Crossref journal-article
Springer Science and Business Media LLC
Nature Cell Biology (297)
Bibliography

Martin, A. C., Welch, M. D., & Drubin, D. G. (2006). Arp2/3 ATP hydrolysis-catalysed branch dissociation is critical for endocytic force generation. Nature Cell Biology, 8(8), 826–833.

Authors 3
  1. Adam C. Martin (first)
  2. Matthew D. Welch (additional)
  3. David G. Drubin (additional)
References 30 Referenced 83
  1. Pantaloni, D., Le Clainche, C. & Carlier, M. F. Mechanism of actin-based motility. Science 292, 1502–1506 (2001). (10.1126/science.1059975) / Science by D Pantaloni (2001)
  2. Pollard, T. D. & Borisy, G. G. Cellular motility driven by assembly and disassembly of actin filaments. Cell 112, 453–465 (2003). (10.1016/S0092-8674(03)00120-X) / Cell by TD Pollard (2003)
  3. Dayel, M. J., Holleran, E. A. & Mullins, R. D. Arp2/3 complex requires hydrolyzable ATP for nucleation of new actin filaments. Proc. Natl Acad. Sci. USA 98, 14871–14876 (2001). (10.1073/pnas.261419298) / Proc. Natl Acad. Sci. USA by MJ Dayel (2001)
  4. Le Clainche, C., Didry, D., Carlier, M. F. & Pantaloni, D. Activation of Arp2/3 complex by Wiskott-Aldrich Syndrome protein is linked to enhanced binding of ATP to Arp2. J. Biol. Chem. 276, 46689–46692 (2001). (10.1074/jbc.C100476200) / J. Biol. Chem. by C Le Clainche (2001)
  5. Goley, E. D., Rodenbusch, S. E., Martin, A. C. & Welch, M. D. Critical conformational changes in the Arp2/3 complex are induced by nucleotide and nucleation promoting factor. Mol. Cell 16, 269–279 (2004). (10.1016/j.molcel.2004.09.018) / Mol. Cell by ED Goley (2004)
  6. Martin, A. C. et al. Effects of Arp2 and Arp3 nucleotide-binding pocket mutations on Arp2/3 complex function. J. Cell Biol. 168, 315–328 (2005). (10.1083/jcb.200408177) / J. Cell Biol. by AC Martin (2005)
  7. Dayel, M. J. & Mullins, R. D. Activation of Arp2/3 complex: addition of the first subunit of the new filament by a WASP protein triggers rapid ATP hydrolysis on Arp2. PLoS Biol 2, E91 (2004). (10.1371/journal.pbio.0020091) / PLoS Biol by MJ Dayel (2004)
  8. Le Clainche, C., Pantaloni, D. & Carlier, M. F. ATP hydrolysis on actin-related protein 2/3 complex causes debranching of dendritic actin arrays. Proc. Natl Acad. Sci. USA 100, 6337–6342 (2003). (10.1073/pnas.1130513100) / Proc. Natl Acad. Sci. USA by C Le Clainche (2003)
  9. Vorobiev, S. et al. The structure of nonvertebrate actin: implications for the ATP hydrolytic mechanism. Proc. Natl Acad. Sci. USA 100, 5760–5765 (2003). (10.1073/pnas.0832273100) / Proc. Natl Acad. Sci. USA by S Vorobiev (2003)
  10. Moreau, V., Galan, J. M., Devilliers, G., Haguenauer-Tsapis, R. & Winsor, B. The yeast actin-related protein Arp2p is required for the internalization step of endocytosis. Mol. Biol. Cell 8, 1361–1375 (1997). (10.1091/mbc.8.7.1361) / Mol. Biol. Cell by V Moreau (1997)
  11. Moreau, V., Madania, A., Martin, R. P. & Winsor, B. The Saccharomyces cerevisiae actin-related protein Arp2 is involved in the actin cytoskeleton. J. Cell Biol. 134, 117–132 (1996). (10.1083/jcb.134.1.117) / J. Cell Biol. by V Moreau (1996)
  12. Winter, D., Podtelejnikov, A. V., Mann, M. & Li, R. The complex containing actin-related proteins Arp2 and Arp3 is required for the motility and integrity of yeast actin patches. Curr. Biol. 7, 519–529 (1997). (10.1016/S0960-9822(06)00223-5) / Curr. Biol. by D Winter (1997)
  13. Kaksonen, M., Sun, Y. & Drubin, D. G. A pathway for association of receptors, adaptors, and actin during endocytic internalization. Cell 115, 475–487 (2003). (10.1016/S0092-8674(03)00883-3) / Cell by M Kaksonen (2003)
  14. Kaksonen, M., Toret, C. P. & Drubin, D. G. A modular design for the clathrin- and actin-mediated endocytosis machinery. Cell 123, 305–320 (2005). (10.1016/j.cell.2005.09.024) / Cell by M Kaksonen (2005)
  15. Huckaba, T. M., Gay, A. C., Pantalena, L. F., Yang, H. C. & Pon, L. A. Live cell imaging of the assembly, disassembly, and actin cable-dependent movement of endosomes and actin patches in the budding yeast, Saccharomyces cerevisiae. J. Cell Biol. 167, 519–530 (2004). (10.1083/jcb.200404173) / J. Cell Biol. by TM Huckaba (2004)
