» Articles » PMID: 35389747

Load Adaptation by Endocytic Actin Networks

Overview
Journal Mol Biol Cell
Date 2022 Apr 7
PMID 35389747
Authors
Affiliations
Soon will be listed here.
Abstract

Clathrin-mediated endocytosis (CME) robustness under elevated membrane tension is maintained by actin assembly-mediated force generation. However, whether more actin assembles at endocytic sites in response to increased load has not previously been investigated. Here actin network ultrastructure at CME sites was examined under low and high membrane tension. Actin and N-WASP spatial organization indicate that actin polymerization initiates at the base of clathrin-coated pits and that the network then grows away from the plasma membrane. Actin network height at individual CME sites was not coupled to coat shape, raising the possibility that local differences in mechanical load feed back on assembly. By manipulating membrane tension and Arp2/3 complex activity, we tested the hypothesis that actin assembly at CME sites increases in response to elevated load. Indeed, in response to elevated membrane tension, actin grew higher, resulting in greater coverage of the clathrin coat, and CME slowed. When membrane tension was elevated and the Arp2/3 complex was inhibited, shallow clathrin-coated pits accumulated, indicating that this adaptive mechanism is especially crucial for coat curvature generation. We propose that actin assembly increases in response to increased load to ensure CME robustness over a range of plasma membrane tensions.

Citing Articles

Endocytic myosin-1 is a force-insensitive, power-generating motor.

Pedersen R, Snoberger A, Pyrpassopoulos S, Safer D, Drubin D, Ostap E J Cell Biol. 2023; 222(10).

PMID: 37549220 PMC: 10406613. DOI: 10.1083/jcb.202303095.


Theoretical model of membrane protrusions driven by curved active proteins.

Ravid Y, Penic S, Mimori-Kiyosue Y, Suetsugu S, Iglic A, Gov N Front Mol Biosci. 2023; 10:1153420.

PMID: 37228585 PMC: 10203436. DOI: 10.3389/fmolb.2023.1153420.


Endocytic myosin-1 is a force-insensitive, power-generating motor.

Pedersen R, Snoberger A, Pyrpassopoulos S, Safer D, Drubin D, Ostap E bioRxiv. 2023; .

PMID: 36993306 PMC: 10055380. DOI: 10.1101/2023.03.21.533689.


Clathrin coats partially preassemble and subsequently bend during endocytosis.

Mund M, Tschanz A, Wu Y, Frey F, Mehl J, Kaksonen M J Cell Biol. 2023; 222(3).

PMID: 36734980 PMC: 9929656. DOI: 10.1083/jcb.202206038.


Actin polymerization promotes invagination of flat clathrin-coated lattices in mammalian cells by pushing at lattice edges.

Yang C, Colosi P, Hugelier S, Zabezhinsky D, Lakadamyali M, Svitkina T Nat Commun. 2022; 13(1):6127.

PMID: 36253374 PMC: 9576739. DOI: 10.1038/s41467-022-33852-2.


References
1.
Yarar D, Waterman-Storer C, Schmid S . SNX9 couples actin assembly to phosphoinositide signals and is required for membrane remodeling during endocytosis. Dev Cell. 2007; 13(1):43-56. DOI: 10.1016/j.devcel.2007.04.014. View

2.
Xu K, Zhong G, Zhuang X . Actin, spectrin, and associated proteins form a periodic cytoskeletal structure in axons. Science. 2012; 339(6118):452-6. PMC: 3815867. DOI: 10.1126/science.1232251. View

3.
Shi Z, Graber Z, Baumgart T, Stone H, Cohen A . Cell Membranes Resist Flow. Cell. 2018; 175(7):1769-1779.e13. PMC: 6541487. DOI: 10.1016/j.cell.2018.09.054. View

4.
Djakbarova U, Madraki Y, Chan E, Kural C . Dynamic interplay between cell membrane tension and clathrin-mediated endocytosis. Biol Cell. 2021; 113(8):344-373. PMC: 8898183. DOI: 10.1111/boc.202000110. View

5.
Aghamohammadzadeh S, Ayscough K . Differential requirements for actin during yeast and mammalian endocytosis. Nat Cell Biol. 2009; 11(8):1039-42. PMC: 2875176. DOI: 10.1038/ncb1918. View