Thermodynamic studies and binding mechanisms of cell-penetrating peptides with lipids and glycosaminoglycans

被引:207
|
作者
Ziegler, Andre [1 ]
机构
[1] Univ Basel, BioZentrum, Dept Biophys Chem, CH-4056 Basel, Switzerland
关键词
carrier proteins; cell-penetrating peptides; genetic vectors; gene therapy; endocytosis; lipid bilayers; lipofectants; permeability; polyamines; proteoglycans; transfection; HEPARAN-SULFATE PROTEOGLYCANS; ARGININE-RICH PEPTIDES; HIV-1 TAT PROTEIN; SOLID-STATE NMR; AMPHIPATHIC CARRIER PEPTIDES; HUMAN IMMUNODEFICIENCY VIRUS; N-LINKED OLIGOSACCHARIDES; CULTURED MAMMALIAN-CELLS; MYELIN BASIC-PROTEIN; POLY-L-LYSINE;
D O I
10.1016/j.addr.2007.10.005
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Cell-penetrating peptides (CPPs) traverse the membrane of biological cells at low micromolar concentrations and are able to take various cargo molecules along with. Despite large differences in their chemical structure, CPPs share the structural similarity of a high cationic charge density. This property confers to them the ability to bind electrostatically membrane constituents such as anionic lipids and glycosaminoglycans (GAGs). Controversies exist, however, about the biological response after the interaction of CPPs with such membrane constituents. Present review compares thermodynamic binding studies with conditions of the biological CPP uptake. It becomes evident that CPPs enter biological cells by different and probably competing mechanisms. For example, some amphipathic CPPs traverse pure lipid model membranes at low micromolar concentrations - at least in the absence of cargos. In contrast, no direct translocation at these conditions is observed for non-amphipathic CPPs. Finally, CPPs bind GAGs at low micromolar concentrations with potential consequences for endocytotic pathways. (C) 2007 Elsevier B.V. All rights reserved.
引用
收藏
页码:580 / 597
页数:18
相关论文
共 50 条
  • [1] NMR binding studies of glycosaminoglycans and cell-penetrating compounds
    Drazenovich, Hannah
    Prevette, Lisa
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2016, 251
  • [2] Cell-penetrating peptides:: Mechanisms and applications
    El-Andaloussi, S
    Holm, T
    Langel, Ü
    CURRENT PHARMACEUTICAL DESIGN, 2005, 11 (28) : 3597 - 3611
  • [3] Internalization mechanisms of cell-penetrating peptides
    Ruseska, Ivana
    Zimmer, Andreas
    BEILSTEIN JOURNAL OF NANOTECHNOLOGY, 2020, 11 (11): : 101 - 123
  • [4] Synthesis and Studies on Cell-Penetrating Peptides
    Bertrand, Jean-Remi
    Malvy, Claude
    Auguste, Tiphanie
    Toth, Gabor K.
    Kiss-Ivankovits, Orsolya
    Illyes, Eszter
    Hollosi, Miklos
    Bottka, Sandor
    Laczko, Ilona
    BIOCONJUGATE CHEMISTRY, 2009, 20 (07) : 1307 - 1314
  • [5] Cell-Penetrating Peptides, Mechanisms and Applications -: Editorial
    Langel, Ü
    CURRENT PHARMACEUTICAL DESIGN, 2005, 11 (28) : 3595 - 3595
  • [6] Membrane binding and translocation of cell-penetrating peptides
    Thorén, PEG
    Persson, D
    Esbjörner, EK
    Goksör, M
    Lincoln, P
    Nordén, B
    BIOCHEMISTRY, 2004, 43 (12) : 3471 - 3489
  • [7] Glycosaminoglycans are required for translocation of amphipathic cell-penetrating peptides across membranes
    Pae, Janely
    Liivamagi, Laura
    Lubenets, Dmitri
    Arukuusk, Piret
    Langel, Ulo
    Pooga, Margus
    BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES, 2016, 1858 (08): : 1860 - 1867
  • [8] Studies of cell-penetrating peptides by biophysical methods
    Zorko, Matjaz
    Langel, Ulo
    QUARTERLY REVIEWS OF BIOPHYSICS, 2022, 55
  • [9] siRNA Delivery: From Lipids to Cell-penetrating Peptides and Their Mimics
    Gooding, Matt
    Browne, Lorcan P.
    Quinteiro, Filipa M.
    Selwood, David L.
    CHEMICAL BIOLOGY & DRUG DESIGN, 2012, 80 (06) : 787 - 809
  • [10] Cell-penetrating peptides
    Lindgren, M
    Hallbrink, M
    Prochiantz, A
    Langel, U
    TRENDS IN PHARMACOLOGICAL SCIENCES, 2000, 21 (03) : 99 - 103