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Synthesis and functionalization of protease-activated nanoparticles with tissue plasminogen activator peptides as targeting moiety and diagnostic tool for pancreatic cancer

BACKGROUND: Functionalized nanoparticles (NPs) are one promising tool for detecting specific molecular targets and combine molecular biology and nanotechnology aiming at modern imaging. We aimed at ligand-directed delivery with a suitable target-biomarker to detect early pancreatic ductal adenocarci...

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Autores principales: Dobiasch, Sophie, Szanyi, Szilard, Kjaev, Aleko, Werner, Jens, Strauss, Albert, Weis, Christian, Grenacher, Lars, Kapilov-Buchman, Katya, Israel, Liron-Limor, Lellouche, Jean-Paul, Locatelli, Erica, Franchini, Mauro Comes, Vandooren, Jennifer, Opdenakker, Ghislain, Felix, Klaus
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5168863/
https://www.ncbi.nlm.nih.gov/pubmed/27993133
http://dx.doi.org/10.1186/s12951-016-0236-3
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author Dobiasch, Sophie
Szanyi, Szilard
Kjaev, Aleko
Werner, Jens
Strauss, Albert
Weis, Christian
Grenacher, Lars
Kapilov-Buchman, Katya
Israel, Liron-Limor
Lellouche, Jean-Paul
Locatelli, Erica
Franchini, Mauro Comes
Vandooren, Jennifer
Opdenakker, Ghislain
Felix, Klaus
author_facet Dobiasch, Sophie
Szanyi, Szilard
Kjaev, Aleko
Werner, Jens
Strauss, Albert
Weis, Christian
Grenacher, Lars
Kapilov-Buchman, Katya
Israel, Liron-Limor
Lellouche, Jean-Paul
Locatelli, Erica
Franchini, Mauro Comes
Vandooren, Jennifer
Opdenakker, Ghislain
Felix, Klaus
author_sort Dobiasch, Sophie
collection PubMed
description BACKGROUND: Functionalized nanoparticles (NPs) are one promising tool for detecting specific molecular targets and combine molecular biology and nanotechnology aiming at modern imaging. We aimed at ligand-directed delivery with a suitable target-biomarker to detect early pancreatic ductal adenocarcinoma (PDAC). Promising targets are galectins (Gal), due to their strong expression in and on PDAC-cells and occurrence at early stages in cancer precursor lesions, but not in adjacent normal tissues. RESULTS: Molecular probes (10-29 AA long peptides) derived from human tissue plasminogen activator (t-PA) were selected as binding partners to galectins. Affinity constants between the synthesized t-PA peptides and Gal were determined by microscale thermophoresis. The 29 AA-long t-PA-peptide-1 with a lactose-functionalized serine revealed the strongest binding properties to Gal-1 which was 25-fold higher in comparison with the native t-PA protein and showed additional strong binding to Gal-3 and Gal-4, both also over-expressed in PDAC. t-PA-peptide-1 was selected as vector moiety and linked covalently onto the surface of biodegradable iron oxide nanoparticles (NPs). In particular, CAN-doped maghemite NPs (CAN-Mag), promising as contrast agent for magnetic resonance imaging (MRI), were selected as magnetic core and coated with different biocompatible polymers, such as chitosan (CAN-Mag-Chitosan NPs) or polylactic co glycolic acid (PLGA) obtaining polymeric nanoparticles (CAN-Mag@PNPs), already approved for drug delivery applications. The binding efficacy of t-PA-vectorized NPs determined by exposure to different pancreatic cell lines was up to 90%, as assessed by flow cytometry. The in vivo targeting and imaging efficacy of the vectorized NPs were evaluated by applying murine pancreatic tumor models and assessed by 1.5 T magnetic resonance imaging (MRI). The t-PA-vectorized NPs as well as the protease-activated NPs with outer shell decoration (CAN-Mag@PNPs-PEG-REGAcp-PEG/tPA-pep1(Lac)) showed clearly detectable drop of subcutaneous and orthotopic tumor staining-intensity indicating a considerable uptake of the injected NPs. Post mortem NP deposition in tumors and organs was confirmed by Fe staining of histopathology tissue sections. CONCLUSIONS: The targeted NPs indicate a fast and enhanced deposition of NPs in the murine tumor models. The CAN-Mag@PNPs-PEG-REGAcp-PEG/tPA-pep1(Lac) interlocking steps strategy of NPs delivery and deposition in pancreatic tumor is promising.