  16. Newpher, T. M., Smith, R. P., Lemmon, V. & Lemmon, S. K. In vivo dynamics of clathrin and its adaptor-dependent recruitment to the actin-based endocytic machinery in yeast. Dev. Cell 9, 87–98 (2005). (10.1016/j.devcel.2005.04.014) / Dev. Cell by TM Newpher (2005)
  17. Toshima, J. Y. et al. Spatial dynamics of receptor-mediated endocytic trafficking in budding yeast revealed by using fluorescent α-factor derivatives. Proc. Natl Acad. Sci. USA 103, 5793–5798 (2006). (10.1073/pnas.0601042103) / Proc. Natl Acad. Sci. USA by JY Toshima (2006)
  18. Rodal, A. A., Manning, A. L., Goode, B. L. & Drubin, D. G. Negative regulation of yeast WASp by two SH3 domain-containing proteins. Curr. Biol. 13, 1000–1008 (2003). (10.1016/S0960-9822(03)00383-X) / Curr. Biol. by AA Rodal (2003)
  19. Blanchoin, L., Pollard, T. D. & Mullins, R. D. Interactions of ADF/cofilin, Arp2/3 complex, capping protein and profilin in remodeling of branched actin filament networks. Curr. Biol. 10, 1273–1282 (2000). (10.1016/S0960-9822(00)00749-1) / Curr. Biol. by L Blanchoin (2000)
  20. Lappalainen, P. & Drubin, D. G. Cofilin promotes rapid actin filament turnover in vivo. Nature 388, 78–82 (1997). (10.1038/40418) / Nature by P Lappalainen (1997)
  21. Rodal, A. A., Tetreault, J. W., Lappalainen, P., Drubin, D. G. & Amberg, D. C. Aip1p interacts with cofilin to disassemble actin filaments. J. Cell Biol. 145, 1251–1264 (1999). (10.1083/jcb.145.6.1251) / J. Cell Biol. by AA Rodal (1999)
  22. Welch, M. D., Iwamatsu, A. & Mitchison, T. J. Actin polymerization is induced by Arp2/3 protein complex at the surface of Listeria monocytogenes. Nature 385, 265–269 (1997). (10.1038/385265a0) / Nature by MD Welch (1997)
  23. Samarin, S. et al. How VASP enhances actin-based motility. J. Cell Biol. 163, 131–142 (2003). (10.1083/jcb.200303191) / J. Cell Biol. by S Samarin (2003)
  24. Egile, C. et al. Mechanism of filament nucleation and branch stability revealed by the structure of the Arp2/3 complex at actin branch junctions. PLoS Biol. 3, E383 (2005). (10.1371/journal.pbio.0030383) / PLoS Biol. by C Egile (2005)
  25. Toshima, J., Toshima, J. Y., Martin, A. C. & Drubin, D. G. Phosphoregulation of Arp2/3-dependent actin assembly during receptor-mediated endocytosis. Nature Cell Biol. 7, 246–254 (2005). (10.1038/ncb1229) / Nature Cell Biol. by J Toshima (2005)
  26. Duncan, M. C., Cope, M. J., Goode, B. L., Wendland, B. & Drubin, D. G. Yeast Eps15-like endocytic protein, Pan1p, activates the Arp2/3 complex. Nature Cell Biol. 3, 687–690 (2001). (10.1038/35083087) / Nature Cell Biol. by MC Duncan (2001)
  27. Volkmann, N. et al. Structure of Arp2/3 complex in its activated state and in actin filament branch junctions. Science 293, 2456–2459 (2001). (10.1126/science.1063025) / Science by N Volkmann (2001)
  28. Blanchoin, L. & Pollard, T. D. Mechanism of interaction of Acanthamoeba actophorin (ADF/Cofilin) with actin filaments. J. Biol. Chem. 274, 15538–15546 (1999). (10.1074/jbc.274.22.15538) / J. Biol. Chem. by L Blanchoin (1999)
  29. Weaver, A. M. et al. Cortactin promotes and stabilizes Arp2/3-induced actin filament network formation. Curr. Biol. 11, 370–374 (2001). (10.1016/S0960-9822(01)00098-7) / Curr. Biol. by AM Weaver (2001)
  30. Pantaloni, D., Boujemaa, R., Didry, D., Gounon, P. & Carlier, M. F. The Arp2/3 complex branches filament barbed ends: functional antagonism with capping proteins. Nature Cell Biol. 2, 385–391 (2000). (10.1038/35017011) / Nature Cell Biol. by D Pantaloni (2000)
Dates
Type When
Created 19 years, 1 month ago (July 23, 2006, 1:15 p.m.)
Deposited 2 years, 3 months ago (May 18, 2023, 3:28 p.m.)
Indexed 1 month, 1 week ago (July 24, 2025, 7:04 a.m.)
Issued 19 years, 1 month ago (July 23, 2006)
Published 19 years, 1 month ago (July 23, 2006)
Published Online 19 years, 1 month ago (July 23, 2006)
Published Print 19 years, 1 month ago (Aug. 1, 2006)
Funders 0

None

@article{Martin_2006, title={Arp2/3 ATP hydrolysis-catalysed branch dissociation is critical for endocytic force generation}, volume={8}, ISSN={1476-4679}, url={http://dx.doi.org/10.1038/ncb1443}, DOI={10.1038/ncb1443}, number={8}, journal={Nature Cell Biology}, publisher={Springer Science and Business Media LLC}, author={Martin, Adam C. and Welch, Matthew D. and Drubin, David G.}, year={2006}, month=jul, pages={826–833} }