The design of materials to promote the development and/or regeneration of neuronal tissue requires the understanding of the mechanisms by which the underlying substrate topography can modulate neuronal cell differentiation and migration. We recently demonstrated that plastic nanogratings (alternating lines of grooves and ridges of submicrometer size) can effectively change the neuronal polarity state, selecting bipolar cells with aligned neu-rites. Here, we address the effect of nanogratings on the migration properties of differentiating PC12 cells and correlate their behavior with the polarity state induced by the substrate. During neuronal differentiation, cell-substrate interaction is sufficient to induce directional migration along the ...
Three dimensional, nanostructured surfaces have attracted considerable attention in biomedical resea...
It is well established that the behavior of neural cells is influenced by geometrical patterns in th...
The ability to control the differentiation of stem cells into specific neuronal types has a tremendo...
The design of materials to promote the development and/or regeneration of neuronal tissue requires t...
Interaction between differentiating neurons and the extracellular environment guides the establishme...
During development and regeneration of the mammalian nervous system, directional signals guide diffe...
Controlling neuronal cell adhesion, migration, and axonal outgrowth via contact interactions with bi...
The biologica1 and mechanical functions of in-vitro generated tissues largely depend on the spatial ...
Modulation of a materials surface topography can be used to steer various aspects of adherent cell b...
The development of biomaterials ensuring proper cell adhesion, polarization, migration and different...
The interaction between differentiating neurons and the extracellular environment guides the establi...
Recently, the effects of nanogratings have been investigated on PC12 with respect to cell polarity, ...
*S Supporting Information ABSTRACT: We employ glass microtube structures fabricated by rolled-up nan...
BACKGROUND: Recently, the effects of nanogratings have been investigated on PC12 with respect to cel...
Cells are exposed to specific directional physical signals determined by the micro/nano-environment ...
Three dimensional, nanostructured surfaces have attracted considerable attention in biomedical resea...
It is well established that the behavior of neural cells is influenced by geometrical patterns in th...
The ability to control the differentiation of stem cells into specific neuronal types has a tremendo...
The design of materials to promote the development and/or regeneration of neuronal tissue requires t...
Interaction between differentiating neurons and the extracellular environment guides the establishme...
During development and regeneration of the mammalian nervous system, directional signals guide diffe...
Controlling neuronal cell adhesion, migration, and axonal outgrowth via contact interactions with bi...
The biologica1 and mechanical functions of in-vitro generated tissues largely depend on the spatial ...
Modulation of a materials surface topography can be used to steer various aspects of adherent cell b...
The development of biomaterials ensuring proper cell adhesion, polarization, migration and different...
The interaction between differentiating neurons and the extracellular environment guides the establi...
Recently, the effects of nanogratings have been investigated on PC12 with respect to cell polarity, ...
*S Supporting Information ABSTRACT: We employ glass microtube structures fabricated by rolled-up nan...
BACKGROUND: Recently, the effects of nanogratings have been investigated on PC12 with respect to cel...
Cells are exposed to specific directional physical signals determined by the micro/nano-environment ...
Three dimensional, nanostructured surfaces have attracted considerable attention in biomedical resea...
It is well established that the behavior of neural cells is influenced by geometrical patterns in th...
The ability to control the differentiation of stem cells into specific neuronal types has a tremendo...