Aug 2, 2014

Experimental Ebola Serum Likely Treating Sick Americans

An American doctor working in West Africa and another health care worker, also American, who contracted Ebola there have both received experimental treatments for the deadly viral disease, according to news reports.

Nancy Writebol, a worker with the charity Samaritan's Purse, received an experimental serum, and Dr. Kent Brantly, from the same charity, received a blood transfusion from a patient who recovered from Ebola, according to NBC News. One or both of the health care workers are also being flown to an isolation unit in an American hospital for treatment, according to news reports.

Though there are conflicting reports, and no one is saying exactly what the experimental serum is, its likely that both of the reported methods contained antibodies to the Ebola virus, said Dr. William Schaffner, a professor of preventive medicine and infectious diseases at Vanderbilt University Medical Center in Nashville, Tenn. Delivering antibodies to a patient could slow the virus's replication, and give the immune system time to recover.

"There is a long tradition of using immune serum as treatment," Schaffner told Live Science. "You give the person antibodies, and you would hope that those antibodies would then bind the viruses and interfere with their multiplication."

No current treatments

This Ebola outbreak is the largest in history and has so far claimed 729 lives in Sierra Leone, Guinea and Liberia. Doctors without Borders has said that the crisis is "out of control." Sierra Leone has declared a national emergency, closed all of its schools and is quarantining disease hot spots.

There are no treatments or vaccines available for Ebola, though several are in the pipeline. A study in Nature this year reported that one drug improved survival in monkeys who were exposed to a closely related virus, called Marburg virus. Public Health Canada is testing another antibody-based treatment and the company Tekmira Pharmaceuticals has developed an experimental drug that uses a process called RNA interference to block the virus' replication, Forbes reported.

Antibody methods

As for the American health-care workers, one possibility is that Writebol was given a concentrated form of antibodies to the virus from someone who survived, Schaffner said. To make such a treatment, researchers would have to separate and concentrate the antibodies from a survivor's blood.

If Writebol did receive such an immune serum, it would almost certainly have to have been created at the site of the outbreak and have come from someone infected with the same strain of Ebola that she has, said Thomas Geisbert, a virologist at the University of Texas Medical Branch in Galveston, who has helped develop potential Ebola drugs. There are several species of Ebola virus; the current outbreak is caused by one called the Zaire species.

Brantly is reportedly receiving a transfusion of whole blood from a 14-year-old patient who survived the disease.

In an Ebola infection, the virus first disables some of the immune system's frontline cells and then replicates almost unchecked. It then bursts out of cells throughout the body and damages them, eventually causing multi-organ failure.

Both experimental treatments, if they work, would need to lower the viral load by binding to the virus and preventing it from replicating, which would give the immune system enough time to regenerate its cells and fight the disease, Geisbert said.

However, such treatments likely have limitations. In the last stages of the disease, in a process known as a cytokine storm, the immune system goes haywire and inflammatory molecules called cytokines attack the body's own tissue.

At that point, "if you're 24 to 72 hours from death and you've got a full blown case of Ebola hemorrhagic fever, there's probably nothing on the planet that's going to save you," Geisbert told Live Science.

Will it work?

It's not clear that using antibodies from recovering patients would work. In a 1995 outbreak, eight patients were given serum from recovering patients and only one died, according to a 1999 study in the Journal of Infectious Diseases. However, those patients may have been given the drug when they were already on the road to recovery, Geisbert said.

When Geisbert and his colleagues tested a treatment made from human antibodies in monkeys injected with Ebola, the antibodies failed to protect rhesus macaques from infection and death, according to a 2007 study in PLOS Pathogens.

However, a cocktail of engineered Ebola antibodies called MB-003 developed by Mapp Biopharmaceuticals seemed to protect monkeys exposed to the virus, a 2013 study in Science reported. In animal models, some of the newer antibody treatments seem to be more effective at combating the disease, perhaps because they are more targeted, Geisbert said.

Measuring effects

In the current outbreak, about 40 percent of victims have survived even without treatments, making it hard to gauge any treatment's effectiveness, Geisbert said.

Read more at Discovery News

How Ebola Rumor and Folklore Go Viral

The latest Ebola outbreak in West Africa has killed more than 700 people and continues to concern doctors around the world. U.S. officials yesterday issued warnings to travelers about visiting Guinea, Liberia and Sierra Leone, noting that the outbreak is getting worse.

