Relationships between membrane binding, affinity and cell internalization efficacy of a cell-penetrating peptide: penetratin as a case study.
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Applications and Challenges for Use of Cell-Penetrating Peptides as Delivery Vectors for Peptide and Protein CargosChemical-functional diversity in cell-penetrating peptidesIn silico study on multidrug resistance conferred by I223R/H275Y double mutant neuraminidase.In silico analysis of drug-resistant mutant of neuraminidase (N294S) against oseltamivir.Structure analysis and conformational transitions of the cell penetrating peptide transportan 10 in the membrane-bound state.Interaction of amphiphilic α-helical cell-penetrating peptides with heparan sulfate.Electrochemical impedimetric biosensor based on a nanostructured polycarbonate substrate.Mechanism Matters: A Taxonomy of Cell Penetrating Peptides.Improving the endosomal escape of cell-penetrating peptides and their cargos: strategies and challenges.Amphiphilic macromolecules on cell membranes: from protective layers to controlled permeabilization.Shifting gear in antimicrobial and anticancer peptides biophysical studies: from vesicles to cells.Cell-Penetrating Peptides as Carriers for Oral Delivery of Biopharmaceuticals.Quantitative fluorescence spectroscopy and flow cytometry analyses of cell-penetrating peptides internalization pathways: optimization, pitfalls, comparison with mass spectrometry quantificationCell-penetrating peptides as tools to enhance non-injectable delivery of biopharmaceuticals.Structural Elucidation of the Cell-Penetrating Penetratin Peptide in Model Membranes at the Atomic Level: Probing Hydrophobic Interactions in the Blood-Brain BarrierThermodynamics of cell-penetrating HIV1 TAT peptide insertion into PC/PS/CHOL model bilayers through transmembrane pores: the roles of cholesterol and anionic lipids.Membrane-active peptides and the clustering of anionic lipids.Plasma membrane translocation of a protein needle based on a triple-stranded β-helix motif.The stoichiometry of peptide-heparan sulfate binding as a determinant of uptake efficiency of cell-penetrating peptides.Identification of potential inhibitors of H5N1 influenza A virus neuraminidase by ligand-based virtual screening approach.Spontaneous Membrane Translocating Peptides: The Role of Leucine-Arginine Consensus Motifs.Penetratin and derivatives acting as antibacterial agents.
P2860
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P2860
Relationships between membrane binding, affinity and cell internalization efficacy of a cell-penetrating peptide: penetratin as a case study.
description
2011 nî lūn-bûn
@nan
2011 թուականի Սեպտեմբերին հրատարակուած գիտական յօդուած
@hyw
2011 թվականի սեպտեմբերին հրատարակված գիտական հոդված
@hy
2011年の論文
@ja
2011年論文
@yue
2011年論文
@zh-hant
2011年論文
@zh-hk
2011年論文
@zh-mo
2011年論文
@zh-tw
2011年论文
@wuu
name
Relationships between membrane ...... e: penetratin as a case study.
@ast
Relationships between membrane ...... e: penetratin as a case study.
@en
Relationships between membrane ...... e: penetratin as a case study.
@nl
type
label
Relationships between membrane ...... e: penetratin as a case study.
@ast
Relationships between membrane ...... e: penetratin as a case study.
@en
Relationships between membrane ...... e: penetratin as a case study.
@nl
prefLabel
Relationships between membrane ...... e: penetratin as a case study.
@ast
Relationships between membrane ...... e: penetratin as a case study.
@en
Relationships between membrane ...... e: penetratin as a case study.
@nl
P2860
P50
P1433
P1476
Relationships between membrane ...... de: penetratin as a case study
@en
P2093
Chen-Yu Jiao
Isabel D Alves
P2860
P304
P356
10.1371/JOURNAL.PONE.0024096
P407
P577
2011-09-06T00:00:00Z