Literature DB >> 7615635

Actin-based movement of Listeria monocytogenes: actin assembly results from the local maintenance of uncapped filament barbed ends at the bacterium surface.

J B Marchand1, P Moreau, A Paoletti, P Cossart, M F Carlier, D Pantaloni.   

Abstract

The thermodynamic basis for actin-based motility of Listeria monocytogenes has been investigated using cytoplasmic extracts of Xenopus eggs, initially developed by Theriot et al. (Theriot, J. A., J. Rosenblatt, D. A. Portnoy, P. J. Goldschmidt-Clermont, and T. J. Mitchison. 1994. Cell. 76:505-517) as an in vitro cell-free system. A large proportion (75%) of actin was found unpolymerized in the extracts. The amount of unassembled actin (12 microM) is accounted for by the sequestering functions of T beta 4Xen (20 microM) and profilin (5 microM), the barbed ends being capped. Movement of Listeria was not abolished by depletion of over 99% of the endogenous profilin. The proline-rich sequences of ActA are unlikely to be the target of profilin. All data support the view that actin assembly at the rear of Listeria results from a local shift in steady state due to a factor, keeping filaments uncapped, bound to the surface of the bacterium, while barbed ends are capped in the bulk cytoplasm. Movement is controlled by the energetic difference (i.e., the difference in critical concentration) between the two ends of the filaments, hence a constant ATP supply and the presence of barbed end capped F-actin in the medium are required to buffer free G-actin at a high concentration. The role of membrane components is demonstrated by the facts that: (a) Listeria movement can be reconstituted in the resuspended pellets of high speed-centrifuged extracts that are enriched in membranes; (b) Actin-based motility of endogenous vesicles, exhibiting the same rocketing movement as Listeria, can be observed in the extracts.

Entities:  

Mesh:

Substances:

Year:  1995        PMID: 7615635      PMCID: PMC2199942          DOI: 10.1083/jcb.130.2.331

Source DB:  PubMed          Journal:  J Cell Biol        ISSN: 0021-9525            Impact factor:   10.539


  60 in total

1.  Head to tail polymerization of actin.

Authors:  A Wegner
Journal:  J Mol Biol       Date:  1976-11       Impact factor: 5.469

2.  The small GTP-binding protein rho regulates the assembly of focal adhesions and actin stress fibers in response to growth factors.

Authors:  A J Ridley; A Hall
Journal:  Cell       Date:  1992-08-07       Impact factor: 41.582

3.  L. monocytogenes-induced actin assembly requires the actA gene product, a surface protein.

Authors:  C Kocks; E Gouin; M Tabouret; P Berche; H Ohayon; P Cossart
Journal:  Cell       Date:  1992-02-07       Impact factor: 41.582

4.  The bulk of unpolymerized actin in Xenopus egg extracts is ATP-bound.

Authors:  J Rosenblatt; P Peluso; T J Mitchison
Journal:  Mol Biol Cell       Date:  1995-02       Impact factor: 4.138

Review 5.  Life at the leading edge: the formation of cell protrusions.

Authors:  J Condeelis
Journal:  Annu Rev Cell Biol       Date:  1993

6.  Identification of icsA, a plasmid locus of Shigella flexneri that governs bacterial intra- and intercellular spread through interaction with F-actin.

Authors:  M L Bernardini; J Mounier; H d'Hauteville; M Coquis-Rondon; P J Sansonetti
Journal:  Proc Natl Acad Sci U S A       Date:  1989-05       Impact factor: 11.205

7.  How profilin promotes actin filament assembly in the presence of thymosin beta 4.

Authors:  D Pantaloni; M F Carlier
Journal:  Cell       Date:  1993-12-03       Impact factor: 41.582

Review 8.  Dynamic remodeling of the actin cytoskeleton: lessons learned from Listeria locomotion.

Authors:  F S Southwick; D L Purich
Journal:  Bioessays       Date:  1994-12       Impact factor: 4.345

9.  Dynamics of actin and alpha-actinin in the tails of Listeria monocytogenes in infected PtK2 cells.

Authors:  D Nanavati; F T Ashton; J M Sanger; J W Sanger
Journal:  Cell Motil Cytoskeleton       Date:  1994

10.  How Listeria exploits host cell actin to form its own cytoskeleton. II. Nucleation, actin filament polarity, filament assembly, and evidence for a pointed end capper.

Authors:  L G Tilney; D J DeRosier; A Weber; M S Tilney
Journal:  J Cell Biol       Date:  1992-07       Impact factor: 10.539

View more
  49 in total

1.  Growing an actin gel on spherical surfaces.

Authors:  V Noireaux; R M Golsteyn; E Friederich; J Prost; C Antony; D Louvard; C Sykes
Journal:  Biophys J       Date:  2000-03       Impact factor: 4.033

Review 2.  Actin-based motility of intracellular microbial pathogens.

Authors:  M B Goldberg
Journal:  Microbiol Mol Biol Rev       Date:  2001-12       Impact factor: 11.056

3.  Self-organization of a propulsive actin network as an evolutionary process.

Authors:  I V Maly; G G Borisy
Journal:  Proc Natl Acad Sci U S A       Date:  2001-09-25       Impact factor: 11.205

4.  Spatial control of actin polymerization during neutrophil chemotaxis.

Authors:  O D Weiner; G Servant; M D Welch; T J Mitchison; J W Sedat; H R Bourne
Journal:  Nat Cell Biol       Date:  1999-06       Impact factor: 28.824

5.  Modulation of actin filament behavior by GAP-43 (neuromodulin) is dependent on the phosphorylation status of serine 41, the protein kinase C site.

Authors:  Q He; E W Dent; K F Meiri
Journal:  J Neurosci       Date:  1997-05-15       Impact factor: 6.167

6.  Regulation of actin dynamics in rapidly moving cells: a quantitative analysis.

Authors:  Alex Mogilner; Leah Edelstein-Keshet
Journal:  Biophys J       Date:  2002-09       Impact factor: 4.033

7.  Quantitative analysis of actin turnover in Listeria comet tails: evidence for catastrophic filament turnover.

Authors:  Hao Yuan Kueh; William M Brieher; Timothy J Mitchison
Journal:  Biophys J       Date:  2010-10-06       Impact factor: 4.033

8.  A plant-specific protein essential for blue-light-induced chloroplast movements.

Authors:  Stacy L DeBlasio; Darron L Luesse; Roger P Hangarter
Journal:  Plant Physiol       Date:  2005-08-19       Impact factor: 8.340

Review 9.  Interactions of the bacterial pathogen Listeria monocytogenes with mammalian cells: bacterial factors, cellular ligands, and signaling.

Authors:  P Cossart
Journal:  Folia Microbiol (Praha)       Date:  1998       Impact factor: 2.099

10.  Mechanism of Cdc42-induced actin polymerization in neutrophil extracts.

Authors:  S H Zigmond; M Joyce; C Yang; K Brown; M Huang; M Pring
Journal:  J Cell Biol       Date:  1998-08-24       Impact factor: 10.539

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.