The remote actuation of cellular processes such as migration or neuronal outgrowth is a challenge for future therapeutic applications in regenerative medicine. Among the different methods that have been proposed, the use of magnetic nanoparticles appears to be promising, since magnetic fields can act at a distance without interactions with the surrounding biological system. To control biological processes at a subcellular spatial resolution, magnetic nanoparticles can be used either to induce biochemical reactions locally or to apply forces on different elements of the cell. Here, we show that cell migration and neurite outgrowth can be directed by the forces produced by a switchable parallelized array of micro-magnetic pillars, following t...
Magnetic nanoparticles (MNP) are extremely versatile tools in bioengineering and medicine with diver...
The success of cell therapy approaches is greatly dependent on the ability to precisely deliver and ...
Live mammalian cells are captured and manipulated in magneto-fluidic traps created in a suspension o...
The ability to control the growth and orientation of neurites over long distances has significant im...
Cellular processes like membrane deformation, cell migration, and transport of organelles are sensit...
BACKGROUND: The ability to direct and manipulate neuronal cells has important potential in therapeut...
Single cells, despite being the base unit of living organisms, possess a high degree of hierarchical...
We report a technique for generating controllable, time-varying and localizable forces on arrays of ...
Cell migration plays an important role in numerous normal and pathological processes. The physical m...
We report a technique for generating controllable, time-varying and localizable forces on arrays of ...
Magnetic nanoparticles are promising new tools for therapeutic applications, such as magnetic nanopa...
Immunotherapy is currently being investigated for the treatment of many diseases, including cancer. ...
During the last decade, the possibility to remotely control intracellular pathways using physical to...
<div><p>Interactions between a micro-magnet array and living cells may guide the establishment of ce...
The success of cell therapy approaches is greatly dependent on the ability to precisely deliver and ...
Magnetic nanoparticles (MNP) are extremely versatile tools in bioengineering and medicine with diver...
The success of cell therapy approaches is greatly dependent on the ability to precisely deliver and ...
Live mammalian cells are captured and manipulated in magneto-fluidic traps created in a suspension o...
The ability to control the growth and orientation of neurites over long distances has significant im...
Cellular processes like membrane deformation, cell migration, and transport of organelles are sensit...
BACKGROUND: The ability to direct and manipulate neuronal cells has important potential in therapeut...
Single cells, despite being the base unit of living organisms, possess a high degree of hierarchical...
We report a technique for generating controllable, time-varying and localizable forces on arrays of ...
Cell migration plays an important role in numerous normal and pathological processes. The physical m...
We report a technique for generating controllable, time-varying and localizable forces on arrays of ...
Magnetic nanoparticles are promising new tools for therapeutic applications, such as magnetic nanopa...
Immunotherapy is currently being investigated for the treatment of many diseases, including cancer. ...
During the last decade, the possibility to remotely control intracellular pathways using physical to...
<div><p>Interactions between a micro-magnet array and living cells may guide the establishment of ce...
The success of cell therapy approaches is greatly dependent on the ability to precisely deliver and ...
Magnetic nanoparticles (MNP) are extremely versatile tools in bioengineering and medicine with diver...
The success of cell therapy approaches is greatly dependent on the ability to precisely deliver and ...
Live mammalian cells are captured and manipulated in magneto-fluidic traps created in a suspension o...