Cargando…

A nano-fibrous platform of copolymer patterned surfaces for controlled cell alignment

The last decade has witnessed great progress in understanding and manipulating self-assembly of block copolymers in solution. A wide variety of micellar structures can be created and many promising applications in bioscience have been reported. In particular, nano-fibrous micelles provide a great pl...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhang, Kai, Arranja, Alexandra, Chen, Hongyu, Mytnyk, Serhii, Wang, Yiming, Oldenhof, Sander, van Esch, Jan H., Mendes, Eduardo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9081099/
https://www.ncbi.nlm.nih.gov/pubmed/35541759
http://dx.doi.org/10.1039/c8ra03527j
_version_ 1784702937298108416
author Zhang, Kai
Arranja, Alexandra
Chen, Hongyu
Mytnyk, Serhii
Wang, Yiming
Oldenhof, Sander
van Esch, Jan H.
Mendes, Eduardo
author_facet Zhang, Kai
Arranja, Alexandra
Chen, Hongyu
Mytnyk, Serhii
Wang, Yiming
Oldenhof, Sander
van Esch, Jan H.
Mendes, Eduardo
author_sort Zhang, Kai
collection PubMed
description The last decade has witnessed great progress in understanding and manipulating self-assembly of block copolymers in solution. A wide variety of micellar structures can be created and many promising applications in bioscience have been reported. In particular, nano-fibrous micelles provide a great platform to mimic the filamentous structure of native extracellular matrix (ECM). However, the evaluation of this kind of filomicellar system with potential use in tissue engineering is virtually unexplored. The question behind it, such as if the block copolymer nano-fibrous micelles can regulate cellular response, has lingered for many years because of the difficulties in preparation and 3D manipulation of these tiny objects. Here, by using a combination approach of self-assembly of block copolymers and soft lithography, we establish a novel and unique nano-fibrous 2D platform of organized micelles and demonstrate that patterned micelles enable control over the cellular alignment behavior. The area density and orientation of fibrous micelles determine the alignment degree and directionality of cells, respectively. Furthermore, when cells were cultured on multi-directionally aligned micelles, a competitive response was observed. Due to the virtually infinite possibilities of functionalization of the micelle corona, our work opens a new route to further mimic the native fibrous networks with artificial micelles containing various functionalities.
format Online
Article
Text
id pubmed-9081099
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-90810992022-05-09 A nano-fibrous platform of copolymer patterned surfaces for controlled cell alignment Zhang, Kai Arranja, Alexandra Chen, Hongyu Mytnyk, Serhii Wang, Yiming Oldenhof, Sander van Esch, Jan H. Mendes, Eduardo RSC Adv Chemistry The last decade has witnessed great progress in understanding and manipulating self-assembly of block copolymers in solution. A wide variety of micellar structures can be created and many promising applications in bioscience have been reported. In particular, nano-fibrous micelles provide a great platform to mimic the filamentous structure of native extracellular matrix (ECM). However, the evaluation of this kind of filomicellar system with potential use in tissue engineering is virtually unexplored. The question behind it, such as if the block copolymer nano-fibrous micelles can regulate cellular response, has lingered for many years because of the difficulties in preparation and 3D manipulation of these tiny objects. Here, by using a combination approach of self-assembly of block copolymers and soft lithography, we establish a novel and unique nano-fibrous 2D platform of organized micelles and demonstrate that patterned micelles enable control over the cellular alignment behavior. The area density and orientation of fibrous micelles determine the alignment degree and directionality of cells, respectively. Furthermore, when cells were cultured on multi-directionally aligned micelles, a competitive response was observed. Due to the virtually infinite possibilities of functionalization of the micelle corona, our work opens a new route to further mimic the native fibrous networks with artificial micelles containing various functionalities. The Royal Society of Chemistry 2018-06-13 /pmc/articles/PMC9081099/ /pubmed/35541759 http://dx.doi.org/10.1039/c8ra03527j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zhang, Kai
Arranja, Alexandra
Chen, Hongyu
Mytnyk, Serhii
Wang, Yiming
Oldenhof, Sander
van Esch, Jan H.
Mendes, Eduardo
A nano-fibrous platform of copolymer patterned surfaces for controlled cell alignment
title A nano-fibrous platform of copolymer patterned surfaces for controlled cell alignment
title_full A nano-fibrous platform of copolymer patterned surfaces for controlled cell alignment
title_fullStr A nano-fibrous platform of copolymer patterned surfaces for controlled cell alignment
title_full_unstemmed A nano-fibrous platform of copolymer patterned surfaces for controlled cell alignment
title_short A nano-fibrous platform of copolymer patterned surfaces for controlled cell alignment
title_sort nano-fibrous platform of copolymer patterned surfaces for controlled cell alignment
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9081099/
https://www.ncbi.nlm.nih.gov/pubmed/35541759
http://dx.doi.org/10.1039/c8ra03527j
work_keys_str_mv AT zhangkai ananofibrousplatformofcopolymerpatternedsurfacesforcontrolledcellalignment
AT arranjaalexandra ananofibrousplatformofcopolymerpatternedsurfacesforcontrolledcellalignment
AT chenhongyu ananofibrousplatformofcopolymerpatternedsurfacesforcontrolledcellalignment
AT mytnykserhii ananofibrousplatformofcopolymerpatternedsurfacesforcontrolledcellalignment
AT wangyiming ananofibrousplatformofcopolymerpatternedsurfacesforcontrolledcellalignment
AT oldenhofsander ananofibrousplatformofcopolymerpatternedsurfacesforcontrolledcellalignment
AT vaneschjanh ananofibrousplatformofcopolymerpatternedsurfacesforcontrolledcellalignment
AT mendeseduardo ananofibrousplatformofcopolymerpatternedsurfacesforcontrolledcellalignment
AT zhangkai nanofibrousplatformofcopolymerpatternedsurfacesforcontrolledcellalignment
AT arranjaalexandra nanofibrousplatformofcopolymerpatternedsurfacesforcontrolledcellalignment
AT chenhongyu nanofibrousplatformofcopolymerpatternedsurfacesforcontrolledcellalignment
AT mytnykserhii nanofibrousplatformofcopolymerpatternedsurfacesforcontrolledcellalignment
AT wangyiming nanofibrousplatformofcopolymerpatternedsurfacesforcontrolledcellalignment
AT oldenhofsander nanofibrousplatformofcopolymerpatternedsurfacesforcontrolledcellalignment
AT vaneschjanh nanofibrousplatformofcopolymerpatternedsurfacesforcontrolledcellalignment
AT mendeseduardo nanofibrousplatformofcopolymerpatternedsurfacesforcontrolledcellalignment