While doctors and epidemiologists fight to contain the outbreak and treat patients, they are battling something almost as difficult to fight as the Ebola virus itself: rumor, folklore and myths about the disease.

In some cases doctors have been physically kept away from treating those most in need. According to an article in the New York Times:
“Workers and officials, blamed by panicked populations for spreading the virus, have been threatened with knives, stones and machetes, their vehicles sometimes surrounded by hostile mobs. Log barriers across narrow dirt roads block medical teams from reaching villages where the virus is suspected. Sick and dead villagers, cut off from help, are infecting others.”

Foreign — and especially Western — doctors are often particularly distrusted as potentially harboring dark motives under the guise of medical help. In some cases doctors have been accused of intentionally infecting victims with Ebola for sinister purposes, such as testing experimental drugs on unsuspecting victims.

These rumors have many roots, including xenophobia and a general distrust of doctors. For many, the beliefs make perfect sense. Patients around the world avoid going to doctors out of fear of what they might find out, preferring not to know if something is wrong. Others avoid hospitals because, they say, that’s where many people get sicker than before they went in. To be fair, there’s some truth to that — many otherwise healthy people have died after being infected with MRSA and other deadly bacteria while in hospitals.

The rumors are not just preventing doctors from treating patients and spreading the disease — they are also offering false claims of cures. In Nigeria, for example, public officials have grown concerned about rumors that shamen and witch doctors have cured Ebola victims: “Commissioner for Information and Strategy Aderemi Ibirogba specifically advised the citizenry to be wary of the activities of alleged fraudsters who were reportedly making spurious claims about their ability to provide cure for the deadly virus,” according to a statement. Other rumors claim that Ebola can be spread through casual contact (it can’t) or that home remedies or even magic can cure it.

Rumor of Disease

The stories and myths circulating about Ebola are not new, in fact they have appeared for many decades in reference to other diseases. Jon Lee, author of “An Epidemic of Rumors: How Stories Shape Our Perception of Disease” has studied the folklore (including rumors, legends and conspiracy theories) behind various diseases among both the affected groups and the news media.

He notes:
“The nature of the disease itself is almost of secondary consideration when it comes to narrative: regardless of which outbreak is making headlines — whether it’s AIDS or SARS or H1N1 — the basic stories are the same. Narratives are recirculated from one outbreak to the next, modified not in their themes but in the specific details necessary to link the narratives to the current situation.”

These rumors and myths are not started maliciously. They’re not part of a widespread attempt to spread the disease or harm outsiders. Instead they emerge from people trying to make sense of the death that’s going on around them, and a misunderstanding of science. Standard Western medical procedures designed to stop the spread of the virus — something as simple as strangers sealing a deceased victim’s body in plastic and taking it away to be examined or buried in isolation – conflict with traditional customs and practices.

Read more at Discovery News

Aug 1, 2014

Companion planets can increase old worlds' chance at life

Having a companion in old age is good for people -- and, it turns out, might extend the chance for life on certain Earth-sized planets in the cosmos as well.

Planets cool as they age. Over time their molten cores solidify and inner heat-generating activity dwindles, becoming less able to keep the world habitable by regulating carbon dioxide to prevent runaway heating or cooling.

But astronomers at the University of Washington and the University of Arizona have found that for certain planets about the size of our own, the gravitational pull of an outer companion planet could generate enough heat -- through a process called tidal heating -- to effectively prevent that internal cooling, and extend the inner world's chance at hosting life.

UW astronomer Rory Barnes is second author of a paper published in the July issue of the Monthly Notices of the Royal Astronomical Society. The lead authors are graduate student Christa Van Laerhoven and planetary scientist Richard Greenberg at the University of Arizona.

Tidal heating results from the gravitational push and pull of the outer companion planet on its closer-in neighbor, Barnes said. The effect happens locally, so to speak, on Jupiter's moons Io and Europa. The researchers showed that this phenomenon can take place on exoplanets -- those outside the solar system -- as well.

Using computer models, the researchers found the effect can occur on older Earth-sized planets in noncircular orbits in the habitable zone of low-mass stars, or those less than one-quarter the mass of the Sun. The habitable zone is that swath of space around a star just right to allow an orbiting rocky planet to sustain liquid water on its surface, thus giving life a chance.

