Showing posts with label bacteriophage. Show all posts
Showing posts with label bacteriophage. Show all posts

Tuesday, May 21, 2013

A little bit of news on our lab's research system



Parasites of Parasites
Parasites of Parasites Science picture co/ Getty Images
Parasites of parasites—sometimes called hyperparasites—seem to be quite common. In fact, parasites of parasites are themselves prone to parasites, leading to what might appear to be an endless progression of interspecies abuse.
Studies in the lab and field have identified some of these elaborate, nested relationships. Last November, a team of researchers in the Netherlands published research on a wasp that lays its eggs inside a caterpillar, which in turn feeds on cabbage leaves. That means the nutrients and energy pass through three distinct organisms, and the same lab has documented related systems with even more layers of interaction.
Seth Bordenstein, a microbiologist at Vanderbilt University, studies a five-tiered system that starts with a fledgling bird. Blowflies infest the bird’s underside with bloodsucking larvae, which then drop off and fall prey to hyperparasitic wasps. The wasps, in turn, carry a parasitic bacterium called Wolbachia, which has evolved to modify its host’s reproductive system. The bacteria are subject to their own invasion, though, from tiny viruses known as bacteriophages, which hijack Wolbachia’s cellular machinery to expand their population.
Just how small can parasites get? The final layer of these systems might be the transposon, which is a roving bit of nucleic acid—a single, parasitic gene. Transposons have been discovered inside viruses that infect other viruses, which in turn infect amoebas that infect human beings. “I think it’s difficult to see where one organism begins and another one ends,” Bordenstein says. “We are only beginning to appreciate how intertwined these layers of organisms are in large flora and fauna.”
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Wednesday, July 25, 2012

My talk at the International Symbiosis Society Congress 2012

The International Symbiosis Society is now meeting in Krakow, Poland. About 300 participants have gathered to discuss their latest research, meet colleagues, and form new collaborations. Here is my talk from yesterday's session on Horizontal Gene Transfer and the Role of Viruses:

The Entangled Bank in Animals: Viral Transfer Between Bacterial Symbionts

Note 1: the recording starts on the second slide of the talk
Note 2: Related blog post at http://symbionticism.blogspot.com/2012/06/universality-and-complexity-of-viruses.html

In this talk at the International Symbiosis Society Meeting in Krakow, Poland, 2012, I discuss the transfer of genes between bacterial coinfections in animal hosts. Animal species are a conglomerate of their own cells, viruses, and bacterial symbiont cells. Indeed, the genes in the symbiont population can vastly outnumber the genes of the host, and yet we know little about the frequency at which these symbiont genes are swapped between coinfecting microbes or co-opted by the animal host. Here, I demonstrate that even in the most restrictive class of symbionts, the obligate intracellular bacteria, there is a surprising amount of genetic flux between coinfections. I discuss three primary findings. First, the most common obligate intracellular bacteria on the planet, Wolbachia pipientis, exemplifies extraordinary rates of bacteriophage transfer that are akin to the levels of genetic flux seen in free-living bacteria. Second, genome sequencing demonstrates that whole bacteriophage genomes can transfer apparently unrestrained between related and unrelated intracellular bacteria that coinfect the same host. Third, a new tool is presenteed that rapidly isolates genomes of microbes in a mixture of genomes from various organisms and environments. I conclude that animals are frequently ecological arenas for gene transfer between intracellular bacteria - thereby providing a means by which new genes and functions can be acquired in symbionts and inherited in their animal hosts.


Hat tip to Rob (@liveinsymbiosis) for recoding the video.