The non-peptidic part determines the internalization mechanism and intracellular trafficking of peptide amphiphiles.
BACKGROUND: Peptide amphiphiles (PAs) are a class of amphiphilic molecules able to self-assemble into nanomaterials that have shown efficient in vivo targeted delivery. Understanding the interactions of PAs with cells and the mechanisms of their internalization and intracellular trafficking is criti...
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doaj-1b8fea25077149d7952be6b35a24d6c62020-11-24T22:08:41ZengPublic Library of Science (PLoS)PLoS ONE1932-62032013-01-0181e5461110.1371/journal.pone.0054611The non-peptidic part determines the internalization mechanism and intracellular trafficking of peptide amphiphiles.Dimitris MissirlisTambet TeesaluMatthew BlackMatthew TirrellBACKGROUND: Peptide amphiphiles (PAs) are a class of amphiphilic molecules able to self-assemble into nanomaterials that have shown efficient in vivo targeted delivery. Understanding the interactions of PAs with cells and the mechanisms of their internalization and intracellular trafficking is critical in their further development for therapeutic delivery applications. METHODOLOGY/PRINCIPAL FINDINGS: PAs of a novel, cell- and tissue-penetrating peptide were synthesized possessing two different lipophilic tail architectures and their interactions with prostate cancer cells were studied in vitro. Cell uptake of peptides was greatly enhanced post-modification. Internalization occurred via lipid-raft mediated endocytosis and was common for the two analogs studied. On the contrary, we identified the non-peptidic part as the determining factor of differences between intracellular trafficking and retention of PAs. PAs composed of di-stearyl lipid tails linked through poly(ethylene glycol) to the peptide exhibited higher exocytosis rates and employed different recycling pathways compared to ones consisting of di-palmitic-coupled peptides. As a result, cell association of the former PAs decreased with time. CONCLUSIONS/SIGNIFICANCE: Control over peptide intracellular localization and retention is possible by appropriate modification with synthetic hydrophobic tails. We propose this as a strategy to design improved peptide-based delivery systems.http://europepmc.org/articles/PMC3547919?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Dimitris Missirlis Tambet Teesalu Matthew Black Matthew Tirrell |
spellingShingle |
Dimitris Missirlis Tambet Teesalu Matthew Black Matthew Tirrell The non-peptidic part determines the internalization mechanism and intracellular trafficking of peptide amphiphiles. PLoS ONE |
author_facet |
Dimitris Missirlis Tambet Teesalu Matthew Black Matthew Tirrell |
author_sort |
Dimitris Missirlis |
title |
The non-peptidic part determines the internalization mechanism and intracellular trafficking of peptide amphiphiles. |
title_short |
The non-peptidic part determines the internalization mechanism and intracellular trafficking of peptide amphiphiles. |
title_full |
The non-peptidic part determines the internalization mechanism and intracellular trafficking of peptide amphiphiles. |
title_fullStr |
The non-peptidic part determines the internalization mechanism and intracellular trafficking of peptide amphiphiles. |
title_full_unstemmed |
The non-peptidic part determines the internalization mechanism and intracellular trafficking of peptide amphiphiles. |
title_sort |
non-peptidic part determines the internalization mechanism and intracellular trafficking of peptide amphiphiles. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2013-01-01 |
description |
BACKGROUND: Peptide amphiphiles (PAs) are a class of amphiphilic molecules able to self-assemble into nanomaterials that have shown efficient in vivo targeted delivery. Understanding the interactions of PAs with cells and the mechanisms of their internalization and intracellular trafficking is critical in their further development for therapeutic delivery applications. METHODOLOGY/PRINCIPAL FINDINGS: PAs of a novel, cell- and tissue-penetrating peptide were synthesized possessing two different lipophilic tail architectures and their interactions with prostate cancer cells were studied in vitro. Cell uptake of peptides was greatly enhanced post-modification. Internalization occurred via lipid-raft mediated endocytosis and was common for the two analogs studied. On the contrary, we identified the non-peptidic part as the determining factor of differences between intracellular trafficking and retention of PAs. PAs composed of di-stearyl lipid tails linked through poly(ethylene glycol) to the peptide exhibited higher exocytosis rates and employed different recycling pathways compared to ones consisting of di-palmitic-coupled peptides. As a result, cell association of the former PAs decreased with time. CONCLUSIONS/SIGNIFICANCE: Control over peptide intracellular localization and retention is possible by appropriate modification with synthetic hydrophobic tails. We propose this as a strategy to design improved peptide-based delivery systems. |
url |
http://europepmc.org/articles/PMC3547919?pdf=render |
work_keys_str_mv |
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