| Literature DB >> 23710591 |
Kelly Boeneman1, James B Delehanty, Juan B Blanco-Canosa, Kimihiro Susumu, Michael H Stewart, Eunkeu Oh, Alan L Huston, Glyn Dawson, Sampat Ingale, Ryan Walters, Miriam Domowicz, Jeffrey R Deschamps, W Russ Algar, Stassi Dimaggio, Janet Manono, Christopher M Spillmann, Darren Thompson, Travis L Jennings, Philip E Dawson, Igor L Medintz.
Abstract
Cell penetrating peptides facilitate efficient intracellular uptake of diverse materials ranging from small contrast agents to larger proteins and nanoparticles. However, a significant impediment remains in the subsequent compartmentalization/endosomal sequestration of most of these cargoes. Previous functional screening suggested that a modular peptide originally designed to deliver palmitoyl-protein thioesterase inhibitors to neurons could mediate endosomal escape in cultured cells. Here, we detail properties relevant to this peptide's ability to mediate cytosolic delivery of quantum dots (QDs) to a wide range of cell-types, brain tissue culture and a developing chick embryo in a remarkably nontoxic manner. The peptide further facilitated efficient endosomal escape of large proteins, dendrimers and other nanoparticle materials. We undertook an iterative structure-activity relationship analysis of the peptide by discretely modifying key components including length, charge, fatty acid content and their order using a comparative, semiquantitative assay. This approach allowed us to define the key motifs required for endosomal escape, to select more efficient escape sequences, along with unexpectedly identifying a sequence modified by one methylene group that specifically targeted QDs to cellular membranes. We interpret our results within a model of peptide function and highlight implications for in vivo labeling and nanoparticle-mediated drug delivery by using different peptides to co-deliver cargoes to cells and engage in multifunctional labeling.Entities:
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Year: 2013 PMID: 23710591 PMCID: PMC3880025 DOI: 10.1021/nn400702r
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881