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Hitchhiking Virus Confirms Saga of Ancient Human Migration

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Newswise — MADISON, Wis. — A study of the full genetic code of a common human virus offers a dramatic confirmation of the “out-of-Africa” pattern of human migration, which had previously been documented by anthropologists and studies of the human genome.

The virus under study, herpes simplex virus type 1 (HSV-1), usually causes nothing more severe than cold sores around the mouth, says Curtis Brandt, a professor of medical microbiology and ophthalmology at the University of Wisconsin-Madison. Brandt is senior author of the study, now online in the journal PLOS ONE.

When Brandt and co-authors Aaron Kolb and Cécile Ané compared 31 strains of HSV-1 collected in North America, Europe, Africa and Asia, “the result was fairly stunning,” says Brandt.

“The viral strains sort exactly as you would predict based on sequencing of human genomes. We found that all of the African isolates cluster together, all the virus from the Far East, Korea, Japan, China clustered together, all the viruses in Europe and America, with one exception, clustered together,” he says.

“What we found follows exactly what the anthropologists have told us, and the molecular geneticists who have analyzed the human genome have told us, about where humans originated and how they spread across the planet.”

Geneticists explore how organisms are related by studying changes in the sequence of bases, or “letters” on their genes. From knowledge of how quickly a particular genome changes, they can construct a “family tree” that shows when particular variants had their last common ancestor.

Studies of human genomes have shown that our ancestors emerged from Africa roughly 150,000 to 200,000 years ago, and then spread eastward toward Asia, and westward toward Europe.

Scientists have previously studied herpes simplex virus type 1 by looking at a single gene, or a small cluster of genes, but Brandt notes that this approach can be misleading. “Scientists have come to realize that the relationships you get back from a single gene, or a small set of genes, are not very accurate.”

The PLOS ONE study used high-capacity genetic sequencing and advanced bioinformatics to analyze the massive amount of data from the 31 genomes.

The technology of simultaneously comparing the entire genomes of related viruses could also be useful in exploring why certain strains of a virus are so much more lethal than others. In a tiny percentage of cases, for example, HSV-1 can cause a deadly brain infection, Brandt notes.

“We’d like to understand why these few viruses are so dangerous, when the predominant course of herpes is so mild. We believe that a difference in the gene sequence is determining the outcome, and we are interested in sorting this out,” he says.

For studies of influenza virus in particular, Brandt says, “people are trying to come up with virulence markers that will enable us to predict what a particular strain of virus will do.”

The researchers broke the HSV-1 genome into 26 pieces, made family trees for each piece and then combined each of the trees into one network tree of the whole genome, Brandt says. “Cécile Ané did a great job in coming up with a new way to look at these trees, and identifying the most probable grouping.” It was this grouping that paralleled existing analyses of human migration.

The new analysis could even detect some intricacies of migration. Every HSV-1 sample from the United States except one matched the European strains, but one strain that was isolated in Texas looked Asian. “How did we get an Asian-related virus in Texas?” Kolb asks. Either the sample had come from someone who had travelled from the Far East, or it came from a native American whose ancestors had crossed the “land bridge” across the Bering Strait roughly 15,000 years ago.

“We found support for the land bridge hypothesis because the date of divergence from its most recent Asian ancestor was about 15,000 years ago. Brandt says. “The dates match, so we postulate that this was an Amerindian virus.”

Herpes simplex virus type 1 was an ideal virus for the study because it is easy to collect, usually not lethal, and able to form lifelong latent infections. Because HSV-1 is spread by close contact, kissing or saliva, it tends to run in families. “You can think of this as a kind of external genome,” Brandt says.

Furthermore, HSV-1 is much simpler than the human genome, which cuts the cost of sequencing, yet its genome is much larger than another virus that also has been used for this type of study. Genetics often comes down to a numbers game; larger numbers produce stronger evidence, so a larger genome produces much more detail.

But what really jumped out of the study, Brandt says, “was clear support for the out-of-Africa hypothesis. Our results clearly support the anthropological data, and other genetic data, that explain how humans came from Africa into the Middle East and started to spread from there.”

The correspondence with anthropology even extends, as before, to the details. In the virus, as in human genomes, a small human population entered the Middle East from Africa. “There is a population bottleneck between Africa and the rest of the world; very few people were involved in the initial migration from Africa,” Brandt says. “When you look at the phylogenetic tree from the virus, it’s exactly the same as what the anthropologists have told us.”

The PLOS ONE paper is available at http://www.plosone.org/article/
info%3Adoi%2F10.1371%2Fjournal.pone.0076267. These studies were supported by grants from the National Institutes of Health: R01EY07336 and R01EY018597.

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Ancient DNA Unravels Europe's Genetic Diversity

Ancient DNA recovered from a time series of skeletons in Germany spanning 4,000 years of prehistory has been used to reconstruct the first detailed genetic history of modern-day Europeans.


The study, published today in Science, reveals dramatic population changes with waves of prehistoric migration, not only from the accepted path via the Near East, but also from Western and Eastern Europe.


The research was a collaboration between the Australian Centre for Ancient DNA (ACAD), at the University of Adelaide, researchers from the University of Mainz, the State Heritage Museum in Halle (Germany), and National Geographic Society’s Genographic Project. The teams used mitochondrial DNA (maternally inherited DNA) extracted from bone and teeth samples from 364 prehistoric human skeletons ? ten times more than previous ancient DNA studies.


“This is the largest and most detailed genetic time series of Europe yet created, allowing us to establish a complete genetic chronology,” says joint-lead author Dr Wolfgang Haak of ACAD. “Focussing on this small but highly important geographic region meant we could generate a gapless record, and directly observe genetic changes in ‘real-time’ from 7,500 to 3,500 years ago, from the earliest farmers to the early Bronze Age.”


“Our study shows that a simple mix of indigenous hunter-gatherers and the incoming Near Eastern farmers cannot explain the modern-day diversity alone,” says joint-lead author Guido Brandt, PhD candidate at the University of Mainz. “The genetic results are much more complex than that. Instead, we found that two particular cultures at the brink of the Bronze Age 4,200 years ago had a marked role in the formation of Central Europe’s genetic makeup.”


Professor Kurt Alt (University of Mainz) says: “What is intriguing is that the genetic signals can be directly compared with the changes in material culture seen in the archaeological record. It is fascinating to see genetic changes when certain cultures expanded vastly, clearly revealing interactions across very large distances.” These included migrations from both Western and Eastern Europe towards the end of the Stone Age, through expanding cultures such as the Bell Beaker and the Corded Ware (named after their pots).


“This transect through time has produced a wealth of information about the genetic history of modern Europeans,” says ACAD Director Professor Alan Cooper. “There was a period of stasis after farming became established and suitable areas were settled, and then sudden turnovers during less stable times or when economic factors changed, such as the increasing importance of metal ores and secondary farming products. While the genetic signal of the first farming populations becomes increasingly diluted over time, we see the original hunter-gatherers make a surprising comeback.”


Dr Haak says: “None of the dynamic changes we observed could have been inferred from modern-day genetic data alone, highlighting the potential power of combining ancient DNA studies with archaeology to reconstruct human evolutionary history.” The international team has been working closely on the genetic prehistory of Europeans for the past 7-8 years and is currently applying powerful new technologies to generate genomic data from the specimens.