"When the planet is closer to the star, the gravitational field is stronger and the planet is deformed into an American football shape. When farther from the star, the field is weaker and the planet relaxes into a more spherical shape," Barnes said. "This constant flexing causes layers inside the planet to rub against each other, producing frictional heating."

The outer planet is necessary, Barnes added, to keep the potentially habitable planet's orbit noncircular. When a planet's orbit is circular, the gravitational pull from its host star is constant, so its shape never changes, and there is no tidal heating.

And so, the researchers conclude, any discoveries of Earth-sized planets in the habitable zone of old, small stars should be followed by searches for outer companion planets that might improve the inner world's chance at hosting life.

The combined effect of the ancient planet's own tectonics and tidal heating generated by the outer companion, Barnes said, might allow such planets to host some of the longest-lived surface habitats in the universe.

Read more at Science Daily

Moving Ebola Patients to U.S. Involves Extreme Isolation

When the first American Ebola patients arrive back home in the next few days, they probably won't be greeted with banners or TV cameras. Their route from Atlanta's Hartsfield Airport to the Emory University Medical Hospital will be a closely guarded secret to keep them from getting stuck in traffic or alerting the public.

Two humanitarian aid workers, Kent Brantly of Texas and Nancy Whitebol of North Carolina, were stricken by the disease while working in Liberia. They're being flown back in a private jet. It's not clear which of them will be taken to Emory, according to a hospital statement.

Emory has a special isolation unit, one of four in the country, to treat patients with serious infectious diseases. It is physically separated from other patient areas and is run in conjunction with the U.S. Centers for Disease Control and Prevention in Atlanta, the hospital said.

From the hospital in Monrovia, to the Liberian airport and then during the 12-hour flight across the Atlantic, the patients will be in special chambers the whole time, according to Andrew Pekosz, associate professor of molecular microbiology and immunology at Johns Hopkins University who has worked on highly-contagious infectious diseases.

"This is not something being put together at the last minute," Pekosz said. "The CDC has been planning and putting protocol and facilities and equipment for exactly this kind of event for many years. There is a well-worked-out system from any part of the world where a patient can be identified, prepared and transported and delivered to the containment facility."

Here's how the medical team will protect themselves and others from the Ebola virus raging inside the patients:

- Clothes: Health-care workers wear impermeable polyvinyl chlorine (PVC) coveralls, a separate hood, vinyl boots and three pairs of gloves. A special high-efficiency particulate air (HEPA) filtered respirator powered by a rechargeable battery supplies air for breathing and cooling. Those filters remove particles down to .03 micrometers, including viruses like Ebola, according to CDC protocols.

- Stretcher: The patients will be placed inside the Vickers aircraft transport isolator (VATI), designed for prolonged patient transportation and in-flight care. It uses negative air pressure and filters that exchange the air five times per hour. Medical workers will administer to the patients through special gloves built into the sides of the transparent chamber.

- Patient care: Since air travel is stressful and involves the effects of altitude and confinement, only patients that are expected to survive the flight would be moved. Doctors and nurses have to be watching for signs of respiratory failure and the presence of gas inside the body that could pose a problem at high altitude.

- Stopping the virus: Since there's no cure for Ebola, the most that doctors can do is try and help the body's own immune system fight it. They will also be trying to keep vital organs, like the liver and kidneys, functioning against the blood-borne virus, as well as removing excess fluid building up in the body, according to Pekosz.

- Hospital trip: Once the plane lands, there's another transfer to a special ambulance with a tent-like structure covering the patient. The route will be kept quiet to minimize traffic and publicity. At the hospital, workers deploy a well-rehearsed plan that details where the ambulance is supposed to pull up. The patient is put into a containment center and is not allowed to leave. Staff members have to go through a two-phase decontamination procedure for all of their clothing, while chemical sprays used to kill the virus must also go to a separate system instead of the normal hospital sewer pipe.

- Staying alive: The infection can last from several days to several weeks. "What the doctors are trying to do is minimize the damage and get the organs through the infection and stay alive," Pekosz said. "Clearly it can be done at Emory, but it cannot be done on the ground in Africa."

In Africa, officials from the CDC and the U.S. Army Medical Research Institute of Infectious Diseases are working overtime to control the spread of the disease and perhaps develop a treatment. USAMRIID virologist Randal Schoepp has been in Monrovia for the past two weeks using a molecular genetic test to identify patients who have contracted the disease. Schoepp said the rate of new infections is rising in Liberia, Guinea and Sierra Leone.

