International audienceMany biological functions rely on the reshaping of cell membranes, in particular into nanotubes, which are covered in vivo by dynamic actin networks. Nanotubes are subject to thermal fluctuations, but the effect of these on cell functions is unknown. Here, we form nanotubes from liposomes using an optically trapped bead adhering to the liposome membrane. From the power spectral density of this bead, we study the nanotube fluctuations in the range of membrane tensions measured in vivo. We show that an actin sleeve covering the nanotube damps its high-frequency fluctuations because of the network viscoelasticity. Our work paves the way for further studies of the effect of nanotube fluctuations on cellular functions
AbstractCell-shape changes are insured by a thin, dynamic, cortical layer of cytoskeleton underneath...
International audienceMembrane nanotubes are continuously assembled and disassembled by the cell to ...
We report on the self-organized formation and dynamics of artificial lipid nanotube networks, which,...
International audiencePulling membrane nanotubes from liposomes presents a powerful method to gain a...
Intracellular transport involves membrane compartments and thus requires dynamic changes in the morp...
Lipid membrane nanotubes are abundant in living cells, even though tubules are energetically less st...
ABSTRACT A localized point-like force applied perpendicular to a vesicular membrane layer, using an ...
Membrane nanotubes are dynamic structures that may connect cells over long distances. Nanotubes are ...
International audienceIn cell mechanics, distinguishing the respective roles of the plasma membrane ...
In cell mechanics, distinguishing the respective roles of the plasma membrane and of the cytoskeleto...
Lipid membrane nanotubes are abundant in living cells, even though tubules are energetically less st...
International audienceCell-shape changes are insured by a thin, dynamic, cortical layer of cytoskele...
Cells and their organelles show a variety of membrane morphologies with multiplesubmicrometer featur...
AbstractCell-shape changes are insured by a thin, dynamic, cortical layer of cytoskeleton underneath...
International audienceMembrane nanotubes are continuously assembled and disassembled by the cell to ...
We report on the self-organized formation and dynamics of artificial lipid nanotube networks, which,...
International audiencePulling membrane nanotubes from liposomes presents a powerful method to gain a...
Intracellular transport involves membrane compartments and thus requires dynamic changes in the morp...
Lipid membrane nanotubes are abundant in living cells, even though tubules are energetically less st...
ABSTRACT A localized point-like force applied perpendicular to a vesicular membrane layer, using an ...
Membrane nanotubes are dynamic structures that may connect cells over long distances. Nanotubes are ...
International audienceIn cell mechanics, distinguishing the respective roles of the plasma membrane ...
In cell mechanics, distinguishing the respective roles of the plasma membrane and of the cytoskeleto...
Lipid membrane nanotubes are abundant in living cells, even though tubules are energetically less st...
International audienceCell-shape changes are insured by a thin, dynamic, cortical layer of cytoskele...
Cells and their organelles show a variety of membrane morphologies with multiplesubmicrometer featur...
AbstractCell-shape changes are insured by a thin, dynamic, cortical layer of cytoskeleton underneath...
International audienceMembrane nanotubes are continuously assembled and disassembled by the cell to ...
We report on the self-organized formation and dynamics of artificial lipid nanotube networks, which,...