Hydraphiles: design, synthesis and analysis of a family of synthetic, cation-conducting channels
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[1] T. James,et al. Assembly of ion channel mimics from a modular construction set , 1993 .
[2] D. Seebach,et al. Channel‐Forming Activity of 3‐Hydroxybutanoic‐Acid Oligomers in Planar Lipid Bilayers , 1996 .
[3] T. James,et al. Biomimetic ion transport: on the mechanism of ion transport by an artificial ion channel mimic , 1990 .
[4] G. Gokel,et al. A Synthetic Cation-Transporting Calix[4]arene Derivative Active in Phospholipid Bilayers. , 1998, Angewandte Chemie.
[5] J. Lehn,et al. Channel‐Type Molecular Structures. Part 2. Synthesis of Bouquet‐Shaped Molecules Based on a β‐Cyclodextrin Core , 1992 .
[6] M. Ghadiri,et al. Artificial transmembrane ion channels from self-assembling peptide nanotubes , 1994, Nature.
[7] G. Gokel,et al. Vesicle Formation from N-Alkylindoles: Implications for Tryptophan-Water Interactions , 1995 .
[8] D. A. Gustowski,et al. Direct correlation of cation binding strengths to Hammett parameters in substituted N-benzylaza-15-crown-5 lariat ether and N,N′-dibenzyl-4,13-diaza-18-crown-6 BiBLE derivatives , 1987 .
[9] R. Nolte,et al. Ion transport across vesicle bilayers mediated by an artificial channel compound , 1984 .
[10] M. Sokabe,et al. A Non‐Peptidic Ion Channel with K+ Selectivity , 1995 .
[11] H. Sullivan. Ionic Channels of Excitable Membranes, 2nd Ed. , 1992, Neurology.
[12] K. Harms,et al. Oligo‐THF Peptides: Synthesis, Membrane Insertion, and Studies of Ion Channel Activity , 1996 .
[13] I. Tabushi,et al. A,B,D,F-tetrasubstituted β-cyclodextrin as artificial channel compound , 1982 .
[14] Juan R. Granja,et al. Nanoscale Tubular Ensembles with Specified Internal Diameters. Design of a Self-Assembled Nanotube with a 13-.ANG. Pore , 1994 .
[15] Ludovic Jullien,et al. The “chundle” approach to molecular channels synthesis of a macrocycle-based molecular bundle , 1988 .
[16] M. Sokabe,et al. Artificial non-peptide single ion channels , 1992 .
[17] Glenn E. M. Maguire,et al. Hydraphile Channels: Structural and Fluorescent Probes of Position and Function in a Phospholipid Bilayer , 1999 .
[18] G. Gokel,et al. Sodium Cation Transport in Synthetic Channels Obeys the Hammett Relationship in a Phospholipid Bilayer Membrane , 1996 .
[19] J. Fendler,et al. Pyranine as a sensitive pH probe for liposome interiors and surfaces. pH gradients across phospholipid vesicles. , 1978, Biochimica et biophysica acta.
[20] M. Ghadiri,et al. Self-Assembling Cyclic β3-Peptide Nanotubes as Artificial Transmembrane Ion Channels , 1998 .
[21] Shigeru Watanabe,et al. Synthetic Models for Transmembrane Channels: Structural Variations That Alter Cation Flux , 1995 .
[22] K. C. Brennan,et al. Toward biomimetic ion channels formed by rigid-rod molecules: Length-dependent ion-transport activity of substituted oligo(p-phenylene)s , 1997 .
[23] R. Nolte,et al. An Artificial Channel Type Ionophore , 1984 .
[24] S H White,et al. Structure of a fluid dioleoylphosphatidylcholine bilayer determined by joint refinement of x-ray and neutron diffraction data. III. Complete structure. , 1992, Biophysical journal.
[25] S. Matile,et al. Toward supramolecular ion channels formed by oligonucleotide analogs: Hydrophobic guanine dimers , 1998 .
[26] G. Gokel,et al. Fluorobenzyl terminal residues as probes of function in tris(macrocycle) channels: Evidence from NMR and planar bilayer conductance studies , 1997 .
[27] Oscar Murillo,et al. SYNTHETIC TRANSMEMBRANE CHANNELS : FUNCTIONAL CHARACTERIZATION USING SOLUBILITY CALCULATIONS, TRANSPORT STUDIES, AND SUBSTITUENT EFFECTS , 1997 .
[28] Shigeru Watanabe,et al. Azacrown Ethers as Amphiphile Headgroups: Formation of Stable Aggregates from Two- and Three-Armed Lariat Ethers , 1997 .
[29] N. Voyer,et al. A Synthetic Transmembrane Channel Active in Lipid Bilayers , 1997 .
[30] Glenn E. M. Maguire,et al. PLANAR BILAYER CONDUCTANCE AND FLUORESCENCE STUDIES CONFIRM THE FUNCTION AND LOCATION OF A SYNTHETIC, SODIUM-ION-CONDUCTING CHANNEL IN A PHOSPHOLIPID BILAYER MEMBRANE , 1997 .
[31] K. Yamashita,et al. Amphotericin B Mimics: A Sterol-Based Ionophore , 1994 .
[32] C. Reichardt,et al. Solvatochromic Dyes as Solvent Polarity Indicators , 1994 .
[33] R. MacKinnon,et al. The cavity and pore helices in the KcsA K+ channel: electrostatic stabilization of monovalent cations. , 1999, Science.
[34] N. Voyer,et al. Novel Functional Artificial Ion Channel , 1995 .
[35] Thomas M. Fyles,et al. Biomimetic ion transport: a functional model of a unimolecular ion channel , 1989 .
[36] J. Lehn,et al. Towards Artificial Ion Channels: Transport of Alkali Metal Ions across Liposomal Membranes by “Bouquet” Molecules , 1992 .
[37] B. Wallace,et al. Recent Advances in the High Resolution Structures of Bacterial Channels: Gramicidin A. , 1998, Journal of structural biology.