The World Health Organization said Friday that the outbreak has killed 729 people and infected another 1,200. However, Schoepp said that could be an underestimate.

"We are only seeing the tip of the iceberg," Schoepp said during a teleconference from Monrovia. "To really control the outbreak, you need contact tracing, contacts with confirmed Ebola patients that could be then followed for the possibility of them being infected. We don't have a good system here set up for that. I believe we are only seeing a small portion of the actual cases out there. It's putting a tremendous stress on the medical system."

Schoepp said drivers are afraid to bring back medical samples to scientists like him working in a specialized laboratory.

"In Sierra Leone and Liberia, we are seeing an increase in samples and positive samples," Schoepp said. "That indicates that we are still on an increasing slope and haven't reached the peak yet."

Read more at Discovery News

Mystery Galactic Gamma-ray 'Bubbles' Defy Explanation

In 2010, astronomers announced the discovery of two vast — and very mysterious — bubbles of gamma-ray emissions towering above and below our galaxy’s disk. Four years on, after oodles of analysis, the source of these bubbles is as mysterious as ever.

The scale of these gamma-ray structures is truly mind-blowing. Apparently originating directly from the galactic core, the two lobes extend tens of thousands of light-years into intergalactic space. They both generate gamma-ray radiation at an astonishing luminosity, “like two 30,000-light-year-tall incandescent bulbs screwed into the center of the galaxy,” according to a Stanford University news release.

The discovery was made by NASA’s Fermi Gamma-Ray Observatory that orbits the Earth away from our planet’s gamma-ray absorbing atmosphere. Without Fermi, we wouldn’t have even been aware of these giant structures.

Since their discovery by Fermi’s Large Area Telescope (LAT), it was assumed that an ancient eruption by the Milky Way’s supermassive black hole may have energized galactic matter, inflating these two energetic bubbles. But since astronomers have been studying the nature of these features, their origin is as foggy as ever.

After subtraction of extragalactic gamma-ray sources, the bubbles have very clearly defined edges and, closest to the galactic plane, are associated with microwave emissions. However, the microwave emissions appear to fade away — the gamma-ray emissions glow uniformly throughout. This is a peculiar and vexing problem for astronomers.

“Since the Fermi bubbles have no known counterparts in other wavelengths in areas high above the galactic plane, all we have to go on for clues are the gamma rays themselves,” said postdoctoral researcher Anna Franckowiak of the Kavli Institute for Particle Astrophysics and Cosmology.

A few models have been put forward, but none fully explain the shape, scope or luminosity of these gamma-ray factories. Could the bubbles be expanding from black hole jets? Or could it be that a cluster of young massive stars formed and exploded at the same time, producing the huge bubbles like supernova exhaust? In short, we still have no idea.

In a paper published in the Astrophysical Journal today, Stanford University researchers say they need a better view of the gamma-ray radiation near the core of the Milky Way before we can better understand the bubbles’ source, but it will be a very hard task to subtract other gamma-ray sources from the region.

Read more at Discovery News

How Life Made the Leap From Single Cells to Multicellular Animals

For billions of years, single-celled creatures had the planet to themselves, floating through the oceans in solitary bliss. Some microorganisms attempted multicellular arrangements, forming small sheets or filaments of cells. But these ventures hit dead ends. The single cell ruled the earth.

Then, more than 3 billion years after the appearance of microbes, life got more complicated. Cells organized themselves into new three-dimensional structures. They began to divide up the labor of life, so that some tissues were in charge of moving around, while others managed eating and digesting. They developed new ways for cells to communicate and share resources. These complex multicellular creatures were the first animals, and they were a major success. Soon afterward, roughly 540 million years ago, animal life erupted, diversifying into a kaleidoscope of forms in what’s known as the Cambrian explosion. Prototypes for every animal body plan rapidly emerged, from sea snails to starfish, from insects to crustaceans. Every animal that has lived since then has been a variation on one of the themes that emerged during this time.

How did life make this spectacular leap from unicellular simplicity to multicellular complexity? Nicole King has been fascinated by this question since she began her career in biology. Fossils don’t offer a clear answer: Molecular data indicate that the “Urmetazoan,” the ancestor of all animals, first emerged somewhere between 600 and 800 million years ago, but the first unambiguous fossils of animal bodies don’t show up until 580 million years ago. So King turned to choanoflagellates, microscopic aquatic creatures whose body type and genes place them right next to the base of the animal family tree. “Choanoflagellates are to my mind clearly the organism to look at if you’re looking at animal origins,” King said. In these organisms, which can live either as single cells or as multicellular colonies, she has found much of the molecular toolkit necessary to launch animal life. And to her surprise, she found that bacteria may have played a crucial role in ushering in this new era.

