In addition to creating a physical boundary, cell membranes provide critical platforms for many biological processes. Due to the complexity of the membrane composition, it is a challenging task to study the functions of membrane-associated proteins. Here, we present a general protocol by which we use giant unilamellar vesicles (GUV) as a tool to study AGO proteins’ behavior on the membrane. We provide procedures to prepare fluorescent-labeled protein and GUVs and describe the protein phase separation in 3D time-lapse images
International audienceA simple method for the reconstitution of membrane protein from submicron prot...
AbstractCharacterization of phase coexistence in biologically relevant lipid mixtures is often carri...
The use of artificial lipid membranes, structured as giant unilamellar vesicles (GUVs), provides the...
AbstractThe components of biological membranes are present in a physical mixture. The nonrandom ways...
There is accumulating evidence that the small-scale lateral organization of biological membranes has...
AbstractGiant Unilamellar Vesicles (GUVs) provide a key model membrane system to study lipid–lipid a...
Giant Unilamellar Vesicles (GUVs) provide a key model membrane system to study lipid-lipid and lipid...
Giant Unilamellar Vesicles (GUVs) provide a key model membrane system to study lipid-lipid and lipid...
T he observation of phase separation in intact plasma membranes isolated from live cells is a breakt...
In this work, we present a protocol to reconstitute membrane proteins into giant unilamellar vesicle...
Although investigation into the structure of eukaryotic cell membranes has been an intense focus of ...
Giant unilamellar vesicles (GUVs) have gained great popularity as mimicries for cellular membranes. ...
AbstractIn this work, we present a protocol to reconstitute membrane proteins into giant unilamellar...
ABSTRACT In this work, we present a protocol to reconstitute membrane proteins into giant unilamella...
AbstractGUVs have been widely used for studies on lipid mobility, membrane dynamics and lipid domain...
International audienceA simple method for the reconstitution of membrane protein from submicron prot...
AbstractCharacterization of phase coexistence in biologically relevant lipid mixtures is often carri...
The use of artificial lipid membranes, structured as giant unilamellar vesicles (GUVs), provides the...
AbstractThe components of biological membranes are present in a physical mixture. The nonrandom ways...
There is accumulating evidence that the small-scale lateral organization of biological membranes has...
AbstractGiant Unilamellar Vesicles (GUVs) provide a key model membrane system to study lipid–lipid a...
Giant Unilamellar Vesicles (GUVs) provide a key model membrane system to study lipid-lipid and lipid...
Giant Unilamellar Vesicles (GUVs) provide a key model membrane system to study lipid-lipid and lipid...
T he observation of phase separation in intact plasma membranes isolated from live cells is a breakt...
In this work, we present a protocol to reconstitute membrane proteins into giant unilamellar vesicle...
Although investigation into the structure of eukaryotic cell membranes has been an intense focus of ...
Giant unilamellar vesicles (GUVs) have gained great popularity as mimicries for cellular membranes. ...
AbstractIn this work, we present a protocol to reconstitute membrane proteins into giant unilamellar...
ABSTRACT In this work, we present a protocol to reconstitute membrane proteins into giant unilamella...
AbstractGUVs have been widely used for studies on lipid mobility, membrane dynamics and lipid domain...
International audienceA simple method for the reconstitution of membrane protein from submicron prot...
AbstractCharacterization of phase coexistence in biologically relevant lipid mixtures is often carri...
The use of artificial lipid membranes, structured as giant unilamellar vesicles (GUVs), provides the...