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spelling pubmed-51688632016-12-28 Synthesis and functionalization of protease-activated nanoparticles with tissue plasminogen activator peptides as targeting moiety and diagnostic tool for pancreatic cancer Dobiasch, Sophie Szanyi, Szilard Kjaev, Aleko Werner, Jens Strauss, Albert Weis, Christian Grenacher, Lars Kapilov-Buchman, Katya Israel, Liron-Limor Lellouche, Jean-Paul Locatelli, Erica Franchini, Mauro Comes Vandooren, Jennifer Opdenakker, Ghislain Felix, Klaus J Nanobiotechnology Research BACKGROUND: Functionalized nanoparticles (NPs) are one promising tool for detecting specific molecular targets and combine molecular biology and nanotechnology aiming at modern imaging. We aimed at ligand-directed delivery with a suitable target-biomarker to detect early pancreatic ductal adenocarcinoma (PDAC). Promising targets are galectins (Gal), due to their strong expression in and on PDAC-cells and occurrence at early stages in cancer precursor lesions, but not in adjacent normal tissues. RESULTS: Molecular probes (10-29 AA long peptides) derived from human tissue plasminogen activator (t-PA) were selected as binding partners to galectins. Affinity constants between the synthesized t-PA peptides and Gal were determined by microscale thermophoresis. The 29 AA-long t-PA-peptide-1 with a lactose-functionalized serine revealed the strongest binding properties to Gal-1 which was 25-fold higher in comparison with the native t-PA protein and showed additional strong binding to Gal-3 and Gal-4, both also over-expressed in PDAC. t-PA-peptide-1 was selected as vector moiety and linked covalently onto the surface of biodegradable iron oxide nanoparticles (NPs). In particular, CAN-doped maghemite NPs (CAN-Mag), promising as contrast agent for magnetic resonance imaging (MRI), were selected as magnetic core and coated with different biocompatible polymers, such as chitosan (CAN-Mag-Chitosan NPs) or polylactic co glycolic acid (PLGA) obtaining polymeric nanoparticles (CAN-Mag@PNPs), already approved for drug delivery applications. The binding efficacy of t-PA-vectorized NPs determined by exposure to different pancreatic cell lines was up to 90%, as assessed by flow cytometry. The in vivo targeting and imaging efficacy of the vectorized NPs were evaluated by applying murine pancreatic tumor models and assessed by 1.5 T magnetic resonance imaging (MRI). The t-PA-vectorized NPs as well as the protease-activated NPs with outer shell decoration (CAN-Mag@PNPs-PEG-REGAcp-PEG/tPA-pep1(Lac)) showed clearly detectable drop of subcutaneous and orthotopic tumor staining-intensity indicating a considerable uptake of the injected NPs. Post mortem NP deposition in tumors and organs was confirmed by Fe staining of histopathology tissue sections. CONCLUSIONS: The targeted NPs indicate a fast and enhanced deposition of NPs in the murine tumor models. The CAN-Mag@PNPs-PEG-REGAcp-PEG/tPA-pep1(Lac) interlocking steps strategy of NPs delivery and deposition in pancreatic tumor is promising. BioMed Central 2016-12-19 /pmc/articles/PMC5168863/ /pubmed/27993133 http://dx.doi.org/10.1186/s12951-016-0236-3 Text en © The Author(s) 2016 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Research
Dobiasch, Sophie
Szanyi, Szilard
Kjaev, Aleko
Werner, Jens
Strauss, Albert
Weis, Christian
Grenacher, Lars
Kapilov-Buchman, Katya
Israel, Liron-Limor
Lellouche, Jean-Paul
Locatelli, Erica
Franchini, Mauro Comes
Vandooren, Jennifer
Opdenakker, Ghislain
Felix, Klaus
Synthesis and functionalization of protease-activated nanoparticles with tissue plasminogen activator peptides as targeting moiety and diagnostic tool for pancreatic cancer
title Synthesis and functionalization of protease-activated nanoparticles with tissue plasminogen activator peptides as targeting moiety and diagnostic tool for pancreatic cancer
title_full Synthesis and functionalization of protease-activated nanoparticles with tissue plasminogen activator peptides as targeting moiety and diagnostic tool for pancreatic cancer
title_fullStr Synthesis and functionalization of protease-activated nanoparticles with tissue plasminogen activator peptides as targeting moiety and diagnostic tool for pancreatic cancer
title_full_unstemmed Synthesis and functionalization of protease-activated nanoparticles with tissue plasminogen activator peptides as targeting moiety and diagnostic tool for pancreatic cancer
title_short Synthesis and functionalization of protease-activated nanoparticles with tissue plasminogen activator peptides as targeting moiety and diagnostic tool for pancreatic cancer
title_sort synthesis and functionalization of protease-activated nanoparticles with tissue plasminogen activator peptides as targeting moiety and diagnostic tool for pancreatic cancer
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5168863/
https://www.ncbi.nlm.nih.gov/pubmed/27993133
http://dx.doi.org/10.1186/s12951-016-0236-3
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