Nicole King, a biologist at the University of California, Berkeley, studies the origins of animals, one of the big mysteries in the history of life.
In a lengthy paper that will be published in a special volume of Cold Spring Harbor Perspectives in Biology in September, King lays out the case for the influence of bacteria on the development of animal life. For starters, bacteria fed our ancient ancestors, and this likely required those proto-animals to develop systems to recognize the best bacterial prey, and to capture and engulf them. All of these mechanisms were repurposed to suit the multicellular lives of the first animals. King’s review joins a broad wave of research that puts bacteria at the center of the story of animal life. “We were obliged to interact intimately with bacteria 600 million years ago,” said King, now an evolutionary biologist at the University of California, Berkeley, and an investigator with the Howard Hughes Medical Institute. “They were here first, they’re abundant, they’re dominant. In retrospect we should’ve expected this.”

Multicellular Motivation


Although we tend to take the rise of animals for granted, it is reasonable to ask why they ever emerged at all, given the billions of years of success of unicellular organisms. “For the last 3.5 billion years, bacteria have been around and abundant,” said Michael Hadfield, a professor of biology at the University of Hawaii, Manoa. “Animals never showed up until 700 or 800 million years ago.”

The technical demands of multicellularity are significant. Cells that commit to living together need a whole new set of tools. They have to come up with ways of sticking together, communicating, and sharing oxygen and food. They also need a master developmental program, a way to direct specific cells to take on specialized jobs in different parts of the body.

Nonetheless, during the course of evolution, the transition to multicellularity happened separately as many as 20 different times in lineages from algae to plants to fungi. But animals were the first to develop complex bodies, emerging as the most dramatic example of early multicellular success.

To understand why this might have happened the way it did, King began studying choanoflagellates, the closest living relative to animals, nearly 15 years ago as a postdoc at the University of Wisconsin, Madison. Choanoflagellates are not the most charismatic of creatures, consisting of an oval blob equipped with a single taillike flagellum that propels the organism through the water and also allows it to eat. The tail, thrashing back and forth, drives a current across a rigid, collarlike fringe of thin strands of cell membrane. Bacteria get caught up in the current and stick to the collar, and the choano engulfs them.

What intrigued King about choanoflagellates was their lifestyle flexibility. While many live as single cells, some can also form small multicellular colonies. In the species Salpingoeca rosetta, which lives in coastal estuaries, the cell prepares to divide but stops short of splitting apart, leaving two daughter cells connected by a thin filament. The process repeats, creating rosettes or spheres containing as many as 50 cells in the lab. If this all sounds familiar, there’s a reason for it — animal embryos develop from zygotes in much the same way, and spherical choanoflagellate colonies look uncannily like early-stage animal embryos.

When King began studying S. rosetta, she couldn’t get the cells to consistently form colonies in the lab. But in 2006, a student stumbled on a solution. In preparation for genome sequencing, he doused a culture with antibiotics, and it suddenly bloomed into copious rosettes. When bacteria that had been collected along with the original specimen were added back into a lab culture of single choanoflagellates, they too formed colonies. The likely explanation for this phenomenon is that the student’s antibiotic treatment inadvertently killed off one species of bacteria, allowing another that competes with it to rebound. The trigger for colony formation was a compound produced by a previously unknown species of Algoriphagus bacteria that S. rosetta eats.

S. rosetta seems to interpret the compound as an indication that conditions are favorable for group living. King hypothesizes that something similar could have happened more than 600 million years ago, when the last common ancestor of all animals started its fateful journey toward multicellularity. “My suspicion is that the progenitors of animals were able to become multicellular, but could switch back and forth based on environmental conditions,” King said. Later, multicellularity became fixed in the genes as a developmental program.

