA and the membrane-modifying agent. Peptides derived from viral sequences such as the N-terminus of influenza virus haemagglutinin HA-2, the N-terminus of rhinovirus HRV2 VP-1 protein, and other synthetic or natural sequences such as the amphipathic peptides GALA, KALA, EGLA JTS1, or gramicidin S have been tested. Ligand-polylysine-mediated gene transfer can be improved up to more than 1000-fold by membrane-active compounds. Other polycations like dendrimers or polyethylenimines as well as several cationic lipids provide a high transfection efficiency per se. Systems based on these polymers or lipids are only slightly enhanced by endosomolytic peptides or adenoviruses. Electroneutral cationic lipid-DNA complexes however can be strongly improved by the addition of membrane-active peptides, (C) 1999 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:279 / 289
页数:11
相关论文
共 50 条
  • [21] Nonviral Gene Delivery: Principle, Limitations, and Recent Progress
    Al-Dosari, Mohammed S.
    Gao, Xiang
    AAPS JOURNAL, 2009, 11 (04): : 671 - 681
  • [22] Novel nonviral vectors for gene delivery: Synthesis and applications
    Byk, G
    Dubertret, C
    Schwartz, B
    Frederic, M
    Jaslin, G
    Rangara, R
    Scherman, D
    LETTERS IN PEPTIDE SCIENCE, 1997, 4 (4-6): : 263 - 267
  • [23] A novel polymer-lipid hybrid nanoparticle for efficient nonviral gene delivery
    Li, Jian
    He, Ying-zi
    Li, Wen
    Shen, Yun-zhen
    Li, Yu-ru
    Wang, Yun-feng
    ACTA PHARMACOLOGICA SINICA, 2010, 31 (04) : 509 - 514
  • [24] Nonviral Gene Delivery: Principle, Limitations, and Recent Progress
    Mohammed S. Al-Dosari
    Xiang Gao
    The AAPS Journal, 2009, 11 : 671 - 681
  • [25] Phosphonium-Containing Polyelectrolytes for Nonviral Gene Delivery
    Hemp, Sean T.
    Allen, Michael H., Jr.
    Green, Matthew D.
    Long, Timothy E.
    BIOMACROMOLECULES, 2012, 13 (01) : 231 - 238
  • [26] Reactive and Bioactive Cationic a-Helical Polypeptide Template for Nonviral Gene Delivery
    Gabrielson, Nathan P.
    Lu, Hua
    Yin, Lichen
    Li, Dong
    Wang, Fei
    Cheng, Jianjun
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2012, 51 (05) : 1143 - 1147
  • [27] Current Progress in Electrotransfection as a Nonviral Method for Gene Delivery
    Cervia, Lisa D.
    Yuan, Fan
    MOLECULAR PHARMACEUTICS, 2018, 15 (09) : 3617 - 3624
  • [28] Polymeric Nonviral Gene Delivery Systems for Cancer Immunotherapy
    Ke, Lingjie
    Cai, Pingqiang
    Wu, Yun-Long
    Chen, Xiaodong
    ADVANCED THERAPEUTICS, 2020, 3 (06)
  • [29] Cationic Copolymers Act As Chaperones of a Membrane-Active Peptide: Influence on Membrane Selectivity
    Sakamoto, Wakako
    Masuda, Tsukuru
    Ochiai, Takuro
    Shimada, Naohiko
    Maruyama, Atsushi
    ACS BIOMATERIALS SCIENCE & ENGINEERING, 2019, 5 (11): : 5744 - 5751
  • [30] Complexation of Bioreducible Cationic Polymers with Gold Nanoparticles for Improving Stability in Serum and Application on Nonviral Gene Delivery
    Chuang, Chun-Chiao
    Chang, Chien-Wen
    ACS APPLIED MATERIALS & INTERFACES, 2015, 7 (14) : 7724 - 7731