Tuesday, August 9, 2011

Cougar in Connecticut

Scientists piece together the wanderings of young males catWeb Edition: Tuesday, access , August 2, 2011, you can wander far Cougars and widely. Young males are killed in Connecticut, which wildlife populations lived there for over a century — arrived in the State after nearly 2,000-mile journey, which started in the Black Hills of South Dakota. The scientists used DNA fingerprints to identify its home population and roztrzaskanych its use hair and fecal samples, the foot prints and pictures of cameras trail hike likely.JHaviv/iStockphoto

The story begins with the unidentified body was found on a roadside. Hit by a car in the wee hours of the morning, the researchers puzzled over which had come from and how they came to his resting place of asphalt.

But that's not human murder mystery: the victim was a young cougar, struck down in the Milford Parkway, Wilbur Cross Module 11 June. The incident shocked the country where drivers are accustomed to the adjacent deer dash in front of their customers succeed, 140-Pound feline predatory pricing. On 26 July, after working for weeks to submit the story scientists provided surprising cougar saga, cat, 2,000-mile journey from the Black Hills of South Dakota to the Green Lawns of southern New England.

In the case of young males was killed, the researchers originally thought the cat could be game — not wild cougars has been documented in Connecticut since the end of the 19th century.

But autopsy suggested otherwise. "He was not neutered, declawed tags was not was not overweight," says wildlife biologist Paul Rego Connecticut Department of energy and environmental protection, who coordinated the State investigation. There were no microchip under the skin of the animal — simply embedded Porcupine Quills.

Perplexed, the scientists sent a portion of the muscle to the u.s. Forest Service Wildlife Genetics laboratory in Missoula, Montana, Idaho, hoping genetics could help determine the cat's home range.

In the last decade laboratory built the extensive genetics, consisting of 50 different wild species, says the Director of the laboratory of Michael Schwartz. The scientists used mainly to study how land management affects the population breeding patterns and dispersion of animals to their current scope, which are essential for the prevention of reproductive isolation and inbreeding.

"But we do a lot of this kind of work, Schwartz says."Every once in a while it decides, it will display the cougar in the area, where there is no wild populations.

Schwartz and his team compared DNA samples from the Connecticut Cat cougar about 800 in the database using DNA fingerprint techniques similar to those of officials of the U.S., probably used to identify Osama Bin Laden's body. They looked at 20 DNA microsatellites — areas with repeatable genetic elements different length — as well as passive inherited from DNA genome mitochondrialny. Mitochondrial DNA confirmed that the cat came from North America and there were imports of South America — are usually animals living freely in captivity. The data matched the genetic profile of microsatellite population cougar Black Hills, certainly 99,8%.

Although the Western United States is home to an estimated 30,000, the number of cats, cougars, Black Hills from only 200 to 250, "says wildlife biologist Jonathan Jenks from South Dakota State University in Brookings, who has studied the population because, recolonizing the area began in the 1990s. Jenks and his team put radio collars to the estimated 300 individuals and observe the Cougars relocated, during their journey to places such as Oklahoma and Saskatchewan. "Approximately 90 percent of adult males leave the sub-Black Hills," says Jenks. "And they travel extensively, that's for sure. Especially the males. However, I'm surprised this one has done so far. "

Schwartz says that he was stunned to learn that the genetic profile of the animal was already in the database's lab. "Do not believe it at the beginning," Schwartz said. "Actually, we had our Run was preparing the samples so as to make sure."

It appeared in earlier samples — hair and fecal matter — were collected over a year earlier by biologists track cougar associated with Connecticut in Wisconsin. First spotted in the chaplain, Minn., in December 2009 biologists track him he zig-zagged through Wisconsin, leaving a trail of Foot prints, hair and rufówka.

Even in Wisconsin — with his bears and Wolves, cougars are unexpected visitors, says mammal ecologist Adrian Wydeven from the Wisconsin Department of natural resources in the Park Falls.

There were only four cougars confirmed in that Member State as of 2008, so when travelling cougar appeared, Wydeven and his team kept watchful eye on its movements. From December 2009 through late spring 2010 they Haunted Cat trail, sampling and sending them to the laboratory. In December, the camera captured cougar prowling trail through the snow in the evening near the area where the hair had been previously sampled, providing scientists with a glimpse of the cat.

Then after another portrait of trailside in May 2010, cat disappeared.

The next time he appeared he was more than a year later and half a continent away, just a few kilometres from the Connecticut shore. Scientists do not know, the cat is voyages between Wisconsin and Connecticut, but wildlife biologist Clayton Nielsen Southern Illinois University in Carbondale, speculates the cat probably crossed Michigan Upper Peninsula, then shrink its way through New York. "There is no real way of knowing," he says. "But, going South through Illinois, Indiana, Ohio, United States — it is a very poor Habitat, it is highly probable that people would read this animal."