King’s persistence in studying this humble organism, which was overlooked by most contemporary biologists, has won her the admiration of many of her fellow scientists (as well as a prestigious MacArthur fellowship). “She strategically picked an organism to gain insight into early animal evolution and systematically studied it,” said Dianne Newman, a biologist at the California Institute of Technology in Pasadena, who studies how bacteria coevolve with their environment. King’s research offers a thrilling glimpse into the past, a rare window into what might have been going on during that mysterious period before the first fossilized animals appeared. The research is a “beautiful example” of how bacteria shape even the simplest forms of complex life, Newman said. “It reminds us that even at that level of animal development, you can expect triggers from the microbial world.” The bacteria system in S. rosetta can now be used to answer more specific questions, such as what the benefit of multicellularity might be — a question King and her collaborators at Berkeley are now working to answer.

The first bacteria may date back as far as 3.5 billion years. But animals, the first complex multicellular life form, took much longer to emerge.
Of course, just because bacteria trigger modern choanoflagellates into group living, that doesn’t mean they had the same effect on the first proto-animals. King’s finding is “really cool,” said William Ratcliff, a biologist at the Georgia Institute of Technology in Atlanta who experimentally induces yeast to form multicellular colonies. “I think she’s doing some of the most interesting research in the origins of animals.” But, he cautions, it’s possible that choanoflagellates evolved this mechanism long after they diverged from the creatures that became the first ancestors of animals. “We don’t have a clear picture of when the bacterial response evolved,” he explained. “It’s hard to know if something happened before the split between choanoflagellates and animals, or after.”

“I think there is enough evidence to allow us to hypothesize that bacteria were an important influence on animal origins — they were abundant, diverse, and they exert important signaling influences on diverse animal lineages as well as on non-animals,” King said. “But I think it is premature to say what the nature of that influence was.”

One strong hint that bacteria may have prompted that ancient transition to multicellularity is that many of today’s simplest animals are governed by microbial messages. Corals, sea squirts, sponges and tube worms all begin life as larvae floating in the water, and other research teams have shown that they too respond to compounds released by bacteria as signals to attach themselves to rocks or other surfaces and transition to a new life form. If this kind of relationship is so common among animals from the most ancient families, it seems plausible that the first animals were equally attuned to their bacterial neighbors. Figuring out how, exactly, the bacteria trigger this response will help clarify whether they played a similar role long ago. “It was a radical thought to me when we first started studying it, and now I don’t know why it’s a surprise,” King said. “The more I think about host-microbe interactions, the less surprised I become.”

What Took Animals So Long?

What triggered the explosion of complex multicellular life in the Cambrian period? Increased oxygen undoubtedly had something to do with it — prior to a period sometime before 800 million years ago, atmospheric oxygen levels were too low to diffuse easily into organisms with multiple layers of cells, limiting the size of all life forms. But an increase in oxygen is probably not the whole story, said Andrew Knoll, a professor of earth and planetary sciences at Harvard University. Once oxygen levels rose past this low level, predation likely provided a strong incentive for animals to get bigger and more complicated, and to develop new body plans. It was an ecological arms race of size and complexity: Bigger predators have an advantage in catching prey, while larger prey can more easily avoid being eaten. The need to escape or repel predators also likely inspired the first scales, spines and body armor, as well as some of the wilder body plans seen in Cambrian fossils.

 King’s discovery about choanoflagellates is just one of the latest insights into the intimate relationships between bacteria and animals (or, in this case, animal-like organisms). Historically, photosynthetic bacteria pumped oxygen into the oceans for billions of years, setting the stage for complex multicellular life. And according to the endosymbiotic theory, proposed in the 20th century and now widely accepted, the mitochondria inside every eukaryotic cell were once free-living bacteria. At some point more than a billion years ago, they took up residence inside other cells in a symbiotic relationship that endures in nearly every animal cell to this day. In their role as dinner, bacteria also likely provided raw genetic material for the first animals, which probably incorporated chunks of microbial DNA directly into their own genomes as they digested their meals.

But the full story of the microbial-animal relationship is even broader and deeper, argues Margaret McFall-Ngai, a biologist at the University of Wisconsin, Madison, and it’s a story that is only beginning to be told. In her view, animals should rightly be considered host-microbe ecosystems. Several years ago McFall-Ngai, along with Hadfield, convened a broad group of developmental biologists, ecologists, environmental biologists and physiologists, including King, and asked them to formulate a microbial manifesto — a declaration of bacterial significance. The paper, which appeared late last year in the Proceedings of the National Academy of Sciences, cites evidence from many corners of biology to argue that the influence of microbes on the origin, evolution and function of animals is pervasive and essential to understanding how animal life evolved. “They evolved in a world saturated with bacteria,” Hadfield said.

