The Isolated Comet Tail Pseudopodium of Listeria monocytogenes: A Tail of Two Actin Filament Populations, Long and Axial and Short and Random
Open Access
- 7 April 1997
- journal article
- Published by Rockefeller University Press in The Journal of cell biology
- Vol. 137 (1) , 155-167
- https://doi.org/10.1083/jcb.137.1.155
Abstract
Listeria monocytogenes is driven through infected host cytoplasm by a comet tail of actin filaments that serves to project the bacterium out of the cell surface, in pseudopodia, to invade neighboring cells. The characteristics of pseudopodia differ according to the infected cell type. In PtK2 cells, they reach a maximum length of ∼15 μm and can gyrate actively for several minutes before reentering the same or an adjacent cell. In contrast, the pseudopodia of the macrophage cell line DMBM5 can extend to >100 μm in length, with the bacteria at their tips moving at the same speed as when at the head of comet tails in bulk cytoplasm. We have now isolated the pseudopodia from PtK2 cells and macrophages and determined the organization of actin filaments within them. It is shown that they possess a major component of long actin filaments that are more or less splayed out in the region proximal to the bacterium and form a bundle along the remainder of the tail. This axial component of filaments is traversed by variable numbers of short, randomly arranged filaments whose number decays along the length of the pseudopodium. The tapering of the tail is attributed to a grading in length of the long, axial filaments. The exit of a comet tail from bulk cytoplasm into a pseudopodium is associated with a reduction in total F-actin, as judged by phalloidin staining, the shedding of α-actinin, and the accumulation of ezrin. We propose that this transition reflects the loss of a major complement of short, random filaments from the comet, and that these filaments are mainly required to maintain the bundled form of the tail when its borders are not restrained by an enveloping pseudopodium membrane. A simple model is put forward to explain the origin of the axial and randomly oriented filaments in the comet tail.Keywords
This publication has 40 references indexed in Scilit:
- Actin-based bacterial motility: towards a definition of the minimal requirementsTrends in Cell Biology, 1996
- The Cell Biology of Infection by Intracellular Bacterial PathogensAnnual Review of Cell and Developmental Biology, 1995
- Actin Cytoskeleton: Missing link for intracellular bacterial motility?Current Biology, 1995
- Organization and structure of actin filament bundles in Listeria‐infected cellsCell Motility, 1995
- Involvement of profilin in the actin-based motility of L. monocytogenes in cells and in cell-free extractsCell, 1994
- Dynamics of actin and alpha‐actinin in the tails of Listeria monocytogenes in Infected PtK2 CellsCell Motility, 1994
- 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.The Journal of cell biology, 1992
- Actin filaments and the growth, movement, and spread of the intracellular bacterial parasite, Listeria monocytogenes.The Journal of cell biology, 1989
- The actin cytoskeletonElectron Microscopy Reviews, 1988