Nielsen, which analyses the cougars in the Midwest, "says the young males are rising while roaming in the area, there are still not known to have produced populations East of the Black Hills, except for endangered groups of less than 100 in and around the Everglades of Florida. Scientists hypothesize that the Cat was wandering Connecticut in search of food and mate-but because he has not found a mate, he kept on moving. Female cougars will not travel nearly as far as males, which limits the establishment of a new created the populations. But Nielsen, if females hypothesizes several similar routes, it is likely that the population of cougar could re-establish itself farther east.


Found in: Life

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The Problem for the week of August 13, 2011.

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Monday, August 8, 2011

News in brief: genes and cells

Family relationship in breast cancer and memory, plus diagnosis of ancient death and more in this week's newsWeb edition: Friday, July 29, 2011

Working memory is genetic
People who can juggle a lot of information at the same time they should thank their parents, suggests new research. Working memory is used to store information in mind simultaneously, and some people have better memories than others. Gabriëlla Blokland University of Queensland in Brisbane, Australia, and colleagues scanned the brains 319 twins who were carrying out the tasks of the working memory. Twin Sisters performed together more brains similarly than twin, suggesting that working memory is strongly influenced by genetic factors. The results are displayed in the July 27 Journal of Neuroscience. – Laura Sanders

Shorter telomeres, cancer, breast
Cut gradually turns off the ends of chromosomes can lead to progressively earlier breast cancer in families with inherited risk of disease. Women with breast cancer, mutations of the genes BRCA1 and BRCA2, or from other Inherited mutations also had shorter telomeres — protective covers on chromosomes — than women in the public service, July 28, in PLoS Genetics researchers report in the Spanish National Cancer Research Center in Madrid. In families with hereditary breast cancer, breast cancer, the daughter of a younger age developed and had a shorter telomeres than their mothers. Measurement of Telomere length could help doctors better screening design plans. — Tina Hesman Saey

Quality over quantity in the conservation of avian influenza
The elderly provide for effective combating of avian influenza antibodies, but often do not make enough to keep the virus in check. This may explain why influenza vaccine work well in older people, researchers from Stanford and the University of Chicago report in the August Journal of clinical investigation. Study suggests that doctors, you can specify that generated the appropriate number of vaccinated patients safe from influenza antibodies. — Tina Hesman Saey

Diagnostics on CSI: Siberia
Thought that was a long time to come back for your lab tests consider the case of a man in Siberia. The man died in the late 17th century or beginning of the 18th century, but French and Russian scientists are only now finding how to diagnose the disease, which have killed him. DNA from the man's teeth and the lungs reveals that he was infected with a bacterium, which causes whooping cough. Teeth with other long-dead Siberians have shown that they were infected with bacteria that cause pneumonia and dysentery, researchers report online on July 13, in PLoS ONE. New technique may help scientists figure out where the disease had killed people in different times in history. — Tina Hesman Saey


Found in: genes and cells

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DNA-associated Hodgkin-switches

Gene mutations that delete the other genes, enabling and disabling may lie at the heart of the two forms of blood cancer, non-Hodgkin lymphoma.

Two separate studies found mutations in the gene MLL2 lead to cancer, scientists report online on July 27, in nature and 31 July in nature Genetics. For some subtypes of Hodgkin Lymphoma-mutations appear to account for the majority of cases.

"Place in MLL2 gets right-top of the list," says Ryan Morin British Columbia Cancer Agency in Vancouver. Morin and his colleagues found that the gene is mutated in 89% of cases, grudkowy, slow-growing form of the disease.

"Is [mutant], defining the disease," says Riccardo Dalla-Favera, molecular hematologist at Columbia University and coauthor of the paper in nature Genetics.

Both studies found that mutations in MEF2B are associated with a form of cancer known as Lymphoma germinal Centre.

Mutations are among 100 people Lymphoma, authors of the paper in nature Genetics estimate. This gives the idea of landscape changes in the genetic disease, "says Dalla-Favera. "Biology is yet to be examined."

But even with limited information, as do two newly discovered mutations, their Ubiquity in certain forms of Hodgkin's lymphoma-they could make, their good targets for the fight against cancer drugs.

Two genes help, turning on and off other genes by changes of epigenetyczne-chemical tags on DNA or associated proteins that change how genes operate without changing their content information. In this case, these tags affect how tightly the DNA strands are nakrecane around the protein, similar to a buffer, called histones, which package of genetic material and prevent getting tangled up.

