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PUBMED FOR HANDHELDS

Journal Abstract Search


194 related items for PubMed ID: 26443433

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  • 2. Effect of Water Models on Transmembrane Self-Assembled Cyclic Peptide Nanotubes.
    Calvelo M, Lynch CI, Granja JR, Sansom MSP, Garcia-Fandiño R.
    ACS Nano; 2021 Apr 27; 15(4):7053-7064. PubMed ID: 33739081
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  • 3. New cyclic peptide assemblies with hydrophobic cavities: the structural and thermodynamic basis of a new class of peptide nanotubes.
    Amorín M, Castedo L, Granja JR.
    J Am Chem Soc; 2003 Mar 12; 125(10):2844-5. PubMed ID: 12617629
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  • 7. Lipid Bilayer Membrane Perturbation by Embedded Nanopores: A Simulation Study.
    Garcia-Fandiño R, Piñeiro Á, Trick JL, Sansom MS.
    ACS Nano; 2016 Mar 22; 10(3):3693-701. PubMed ID: 26943498
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  • 8. Self-assembling organic nanotubes with precisely defined, sub-nanometer pores: formation and mass transport characteristics.
    Gong B, Shao Z.
    Acc Chem Res; 2013 Dec 17; 46(12):2856-66. PubMed ID: 23597055
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  • 12. Energetic and Dynamic Analysis of Transport of Na+ and K+ through a Cyclic Peptide Nanotube in Water and in Lipid Bilayers.
    Song Y, Lee JH, Hwang H, Schatz GC, Hwang H.
    J Phys Chem B; 2016 Nov 23; 120(46):11912-11922. PubMed ID: 27934398
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  • 19. Effect of the amino acid composition of cyclic peptides on their self-assembly in lipid bilayers.
    Danial M, Perrier S, Jolliffe KA.
    Org Biomol Chem; 2015 Feb 28; 13(8):2464-73. PubMed ID: 25566760
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  • 20. Modeling membranes under a transmembrane potential.
    Delemotte L, Dehez F, Treptow W, Tarek M.
    J Phys Chem B; 2008 May 08; 112(18):5547-50. PubMed ID: 18412411
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