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  4. Targeting small molecule drugs to T cells with antibody-directed cell-penetrating gold nanoparticles
 
research article

Targeting small molecule drugs to T cells with antibody-directed cell-penetrating gold nanoparticles

Yang, Yu-Sang Sabrina
•
Moynihan, Kelly D.
•
Bekdemir, Ahmet  
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January 1, 2019
Biomaterials Science

We sought to develop a nanoparticle vehicle that could efficiently deliver small molecule drugs to target lymphocyte populations. The synthesized amphiphilic organic ligand-protected gold nanoparticles (amph-NPs) were capable of sequestering large payloads of small molecule drugs within hydrophobic pockets of their ligand shells. These particles exhibit membrane-penetrating activity in mammalian cells, and thus enhanced uptake of a small molecule TGF- inhibitor in T cells in cell culture. By conjugating amph-NPs with targeting antibodies or camelid-derived nanobodies, the particles' cell-penetrating properties could be temporarily suppressed, allowing targeted uptake in specific lymphocyte subpopulations. Degradation of the protein targeting moieties following particle endocytosis allowed the NPs to recover their cell-penetrating activity in situ to enter the cytoplasm of T cells. In vivo, targeted amph-NPs showed 40-fold enhanced uptake in CD8(+) T cells relative to untargeted particles, and delivery of TGF- inhibitor-loaded particles to T cells enhanced their cytokine polyfunctionality in a cancer vaccine model. Thus, this system provides a facile approach to concentrate small molecule compounds in target lymphocyte populations of interest for immunotherapy in cancer and other diseases.

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Type
research article
DOI
10.1039/c8bm01208c
Web of Science ID

WOS:000454085700004

Author(s)
Yang, Yu-Sang Sabrina
Moynihan, Kelly D.
Bekdemir, Ahmet  
Dichwalkar, Tanmay M.
Noh, Michelle M.
Watson, Nicki
Melo, Mariane
Ingram, Jessica
Suh, Heikyung
Ploegh, Hidde
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Date Issued

2019-01-01

Published in
Biomaterials Science
Volume

7

Issue

1

Start page

113

End page

124

Subjects

Materials Science, Biomaterials

•

Materials Science

•

growth-factor-beta

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tgf-beta

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blockade

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cancer

•

inhibitor

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efficacy

•

delivery

•

pathway

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
SUNMIL  
Available on Infoscience
January 23, 2019
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/154005
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