Material surface topography is an important factor for regulating cellular behaviour. Understanding the mechanism of how surface topography influences mammalian cells is critical for the development of medical implants and tissue engineering. In this study, we investigated the influences of nanoporous and microgrooved substrates on the morphology and migration of hepatic cell line, BEL-7402 cells. Cells were cultured on nanoporous (140 nm in diameter) anodized alumina membrane (AAM), nanoporous (140 nm in diameter) polydimethylsiloxane (PDMS), and microgrooves (10 μm, 30 μm, and 50 μm in width, and 2 μm in depth) patterned PDMS, then imaged by fluorescent microscopy, time-lapse microscopy, and scanning electron microscopy (SEM). Cell morpho...
This article demonstrates that the micro-topography of the surface with respect to the pattern size ...
The cell adhesion and migration behavior on different nanopatterned surfaces was investigated to det...
A cell’s interaction with its extracellular environment is critical to tissue structure and function...
Understanding the mechanism of how surface topography influences mammalian cells is important for th...
Substratum effects of micro- and nano-scaled structures on mammalian cell lines have experienced rap...
Cell migration plays fundamental roles in the development and maintenance of organisms such as wound...
Membranes made from nanoporous alumina exhibit interesting properties for their use in biomedical re...
The natural environment of a living cell is not only organized on a micrometer, but also on a nanome...
It is now well recognized that cellular behaviour on topographically modified materials is of great ...
The natural environment of a living cell is not only organized on a micrometer, but also on a nanome...
Cell culture substrates for contact guidance studies can be developed through polymer processing to ...
In recent years, research utilizing micro- and nanoscale geometries and structures on biomaterials t...
In this report, we evaluate the impact of a systematic change to the extracellular environment on ce...
Three-dimensional polydimethylsiloxane platforms were developed to mimic the extracellular matrix wi...
This article demonstrates that the micro-topography of the surface with respect to the pattern size ...
This article demonstrates that the micro-topography of the surface with respect to the pattern size ...
The cell adhesion and migration behavior on different nanopatterned surfaces was investigated to det...
A cell’s interaction with its extracellular environment is critical to tissue structure and function...
Understanding the mechanism of how surface topography influences mammalian cells is important for th...
Substratum effects of micro- and nano-scaled structures on mammalian cell lines have experienced rap...
Cell migration plays fundamental roles in the development and maintenance of organisms such as wound...
Membranes made from nanoporous alumina exhibit interesting properties for their use in biomedical re...
The natural environment of a living cell is not only organized on a micrometer, but also on a nanome...
It is now well recognized that cellular behaviour on topographically modified materials is of great ...
The natural environment of a living cell is not only organized on a micrometer, but also on a nanome...
Cell culture substrates for contact guidance studies can be developed through polymer processing to ...
In recent years, research utilizing micro- and nanoscale geometries and structures on biomaterials t...
In this report, we evaluate the impact of a systematic change to the extracellular environment on ce...
Three-dimensional polydimethylsiloxane platforms were developed to mimic the extracellular matrix wi...
This article demonstrates that the micro-topography of the surface with respect to the pattern size ...
This article demonstrates that the micro-topography of the surface with respect to the pattern size ...
The cell adhesion and migration behavior on different nanopatterned surfaces was investigated to det...
A cell’s interaction with its extracellular environment is critical to tissue structure and function...