| Literature DB >> 29847726 |
Daehwan Park1, Jin Yong Lee1, Heui Kyoung Cho2, Woo Jin Hong2, Jisun Kim3, Hyemyung Seo3, Ikjang Choi1, Youngbok Lee1,4, Juhyeon Kim5,6, Sun-Joon Min4, So-Hyun Yoon7, Jae Sung Hwang7, Kwang Jin Cho8, Jin Woong Kim1,4.
Abstract
We herein propose a polymeric nanovehicle system that has the ability to remarkably improve cellular uptake and transdermal delivery. Cell-penetrating peptide-patchy deformable polymeric nanovehicles were fabricated by tailored coassembly of amphiphilic poly(ethylene oxide)- block-poly(ε-caprolactone) (PEO- b-PCL), mannosylerythritol lipid (MEL), and YGRKKRRQRRR-cysteamine (TAT)-linked MEL. Using X-ray diffraction, differential scanning calorimetry, and nuclear magnetic resonance analyses, we revealed that the incorporation of MEL having an asymmetric alkyl chain configuration was responsible for the deformable phase property of the vehicles. We also discovered that the nanovehicles were mutually attracted, exhibiting a gel-like fluid characteristic due to the dipole-dipole interaction between the hydroxyl group of MEL and the methoxy group of PEO- b-PCL. Coassembly of TAT-linked MEL with the deformable nanovehicles significantly enhanced cellular uptake due to macropinocytosis and caveolae-/lipid raft-mediated endocytosis. Furthermore, the in vivo skin penetration test revealed that our TAT-patchy deformable nanovehicles remarkably improved transdermal delivery efficiency.Entities:
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Year: 2018 PMID: 29847726 DOI: 10.1021/acs.biomac.8b00292
Source DB: PubMed Journal: Biomacromolecules ISSN: 1525-7797 Impact factor: 6.988