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Forces Generated During Actin-based Propulsion: a Direct Measurement by Micromanipulation

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Specialty Science
Date 2004 Apr 14
PMID 15079054
Citations 106
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Abstract

Dynamic actin networks generate forces for numerous types of movements such as lamellipodia protrusion or the motion of endocytic vesicles. The actin-based propulsive movement of Listeria monocytogenes or of functionalized microspheres have been extensively used as model systems to identify the biochemical components that are necessary for actin-based motility. However, quantitative force measurements are required to elucidate the mechanism of force generation, which is still under debate. To directly probe the forces generated in the process of actin-based propulsion, we developed a micromanipulation experiment. A comet growing from a coated polystyrene bead is held by a micropipette while the bead is attached to a force probe, by using a specially designed "flexible handle." This system allows us to apply both pulling and pushing external forces up to a few nanonewtons. By pulling the actin tail away from the bead at high speed, we estimate the elastic modulus of the gel and measure the force necessary to detach the tail from the bead. By applying a constant force in the range of -1.7 to 4.3 nN, the force-velocity relation is established. We find that the relation is linear for pulling forces and decays more weakly for pushing forces. This behavior is explained by using a dimensional elastic analysis.

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References
1.
Mullins R, Heuser J, Pollard T . The interaction of Arp2/3 complex with actin: nucleation, high affinity pointed end capping, and formation of branching networks of filaments. Proc Natl Acad Sci U S A. 1998; 95(11):6181-6. PMC: 27619. DOI: 10.1073/pnas.95.11.6181. View

2.
Bernheim-Groswasser A, Wiesner S, Golsteyn R, Carlier M, Sykes C . The dynamics of actin-based motility depend on surface parameters. Nature. 2002; 417(6886):308-11. DOI: 10.1038/417308a. View

3.
Pantaloni D, Boujemaa R, Didry D, Gounon P, Carlier M . The Arp2/3 complex branches filament barbed ends: functional antagonism with capping proteins. Nat Cell Biol. 2000; 2(7):385-91. DOI: 10.1038/35017011. View

4.
Gerbal F, Chaikin P, Rabin Y, Prost J . An elastic analysis of Listeria monocytogenes propulsion. Biophys J. 2000; 79(5):2259-75. PMC: 1301115. DOI: 10.1016/S0006-3495(00)76473-3. View

5.
Merrifield C, Moss S, Ballestrem C, Imhof B, Giese G, Wunderlich I . Endocytic vesicles move at the tips of actin tails in cultured mast cells. Nat Cell Biol. 1999; 1(1):72-4. DOI: 10.1038/9048. View