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Non-specific adhesive forces between filaments and membraneless organelles
by
Allain, Frédéric H. T.
, Dufresne, Eric R.
, Berchtold, Doris
, Pelkmans, Lucas
, Han, Yaning
, Böddeker, Thomas J.
, Rosowski, Kathryn A.
, Style, Robert W.
, Emmanouilidis, Leonidas
in
631/57/2268
/ 631/57/2282
/ 639/301/923/1028
/ 639/301/923/1030
/ 639/301/923/916
/ Adhesion
/ Adhesives
/ Affinity
/ Atomic
/ Classical and Continuum Physics
/ Complex Systems
/ Condensed Matter Physics
/ Cytoplasm
/ Cytoskeleton
/ Depolymerization
/ Droplets
/ Epithelium
/ Filaments
/ Granular materials
/ Mathematical and Computational Physics
/ Molecular
/ Optical and Plasma Physics
/ Organelles
/ Phase separation
/ Physics
/ Physics and Astronomy
/ Proteins
/ Theoretical
/ Thermodynamic models
2022
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Non-specific adhesive forces between filaments and membraneless organelles
by
Allain, Frédéric H. T.
, Dufresne, Eric R.
, Berchtold, Doris
, Pelkmans, Lucas
, Han, Yaning
, Böddeker, Thomas J.
, Rosowski, Kathryn A.
, Style, Robert W.
, Emmanouilidis, Leonidas
in
631/57/2268
/ 631/57/2282
/ 639/301/923/1028
/ 639/301/923/1030
/ 639/301/923/916
/ Adhesion
/ Adhesives
/ Affinity
/ Atomic
/ Classical and Continuum Physics
/ Complex Systems
/ Condensed Matter Physics
/ Cytoplasm
/ Cytoskeleton
/ Depolymerization
/ Droplets
/ Epithelium
/ Filaments
/ Granular materials
/ Mathematical and Computational Physics
/ Molecular
/ Optical and Plasma Physics
/ Organelles
/ Phase separation
/ Physics
/ Physics and Astronomy
/ Proteins
/ Theoretical
/ Thermodynamic models
2022
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
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Non-specific adhesive forces between filaments and membraneless organelles
by
Allain, Frédéric H. T.
, Dufresne, Eric R.
, Berchtold, Doris
, Pelkmans, Lucas
, Han, Yaning
, Böddeker, Thomas J.
, Rosowski, Kathryn A.
, Style, Robert W.
, Emmanouilidis, Leonidas
in
631/57/2268
/ 631/57/2282
/ 639/301/923/1028
/ 639/301/923/1030
/ 639/301/923/916
/ Adhesion
/ Adhesives
/ Affinity
/ Atomic
/ Classical and Continuum Physics
/ Complex Systems
/ Condensed Matter Physics
/ Cytoplasm
/ Cytoskeleton
/ Depolymerization
/ Droplets
/ Epithelium
/ Filaments
/ Granular materials
/ Mathematical and Computational Physics
/ Molecular
/ Optical and Plasma Physics
/ Organelles
/ Phase separation
/ Physics
/ Physics and Astronomy
/ Proteins
/ Theoretical
/ Thermodynamic models
2022
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Non-specific adhesive forces between filaments and membraneless organelles
Journal Article
Non-specific adhesive forces between filaments and membraneless organelles
2022
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Overview
Many membraneless organelles are liquid-like domains that form inside the active, viscoelastic environment of living cells through phase separation. To investigate the potential coupling of phase separation with the cytoskeleton, we quantify the structural correlations of membraneless organelles (stress granules) and cytoskeletal filaments (microtubules) in a human-derived epithelial cell line. We find that microtubule networks are substantially denser in the vicinity of stress granules. When microtubules are depolymerized, the sub-units localize near the surface of the stress granules. We interpret these data using a thermodynamic model of partitioning of particles to the surface and bulk of the droplets. In this framework, our data are consistent with a weak (≲
k
B
T
) affinity of the microtubule sub-units for stress granule interfaces. As microtubules polymerize, their interfacial affinity increases, providing sufficient adhesion to deform droplets and/or the network. Our work suggests that proteins and other objects in the cell have a non-specific affinity for droplet interfaces that increases with the contact area and becomes most apparent when they have no preference for the interior of a droplet over the rest of the cytoplasm. We validate this basic physical phenomenon in vitro through the interaction of a simple protein–RNA condensate with microtubules.
Many organelles in the cell are not encapsulated in a membrane—they are liquid-like domains formed through phase separation. The liquid-like nature of such domains leads to adhesive interactions between the cytoskeleton filaments and organelles.
Publisher
Nature Publishing Group UK,Nature Publishing Group
Subject
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