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Site update

Since I have been really terrible at updating the blog (but pretty good at keeping up with the facebook blog posts) I've added the widget below so that facebook cross posts to the blog.

You shouldn't need to join facebook but can just click on the links in the widget to access the articles. If you have any problems or comments please mail me at arandjel 'AT' eva.mpg.de.

Sunday, January 23, 2011

Genetic differentiation and the evolution of cooperation in chimpanzees and humans


Langergraber K, Schunert G, Rowney C, Wrangham R, Zommers Z, Vigilant L (2011) Genetic differentiation and the evolution of cooperation in chimpanzees and humans. Proceddings of the Royal Society Series B doi: 10.1098/rspb.2010.2592

Abstract
It has been proposed that human cooperation is unique among animals for its scale and complexity, its altruistic nature and its occurrence among large groups of individuals that are not closely related or are even strangers. One potential solution to this puzzle is that the unique aspects of human cooperation evolved as a result of high levels of lethal competition (i.e. warfare) between genetically differentiated groups. Although between-group migration would seem to make this scenario unlikely, the plausibility of the between-group competition model has recently been supported by analyses using estimates of genetic differentiation derived from contemporary human groups hypothesized to be representative of those that existed during the time period when human cooperation evolved. Here, we examine levels of between-group genetic differentiation in a large sample of contemporary human groups selected to overcome some of the problems with earlier estimates, and compare them with those of chimpanzees. We find that our estimates of between-group genetic differentiation in contemporary humans are lower than those used in previous tests, and not higher than those of chimpanzees. Because levels of between-group competition in contemporary humans and chimpanzees are also similar, these findings suggest that the identification of other factors that differ between chimpanzees and humans may be needed to provide a compelling explanation of why humans, but not chimpanzees, display the unique features of human cooperation.

Oh Snap! Welcome, Nature. Seriosuly

From the PLoS.org facebook page
On January 6, 2011, Nature announced a new Open Access (OA) publication called Scientific Reports. Nature’s news underscores the growing acceptance of OA, as reflected in recent OA journal launches from other traditional publishers such as the BMJ, Sage, AIP (American Institute of Physics) and APS (American Physical Society). Please spread the word either via this blog post or download this PDF.

Monday, January 17, 2011

Thursday, January 13, 2011

Thursday LOL

Old-growth forest is what giant pandas really need

Thanks to Carol D for the link!

Zhang Z, Swaisgood RR, Zhang S, Nordstrom LA, Wang H, Gu X, Hu J, Wei F (2011) Old-growth forest is what giant pandas really need. Biology Letters doi: 10.1098/rsbl.2010.1081

Abstract
Giant pandas (Ailuropoda melanoleuca) are an iconic conservation species, but despite significant research effort, do we understand what they really need? Estimating and mapping suitable habitat play a critical role in conservation planning and policy. But if assumptions about ecological needs are wrong, maps with misidentified suitable habitat will misguide conservation action. Here, we use an information-theoretic approach to analyse the largest, landscape-level dataset on panda habitat use to date, and challenge the prevailing wisdom about panda habitat needs. We show that pandas are associated with old-growth forest more than with any ecological variable other than bamboo. Other factors traditionally used in panda habitat models, such as topographic slope, are less important. We suggest that our findings are disparate from previous research in part because our research was conducted over a larger ecological scale than previous research conducted over more circumscribed areas within individual reserves. Thus, extrapolating from habitat studies on small scales to conservation planning on large scales may entail some risk. As the Chinese government is considering the renewal of its logging ban, it should take heed of the panda's dependency on old growth.

Monday, January 10, 2011

Save the Huemul!



Here is a video from one of my most favorite websites, hyperbole and a half, made for her friends that work in Patagonia. To donate or read more about huemuls, go here:
http://www.patagonianexpeditionrace.com/en/donate.php

Big Babies Helped Shape Early Human Societies

From NPR
Big Babies Helped Shape Early Human Societies
by JOE PALCA

Newborn babies may be a bundle of joy, but they are a heavy bundle of joy. Scientists say human babies weigh proportionally more at birth than the babies of any other primate species.

Now an anthropologist in Boston has shown that our earliest human ancestors probably had big babies, too — something that may have influenced the development of modern human societies.

"Humans are strange, in all sorts of ways," says Jeremy DeSilva, an anthropologist at Boston University. We walk upright on two legs and our newborns are helpless.

"Our babies are unusually large," he says. "They have unusually large heads; they have unusually large bodies compared to other primates."

A newborn ape typically weighs about 3 percent of what its mother weighs. For humans, that jumps to 6 percent. DeSilva wondered if this were true for a species like Australopithecus that came millions of years before modern humans.

But there's a fundamental difficulty answering that question: "We don't have fossilized remains of newborns," he says.

Sizing Up Skulls
A human baby typically weighs about 6 percent of what its mother weighs. Large, helpless infants required more care from adults and may have contributed to the creation of stable communities. This baby, seen on a beach in Costa Rica, crawls next to an olive ridley sea turtle.
Yuri Cortez/AFP/Getty Images

A human baby typically weighs about 6 percent of what its mother weighs. This baby, seen on a beach in Costa Rica, crawls next to an olive ridley sea turtle.

DeSilva came up with a clever way around that problem. It's a two-step process: First, you use adult skulls to estimate the newborn's skull size. That can be done very accurately for all primates, and DeSilva was able to analyze a dozen Australopithecus skulls.

"So once you have the size of the head, there is what researchers have called 'the 12 percent rule,'" he says. The 12 percent rule says that the brain represents 12 percent of the total body weight. "It's not exactly 12 percent; in fact in the apes it tends to be more like 10 percent."

Even with that margin of error, DeSilva says, it was clear that the birth weight of Australopithecus infants was much closer to the 6 percent of modern humans than the 3 percent of apes. He's published these results in the journal, PNAS.

This change in relative birth size was a critical development as DeSilva believes birthing large babies probably influenced human culture.

"The whole expression that it takes a village is in part rooted in the fact that we have really big infants that are pretty helpless," he says. "If we wanted to get anything done, we have to hand them off."

So stable communities developed where some took care of babies while others hunted or did the taxes.

Down From The Trees
Life was changing in other ways for Australopithecus. Two and a half million years ago, they began swapping a life in trees for one on solid ground.

"One of the things I think that goes along with the switch to terrestriality is a switch to a more substantive infant that has a higher chance of survival," says Owen Lovejoy, an anthropologist at Kent State University in Ohio.

Today's human brain is about 10 percent smaller than the Cro-Magnon brain from more than 20,000 years ago.

If the trend to proportionally larger babies was nearly complete 2.5 million years ago when the Australopithecus showed up, when did it begin? Anthropologist Robert Martin of the Field Museum in Chicago thinks the answer is an even older human relative called Sahelanthropus.

"I did some quick calculations after you sent me the paper, and it looks as though Sahelanthropus was intermediate between the great apes and Australopithecus," he says. "So it looks as though Sahelanthropus had already started along that pathway 7 million years ago."

Martin says there's only one Sahelanthropus skull discovered so far, so that conclusion is preliminary. But it appears that big babies are something humans and our ancestors have been dealing with for a long time.