Cargando…

Targeting In-Stent-Stenosis with RGD- and CXCL1-Coated Mini-Stents in Mice

Atherosclerotic lesions that critically narrow the artery can necessitate an angioplasty and stent implantation. Long-term therapeutic effects, however, are limited by excessive arterial remodeling. We here employed a miniaturized nitinol-stent coated with star-shaped polyethylenglycole (star-PEG),...

Descripción completa

Detalles Bibliográficos
Autores principales: Simsekyilmaz, Sakine, Liehn, Elisa A., Weinandy, Stefan, Schreiber, Fabian, Megens, Remco T. A., Theelen, Wendy, Smeets, Ralf, Jockenhövel, Stefan, Gries, Thomas, Möller, Martin, Klee, Doris, Weber, Christian, Zernecke, Alma
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4871500/
https://www.ncbi.nlm.nih.gov/pubmed/27192172
http://dx.doi.org/10.1371/journal.pone.0155829
_version_ 1782432605219586048
author Simsekyilmaz, Sakine
Liehn, Elisa A.
Weinandy, Stefan
Schreiber, Fabian
Megens, Remco T. A.
Theelen, Wendy
Smeets, Ralf
Jockenhövel, Stefan
Gries, Thomas
Möller, Martin
Klee, Doris
Weber, Christian
Zernecke, Alma
author_facet Simsekyilmaz, Sakine
Liehn, Elisa A.
Weinandy, Stefan
Schreiber, Fabian
Megens, Remco T. A.
Theelen, Wendy
Smeets, Ralf
Jockenhövel, Stefan
Gries, Thomas
Möller, Martin
Klee, Doris
Weber, Christian
Zernecke, Alma
author_sort Simsekyilmaz, Sakine
collection PubMed
description Atherosclerotic lesions that critically narrow the artery can necessitate an angioplasty and stent implantation. Long-term therapeutic effects, however, are limited by excessive arterial remodeling. We here employed a miniaturized nitinol-stent coated with star-shaped polyethylenglycole (star-PEG), and evaluated its bio-functionalization with RGD and CXCL1 for improving in-stent stenosis after implantation into carotid arteries of mice. Nitinol foils or stents (bare metal) were coated with star-PEG, and bio-functionalized with RGD, or RGD/CXCL1. Cell adhesion to star-PEG-coated nitinol foils was unaltered or reduced, whereas bio-functionalization with RGD but foremost RGD/CXCL1 increased adhesion of early angiogenic outgrowth cells (EOCs) and endothelial cells but not smooth muscle cells when compared with bare metal foils. Stimulation of cells with RGD/CXCL1 furthermore increased the proliferation of EOCs. In vivo, bio-functionalization with RGD/CXCL1 significantly reduced neointima formation and thrombus formation, and increased re-endothelialization in apoE(-/-) carotid arteries compared with bare-metal nitinol stents, star-PEG-coated stents, and stents bio-functionalized with RGD only. Bio-functionalization of star-PEG-coated nitinol-stents with RGD/CXCL1 reduced in-stent neointima formation. By supporting the adhesion and proliferation of endothelial progenitor cells, RGD/CXCL1 coating of stents may help to accelerate endothelial repair after stent implantation, and thus may harbor the potential to limit the complication of in-stent restenosis in clinical approaches.
format Online
Article
Text
id pubmed-4871500
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-48715002016-05-31 Targeting In-Stent-Stenosis with RGD- and CXCL1-Coated Mini-Stents in Mice Simsekyilmaz, Sakine Liehn, Elisa A. Weinandy, Stefan Schreiber, Fabian Megens, Remco T. A. Theelen, Wendy Smeets, Ralf Jockenhövel, Stefan Gries, Thomas Möller, Martin Klee, Doris Weber, Christian Zernecke, Alma PLoS One Research Article Atherosclerotic lesions that critically narrow the artery can necessitate an angioplasty and stent implantation. Long-term therapeutic effects, however, are limited by excessive arterial remodeling. We here