Tools for controlling the spatial organization of proteins are a major prerequisite for deciphering mechanisms governing the dynamic architecture of living cells. Here, we have developed a generic approach for inducing and maintaining protein gradients inside living cells by means of biofunctionalized magnetic nanoparticles (MNPs). For this purpose, we tailored the size and surface properties of MNPs in order to ensure unhindered mobility in the cytosol. These MNPs with a core diameter below 50 nm could be rapidly relocalized in living cells by exploiting biased diffusion at weak magnetic forces in the femto-Newton range. In combination with MNP surface functionalization for specific in situ capturing of target proteins as well as efficient...
Cellular processes like membrane deformation, cell migration, and transport of organelles are sensit...
© The Author(s) 2016.Inspired by the biogenic magnetism found in certain organisms, such as magnetot...
The plasma membrane is the interface through which cells interact with their environment. Membrane p...
Tools for controlling the spatial organization of proteins are a major prerequisite for deciphering ...
Controlling the spatio-temporal organization of biomolecules inside living cells is a major rerequi...
Single cells, despite being the base unit of living organisms, possess a high degree of hierarchical...
Magnetogenetics is emerging as a novel approach for remote-controlled manipulation of cellular funct...
Intracellular biochemical reactions are often localized in space and time, inducing gradients of enz...
Functionalized living cells are regarded as effective tools in directed cell delivery and tissue eng...
The ability to sense and manipulate the state of biological systems has been extensively advanced du...
Functionalized living cells are regarded as effective tools in directed cell delivery and tissue eng...
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 ...
An increasing number of studies highlight the importance of signaling localization. We developed met...
Cellular processes like membrane deformation, cell migration, and transport of organelles are sensit...
© The Author(s) 2016.Inspired by the biogenic magnetism found in certain organisms, such as magnetot...
The plasma membrane is the interface through which cells interact with their environment. Membrane p...
Tools for controlling the spatial organization of proteins are a major prerequisite for deciphering ...
Controlling the spatio-temporal organization of biomolecules inside living cells is a major rerequi...
Single cells, despite being the base unit of living organisms, possess a high degree of hierarchical...
Magnetogenetics is emerging as a novel approach for remote-controlled manipulation of cellular funct...
Intracellular biochemical reactions are often localized in space and time, inducing gradients of enz...
Functionalized living cells are regarded as effective tools in directed cell delivery and tissue eng...
The ability to sense and manipulate the state of biological systems has been extensively advanced du...
Functionalized living cells are regarded as effective tools in directed cell delivery and tissue eng...
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 ...
An increasing number of studies highlight the importance of signaling localization. We developed met...
Cellular processes like membrane deformation, cell migration, and transport of organelles are sensit...
© The Author(s) 2016.Inspired by the biogenic magnetism found in certain organisms, such as magnetot...
The plasma membrane is the interface through which cells interact with their environment. Membrane p...