Cellular processes like membrane deformation, cell migration, and transport of organelles are sensitive to mechanical forces. Technically, these cellular processes can be manipulated through operating forces at a spatial precision in the range of nanometers up to a few micrometers through chaperoning force-mediating nanoparticles in electrical, magnetic, or optical field gradients. But which force-mediating tool is more suitable to manipulate cell migration, and which, to manipulate cell signaling? We review here the differences in forces sensation to control and engineer cellular processes inside and outside the cell, with a special focus on neuronal cells. In addition, we discuss technical details and limitations of different force-mediat...
We report a technique for generating controllable, time-varying and localizable forces on arrays of ...
Cellular domains accrue mechanical fluctuations as a means of communication. The process by which th...
We introduce cubic magnetic nanoparticles as an effective tool for precise and ultrafast control of ...
BACKGROUND: The ability to direct and manipulate neuronal cells has important potential in therapeut...
The remote actuation of cellular processes such as migration or neuronal outgrowth is a challenge fo...
Vesicle transport is a major underlying mechanism of cell communication. Inhibiting vesicle transpor...
The use of magnetic nanoparticles (MNPs) is a promising technique for future advances in biomedical ...
The ability to sense and manipulate the state of biological systems has been extensively advanced du...
Single cells, despite being the base unit of living organisms, possess a high degree of hierarchical...
Intra- and extracellular signaling play critical roles in cell polarity, ultimately leading to the d...
Magnetic nanoparticles are promising new tools for therapeutic applications, such as magnetic nanopa...
Magnetic nanoparticles can be coated with specific ligands that enable them to bind to receptors on ...
Mechanical stimulation modulates neural development and neuronal activity. In a previous study, magn...
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 ...
We report a technique for generating controllable, time-varying and localizable forces on arrays of ...
Cellular domains accrue mechanical fluctuations as a means of communication. The process by which th...
We introduce cubic magnetic nanoparticles as an effective tool for precise and ultrafast control of ...
BACKGROUND: The ability to direct and manipulate neuronal cells has important potential in therapeut...
The remote actuation of cellular processes such as migration or neuronal outgrowth is a challenge fo...
Vesicle transport is a major underlying mechanism of cell communication. Inhibiting vesicle transpor...
The use of magnetic nanoparticles (MNPs) is a promising technique for future advances in biomedical ...
The ability to sense and manipulate the state of biological systems has been extensively advanced du...
Single cells, despite being the base unit of living organisms, possess a high degree of hierarchical...
Intra- and extracellular signaling play critical roles in cell polarity, ultimately leading to the d...
Magnetic nanoparticles are promising new tools for therapeutic applications, such as magnetic nanopa...
Magnetic nanoparticles can be coated with specific ligands that enable them to bind to receptors on ...
Mechanical stimulation modulates neural development and neuronal activity. In a previous study, magn...
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 ...
We report a technique for generating controllable, time-varying and localizable forces on arrays of ...
Cellular domains accrue mechanical fluctuations as a means of communication. The process by which th...
We introduce cubic magnetic nanoparticles as an effective tool for precise and ultrafast control of ...