Showing posts with label pathogens. Show all posts
Showing posts with label pathogens. Show all posts

January 6, 2011

Our immune system has many different types of specialized cells, and macrophages have to be my favorite. One look at our image today, and you’ll see why they are such amazing little workers.

Macrophages are white blood cells that engulf and ingest material as part of the immune response against pathogens. Macrophages have specialized receptors on their surface that identify the target and initiate the pathway leading to engulfment and ingestion. Past models have suggested that these receptors passively find and bind targets, but a recent paper shows that macrophages actively probe the extracellular environment for targets, especially when targets are sparse or moving quickly. In addition, this paper shows that these probing protrusions are actin-rich and are dependent on some known actin regulators. Images above are scanning electron micrographs of macrophages in the presence of beads that are treated to make them targets for macrophages. Protrusions are obvious in control cases (left and middle, arrows), but are absent in cases when actin is depolymerized by a drug called latrunculin B (right).

ResearchBlogging.orgFlannagan, R., Harrison, R., Yip, C., Jaqaman, K., & Grinstein, S. (2010). Dynamic macrophage "probing" is required for the efficient capture of phagocytic targets originally published in The Journal of Cell Biology, 191 (6), 1205-1218 DOI: 10.1083/jcb.201007056

December 6, 2010

Pathogens use some pretty awesome tricks in order to replicate in and infect cells. Today’s image is of a bacterial pathogen that exploits the actin cytoskeleton in its host cell.

Rickettsia are bacterial pathogens, and many Rickettsia species are able to co-opt its host cell’s actin cytoskeleton for its own motility within and between cells during infection. Rickettsia assemble “comet tails” that are made of parallel actin filament arrays, and these structures propel them in the direction they need to go. A recent paper found that a bacterial protein called Sca2 promotes actin filament assembly, and is found on the surface of the bacteria. Images above show Rickettsia in cell extracts with Sca2 (white or green) and actin (white or purple) labeled. Zoomed images (bottom) are of the bacterium in the lower left hand corner (top).

ResearchBlogging.org

Adapted by permission from Macmillan Publishers Ltd, copyright 2010.

Haglund CM, Choe JE, Skau CT, Kovar DR, & Welch MD (2010). Rickettsia Sca2 is a bacterial formin-like mediator of actin-based motility. Nature cell biology, 12 (11), 1057-63 PMID: 20972427