Fifteen Years of Cell-Penetrating Guanidinium-Rich Molecular Transporters: Basic Science, Research Tools, and Clinical Applications

被引:271
作者
Stanzl, Erika Geihe
Trantow, Brian M.
Vargas, Jessica R.
Wender, Paul A. [1 ]
机构
[1] Stanford Univ, Dept Chem, Stanford, CA 94305 USA
基金
美国国家科学基金会; 美国国家卫生研究院;
关键词
PROTEIN TRANSDUCTION DOMAIN; REAL-TIME ANALYSIS; DRUG-DELIVERY; PEPTIDE; DESIGN; MEMBRANE; TRANSLOCATION; OCTAARGININE; EFFICIENT; CANCER;
D O I
10.1021/ar4000554
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
All living systems require biochemical barriers. As a consequence, all drugs, imaging agents, and probes have targets that are either on, in, or inside of these barriers. Fifteen years ago, we initiated research directed at more fully understanding these barriers and at developing tools and strategies for breaching them that could be of use in basic research, imaging, diagnostics, and medicine. At the outset of this research and now to a lesser extent, the "rules" for drug design biased the selection of drug candidates mainly to those with an intermediate and narrow log P. At the same time, it was becoming increasingly apparent that Nature had long ago developed clever strategies to circumvent these "rules." In 1988, for example, independent reports documented the otherwise uncommon passage of a protein (HIV-Tat) across a membrane. A subsequent study implicated a highly basic domain in this protein (Tat(49-57)) in its cellular entry. This conspicuously contradictory behavior of a polar, highly charged peptide passing through a nonpolar membrane set the stage for leaning how Nature had gotten around the current "rules" of transport. As elaborated in our studies and discussed in this Account, the key strategy used in Nature rests in part on the ability of a molecule to change its properties as a function of microenvironment; such molecules need to be polarity chameleons, polar in a polar milieu and relatively nonpolar in a nonpolar environment. Because this research originated in part with the protein Tat and its basic peptide domain, Tat(49-57), the field focused heavily on peptides, even limiting its nomenclature to names such as "cell-penetrating peptides," "cell-permeating peptides," "protein transduction domains," and "membrane translocating peptides." Starting in 1997, through a systematic reverse engineering approach, we established that the ability of Tat(49-57) to enter cells is not a function of its peptide backbone, but rather a function of the number and spatial array of its guanidinium groups. These function-oriented studies enabled us and others to design more effective peptidic agents and to think beyond the confines of peptidic systems to new and even more effective nonpeptidic agents. Because the function of passage across a cell membrane is not limited to or even best achieved with the peptide backbone, we referred to these agents by their shared function, "cell-penetrating molecular transporters." The scope of this molecular approach to breaching biochemical barriers has expanded remarkably in the past 15 years: enabling or enhancing the delivery of a wide range of cargos into cells and across other biochemical barriers, creating new tools for research, imaging, and diagnostics, and introducing new therapies into clinical trials.
引用
收藏
页码:2944 / 2954
页数:11
相关论文
共 68 条
  • [1] Wender Paul A, 2012, Drug Discov Today Technol, V9, pe49, DOI 10.1016/j.ddtec.2011.07.004
  • [2] Arginine Topology Controls Escape of Minimally Cationic Proteins from Early Endosomes to the Cytoplasm
    Appelbaum, Jacob S.
    LaRochelle, Jonathan R.
    Smith, Betsy A.
    Balkin, Daniel M.
    Holub, Justin M.
    Schepartz, Alanna
    [J]. CHEMISTRY & BIOLOGY, 2012, 19 (07): : 819 - 830
  • [3] Substrate-Initiated Synthesis of Cell-Penetrating Poly(disulfide)s
    Bang, Eun-Kyoung
    Gasparini, Giulio
    Molinard, Guillaume
    Roux, Aurelien
    Sakai, Naomi
    Matile, Stefan
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2013, 135 (06) : 2088 - 2091
  • [4] Permeation peptide conjugates for in vivo molecular imaging applications
    Bullok, Kristin E.
    Gammon, Seth T.
    Violini, Stefania
    Prantner, Andrew M.
    Villalobos, Victor M.
    Sharma, Vijay
    Piwnica-Worms, David
    [J]. MOLECULAR IMAGING, 2006, 5 (01) : 1 - 15
  • [5] Molecular transporters for peptides:: delivery of a cardioprotective εPKC agonist peptide into cells and intact ischemic heart using a transport system, R7
    Chen, L
    Wright, LR
    Chen, CH
    Oliver, SF
    Wender, PA
    Mochly-Rosen, D
    [J]. CHEMISTRY & BIOLOGY, 2001, 8 (12): : 1123 - 1129
  • [6] Dendritic oligoguanidines as intracellular translocators
    Chung, HH
    Harms, G
    Seong, CM
    Choi, BH
    Min, CH
    Taulane, JP
    Goodman, M
    [J]. BIOPOLYMERS, 2004, 76 (01) : 83 - 96
  • [7] Oligocarbonate Molecular Transporters: Oligomerization-Based Syntheses and Cell-Penetrating Studies
    Cooley, Christina B.
    Trantow, Brian M.
    Nederberg, Fredrik
    Kiesewetter, Matthew K.
    Hedrick, James L.
    Waymouth, Robert M.
    Wender, Paul A.
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2009, 131 (45) : 16401 - +
  • [8] Impact of the guanidinium group on hybridization and cellular uptake of cationic oligonucleotides
    Deglane, G
    Abes, S
    Michel, T
    Prévot, P
    Vives, E
    Debart, F
    Barvik, I
    Lebleu, B
    Vasseur, JJ
    [J]. CHEMBIOCHEM, 2006, 7 (04) : 684 - 692
  • [9] DESIGN AND SYNTHESIS OF DEOXYNUCLEIC GUANIDINE - A POLYCATION ANALOG OF DNA
    DEMPCY, RO
    ALMARSSON, O
    BRUICE, TC
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1994, 91 (17) : 7864 - 7868
  • [10] Cooperative, Heparan Sulfate-Dependent Cellular Uptake of Dimeric Guanidinoglycosides
    Dix, Andrew V.
    Fischer, Lucile
    Sarrazin, Stephane
    Redgate, Christopher P. H.
    Esko, Jeffrey D.
    Tor, Yitzhak
    [J]. CHEMBIOCHEM, 2010, 11 (16) : 2302 - 2310