employed a miniaturized nitinol-stent coated with star-shaped polyethylenglycole (star-PEG), and evaluated its bio-functionalization with RGD and CXCL1 for improving in-stent stenosis after implantation into carotid arteries of mice. Nitinol foils or stents (bare metal) were coated with star-PEG, and bio-functionalized with RGD, or RGD/CXCL1. Cell adhesion to star-PEG-coated nitinol foils was unaltered or reduced, whereas bio-functionalization with RGD but foremost RGD/CXCL1 increased adhesion of early angiogenic outgrowth cells (EOCs) and endothelial cells but not smooth muscle cells when compared with bare metal foils. Stimulation of cells with RGD/CXCL1 furthermore increased the proliferation of EOCs. In vivo, bio-functionalization with RGD/CXCL1 significantly reduced neointima formation and thrombus formation, and increased re-endothelialization in apoE(-/-) carotid arteries compared with bare-metal nitinol stents, star-PEG-coated stents, and stents bio-functionalized with RGD only. Bio-functionalization of star-PEG-coated nitinol-stents with RGD/CXCL1 reduced in-stent neointima formation. By supporting the adhesion and proliferation of endothelial progenitor cells, RGD/CXCL1 coating of stents may help to accelerate endothelial repair after stent implantation, and thus may harbor the potential to limit the complication of in-stent restenosis in clinical approaches. Public Library of Science 2016-05-18 /pmc/articles/PMC4871500/ /pubmed/27192172 http://dx.doi.org/10.1371/journal.pone.0155829 Text en © 2016 Simsekyilmaz et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Simsekyilmaz, Sakine
Liehn, Elisa A.
Weinandy, Stefan
Schreiber, Fabian
Megens, Remco T. A.
Theelen, Wendy
Smeets, Ralf
Jockenhövel, Stefan
Gries, Thomas
Möller, Martin
Klee, Doris
Weber, Christian
Zernecke, Alma
Targeting In-Stent-Stenosis with RGD- and CXCL1-Coated Mini-Stents in Mice
title Targeting In-Stent-Stenosis with RGD- and CXCL1-Coated Mini-Stents in Mice
title_full Targeting In-Stent-Stenosis with RGD- and CXCL1-Coated Mini-Stents in Mice
title_fullStr Targeting In-Stent-Stenosis with RGD- and CXCL1-Coated Mini-Stents in Mice
title_full_unstemmed Targeting In-Stent-Stenosis with RGD- and CXCL1-Coated Mini-Stents in Mice
title_short Targeting In-Stent-Stenosis with RGD- and CXCL1-Coated Mini-Stents in Mice
title_sort targeting in-stent-stenosis with rgd- and cxcl1-coated mini-stents in mice
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4871500/
https://www.ncbi.nlm.nih.gov/pubmed/27192172
http://dx.doi.org/10.1371/journal.pone.0155829
work_keys_str_mv AT simsekyilmazsakine targetinginstentstenosiswithrgdandcxcl1coatedministentsinmice
AT liehnelisaa targetinginstentstenosiswithrgdandcxcl1coatedministentsinmice
AT weinandystefan targetinginstentstenosiswithrgdandcxcl1coatedministentsinmice
AT schreiberfabian targetinginstentstenosiswithrgdandcxcl1coatedministentsinmice
AT megensremcota targetinginstentstenosiswithrgdandcxcl1coatedministentsinmice
AT theelenwendy targetinginstentstenosiswithrgdandcxcl1coatedministentsinmice
AT smeetsralf targetinginstentstenosiswithrgdandcxcl1coatedministentsinmice
AT jockenhovelstefan targetinginstentstenosiswithrgdandcxcl1coatedministentsinmice
AT griesthomas targetinginstentstenosiswithrgdandcxcl1coatedministentsinmice
AT mollermartin targetinginstentstenosiswithrgdandcxcl1coatedministentsinmice
AT kleedoris targetinginstentstenosiswithrgdandcxcl1coatedministentsinmice
AT weberchristian targetinginstentstenosiswithrgdandcxcl1coatedministentsinmice
AT zerneckealma targetinginstentstenosiswithrgdandcxcl1coatedministentsinmice