Shape-dependent cell migration and focal adhesion organization on suspended and aligned nanofiber scaffolds.
Acta Biomater
; 9(7): 7169-77, 2013 Jul.
Article
em En
| MEDLINE
| ID: mdl-23567946
In the body, cells dynamically respond to chemical and mechanical cues from the extracellular matrix (ECM), yet precise mechanisms by which biophysical parameters (stiffness, topography and alignment) affect cell behavior remain unclear. Here, highly aligned and suspended multilayer polystyrene (PS) nanofiber scaffolds are used to study biophysical influences on focal adhesion complex (FAC) arrangement and associated migration behavior of mouse C2C12 cells arranged in specific shapes: spindle, parallel and polygonal. Furthermore, the role of cytoskeletal-altering drugs including blebbistatin, nocodazole and cytochalasin-D on FAC formation and migratory behavior is investigated. For the first time, this work reports that cells on suspended fiber networks, including cells with administered drugs, elongated along the fiber axes and developed longer (â¼ 4×) and more concentrated FAC clusters compared to cells on flat PS control substrates. Additionally, substrate designs which topographically restrict sites of cell attachment and align adhesions were found to promote higher migration speeds (spindle: 52µmh(-1), parallel: 39µmh(-1), polygonal: 25µmh(-1), flat: 32µmh(-1)). This work demonstrates that suspended fiber topography-induced concentration of FACs along fiber axes generates increased migration potential as opposed to flat surfaces, which diffuse and randomly orient adhesions.
Texto completo:
1
Base de dados:
MEDLINE
Assunto principal:
Poliestirenos
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Mioblastos
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Mecanotransdução Celular
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Matriz Extracelular
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Alicerces Teciduais
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Nanofibras
Limite:
Animals
Idioma:
En
Ano de publicação:
2013
Tipo de documento:
Article