The biology of choanoflagellates resembles that of animals in other unexpected ways, King found. In 2008 she led the team that published the genome of Monosiga brevicollis, a choanoflagellate that doesn’t form colonies. The sequence revealed genes for dozens of sections of proteins that also appear in multicellular animals, where they help cells stick together and also guide development and differentiation. What are they doing in single cells? King’s work suggests they arose in single-celled organisms to monitor environmental conditions and recognize other cells such as bacterial prey. In multicellular animals, the gene domains found new purposes, such as allowing cells to signal one another. Single cells used these tools to listen in on the environment. Later on, the first cells to adopt a multicellular lifestyle probably repurposed the same systems to pay attention to their sister cells, King suggested.

Read more at Discovery News

Jul 31, 2014

Getting Small the Key for Dinos that Became Birds

How did some dinosaurs go from being impossibly huge, Earth-bound creatures to winged masters of the sky? The answer, a new study suggests, is simple: They got small, and kept on getting smaller.

A study out of the University of Southampton just published in the journal Science involved an examination of 1,500 dinosaur traits by researchers, who reassembled the dinosaur family tree and used mathematical models to track adaptations and body size over time, and across branches of the dino family tree.

They observed that the therpod branch of dinosaurs, from which ultimately evolved modern birds, was the only branch that kept getting smaller in size, sustaining the shrinkage for 50 million years.

"Being smaller and lighter in the land of giants, with rapidly evolving anatomical adaptations, provided these bird ancestors with new ecological opportunities, such as the ability to climb trees, glide and fly," said lead author Associate Professor Michael Lee, from the University of Adelaide's School of Earth and Environmental Sciences and the South Australian Museum, in a press release.

The adaptations taken on by early bird ancestors included such features as wishbones, feathers, and wings. These changes came "four times faster than other dinosaurs," observed the study's co-author Darren Naish, vertebrate palaeontologist at the University of Southampton.

When it got right down to it, the researchers say, the branch of dinosaurs that became birds simply knew how to innovate, evolutionarily speaking, and then put the changes into a microwave on high. "Birds out-shrank and out-evolved their dinosaurian ancestors, surviving where their larger, less evolvable relatives could not," said Lee.

"Ultimately, this evolutionary flexibility helped birds survive the deadly meteorite impact which killed off all their dinosaurian cousins," he added.

From Discovery News

Warriors' Bones Reveal Bizarre Iron Age Rituals

The bones of dozens of Iron Age warriors found in Denmark were collected and ritually mutilated after spending months on the battlefield, archaeologists say.

At least six months after the soldiers died, their bones were collected, scraped of remaining flesh, sorted and dumped in a lake. Some were handled in a truly bizarre manner; for instance, four pelvises were found strung on a stick.

"We think it's a kind of ritual closure of the war," said Mads Kähler Holst, project manager at the dig and head of the department of archaeology at the Moesgård Museum in Denmark. The victors seem to have carried out their gruesome work on a spit of land extending into the lake where the bones were dumped, the researchers said.

The site of the boneyard is in East Jutland, in a wetland area known as Alken Enge. Drainage work and peat digging have been turning up ancient human remains in this bog for decades, Holst told Live Science.

Formal excavation of the site finds it to be a mass grave dating back about 2,000 years, to the transition from B.C. to A.D. At the time, the area was about 186 miles (300 kilometers) north of the farthest reach of the Roman Empire, Holst said, and would have been occupied by Germanic tribes.

Archaeologists have turned up at least 60 skeletonsor parts of skeletons in what used to be the bed of Lake Mossø at the site. The lake still exists, but it's smaller than it was 2,000 years ago. The 60 catalogued remains don't include bones found previously — or the many more skeletons archaeologists expect to discover.

"We have trenches going through different areas, so we know we are only touching on a small part of what is actually there," Holst said.

Most of the bones are found disarticulated from one another, and many bear the marks of the battlefield: trauma from swords, spears and axes. Spearheads, an ax, the tip of a sword and shields have also been found at the site, Holst said. All of the bodies are male.

All of the evidence points to a straightforward defeat in battle. But the bones also bear strange marks of tampering after the soldiers' death.

First, many have been gnawed by animals, including large predators such as wolves, dogs and badgers, Holst said. The species present and amount of scavenging suggest the bodies stayed out in the open for at least six months to a year, he said.

After this time, someone collected the corpses and sorted at least some of the bones by type. Marks of cutting and scraping suggest the bones were separated deliberately, and that they had any remaining flesh removed. Animal sacrifices and ceramic pots mixed in with the remains suggest some sort of religious ritual, Holst said. Along with the pelvises strung like beads on a stick, there is evidence that leg bones and thighbones were sorted, too, he said.

From a land spit extending into what was then the lake, the ancient people conducted these rituals and then dumped the bones. Holst and his colleagues know nothing for sure about the victors and the slaughtered, but they suspect that the winners had a geographical attachment to the area, given that they were around long enough to conduct these rituals. There are examples of ritual treatment of defeated enemies in what is now France, Switzerland and England in the centuries prior to this find, Holst said, but nothing like it has ever been seen in Denmark or the surrounding areas.

Read more at Discovery News

Oetzi the Iceman Had Heart Disease Gene

Ötzi the Iceman, a well-preserved mummy discovered in the Alps, may have had a genetic predisposition to heart disease, new research suggests.

The new finding may explain why the man — who lived 5,300 years ago, stayed active and certainly didn't smoke or wolf down processed food in front of the TV — nevertheless had hardened arteries when he was felled by an arrow and bled to death on an alpine glacier.

"We were very surprised that he had a very strong disposition for cardiovascular disease," said study co-author Albert Zink, a paleopathologist at the Institute for Mummies and the Iceman at the European Academy of Bozen/Bolzano in Italy. "We didn't expect that people who lived so long ago already had the genetic setup for getting such kinds of diseases."

Iceman scrutiny

Otzi was discovered in 1991, when two hikers stumbled upon the well-preserved mummy in the Ötztal Alps, near the border between Austria and Italy. Since then, every detail of the iceman has been scrutinized, from his last meal and moments (Ötzi was bashed on the head before being pierced by the deadly arrow blow), to where he grew up, to his fashion sense.

Past research has revealed that Ötzi likely suffered from joint pain, Lyme disease and tooth decay, and computed tomography (CT) scanning revealed calcium buildups, a sign of atherosclerosis, in his arteries.

Initially, the atherosclerosis was a bit of a surprise, because much research has linked heart disease to the couch-potato lifestyle and calorie-rich foods of the modern world, Zink said. But in recent research, as scientists conducted CT scans on mummies from the Aleutian Islands to ancient Egypt, they realized that heart disease and atherosclerosis were prevalent throughout antiquity, in people who had dramatically different diets and lifestyles, he said.

"It really looks like the disease was already frequent in ancient times, so it's not a pure civilizational disease," Zink told Live Science.

Heart troubles

Scientists recently took a small sample of Ötzi's hipbone and sequenced the Neolithic agriculturalist's entire genome, to see where he fell on Europe's family tree. As part of that research, they found that the iceman had 19 living relatives in Europe.

In the new study, Zink and his colleagues found that Ötzi had several gene variants associated with cardiovascular disease, including one on the ninth chromosome that is strongly tied to heart troubles, the researchers reported today (July 30) in the journal Global Heart.

Read more at Discovery News

Large Waves Recorded in Arctic Ocean for First Time

For the first time ever, loss of sea ice is leading to large waves in the Arctic Ocean. During a peak period, an average of 16-foot waves were recorded. Waves as tall as 29 feet were recorded in an area that was not long ago permanently covered in ice.

The findings, from a study published in Geophysical Research Letters, is concerning not only because it appears to be a fast-moving sign of climate change, but the large waves can also lead to more sea-ice loss.

“As the Arctic is melting, it’s a pretty simple prediction that the additional open water should make waves,” lead author Jim Thomson, an oceanographer with the UW Applied Physics Laboratory, said in a statement. Wave size increases with travel distance over open water.

The possibility of an ice-free season in the Arctic opens the possibility of shipping in the region. But large waves increase risk.

“Almost all of the casualties and losses at sea are because of stormy conditions, and breaking waves are often the culprit,” Thomson said.

The new research was taken in deep water in the Beaufort Sea north of Alaska. The researchers plan to be part of an international group that will place dozens of sensors in the Arctic Ocean to learn more about ice retreat in the region.

“The melting has been going on for decades. What we’re talking about with the waves is potentially a new process, a mechanical process, in which the waves can push and pull and crash to break up the ice,” Thomson said.

From Discovery News