Researchers think gene mutations that interfere with the activation generally, but that the change of the activity of a small number of genes is probably have cancer.

"I don't think Epigenetics intends to act in each cancer, but is really underappreciated," Morin says.


Found in: Body and brain and genes and cells

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Sunday, August 7, 2011

Flatland carbon

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access In this false-color microscopy image, a patchwork “quilt” of graphene displays colorful patches where the usual six-member carbon rings grow imperfectly and at different orientations.Muller lab/Kavli Institute at Cornell for Nanoscale Science

Some physicists spend their days exploring the three dimensions of space, the four dimensions of spacetime or even the 11 dimensions of something called M-theory. Other researchers are content with just two.

But fewer dimensions doesn’t mean less science. For seven years, researchers have been enjoying a two-dimensional playground of new physics provided by a superflat material called graphene.

This deceptively simple substance — nothing more than a sheet of honeycombed carbon atoms, which you can find within flakes from pencil lead — contains head-slappingly bizarre physics. Unlike almost any other common material, graphene sometimes behaves according to the weird rules of quantum mechanics. And electrons within it assume an otherworldly identity, zipping along as if they have no mass.

“Suddenly graphene came on the scene and it had a completely new physics to it,” says Joseph Stroscio, a physicist at the National Institute of Standards and Technology in Gaithersburg, Md. “That got everyone very excited” — even scientists who ordinarily like lots of dimensions.

Discovered in 2004, graphene was quickly recognized as cool enough to warrant a Nobel Prize in physics, awarded in 2010. Now, researchers are shifting from simply being excited about graphene (SN: 9/27/07, p. 200) to more deeply understanding and even harnessing the physics at play.

For one thing, scientists now understand how stacking one sheet of graphene atop another in just the right way can change the way electrons flow between the layers. Other researchers have found that putting graphene atop a slab of boron nitride lets them manipulate the electron flow far better than before. Some groups are already designing devices for a new graphene age; this spring, IBM researchers reported building the first electronic circuit entirely out of graphene.

access CARBON SIBLINGSThe single layer of honey­combed carbon atoms that make up graphene forms the basis of two other carbon materials of scientific interest: ball-shaped fullerenes and curled-up nanotubes.top two images: E. Feliciano; bottom image: 3drenderings/shutterstock

Graphene, the two-dimensional wonder material, seems ready to deliver on some of its early promises for the three-dimensional world.

A simple sheet

Not all of graphene’s predecessors have lived up to their original hype. In 1985, Texas and British chemists discovered cages of carbon atoms including the famous “buckyballs,” 60-carbon conglomerates that look like miniature soccer balls. These molecules, part of a class called fullerenes, were touted as the next big thing in electronics; yet after a quarter century, nobody has a buckyball running an iPhone. Then, in 1991, a Japanese scientist discovered another carbon curiosity, tiny “nanotubes” made of rolled-up atoms. Although some scientists have developed new electronics based on carbon nanotubes (SN: 12/4/10, p. 20), the tubes turned out to be hard to make and arrange cleanly.

Now graphene is having its try at a technology revolution, and many argue it will fare better than the other carbon protégés. “The thing about graphene is that it’s a truly two-dimensional crystal,” says Antonio Castro Neto, a theoretical physicist at Boston University who is setting up a new graphene research center at the National University of Singapore. “We never had something like that before.”

In graphene, electrons can flow far more freely than they can in either buckyballs or nanotubes, in part because it is the simplest of these forms of carbon. The bonds between the atoms also make graphene superstrong and superflat; in theory, a 1-meter-square hammock of graphene could support the weight of a cat despite being lighter than the cat’s whisker.

Rather than forming as individual sheets, graphene forms as layer after layer within graphite, the stuff of pencil lead. One millimeter of graphite contains roughly 3 million layers of stacked graphene. “If you write very carefully, it’s likely you’ll get a few layers of graphene from your pencil,” says Sankar Das Sarma, a physicist at the University of Maryland in College Park.

access GRAPHENE ON TOPPutting a graphene sheet atop different substances creates different electronic effects. Atop platinum, the sheet wrinkles to form tiny nanobubbles (colored peaks, below). When graphene is put on boron nitride, the flow of electrons is simplified compared with the flow on silicon dioxide (right).From left: N. Levy et al/Science 2010; R. Decker et al/Nano Letters 2011

In keeping with the office-supplies theme, the scientists who won the Nobel for graphene used Scotch tape to pull apart flakes of graphite. By repeatedly folding and then opening up a piece of tape with graphite stuck on, Andre Geim and Konstantin Novoselov of the University of Manchester in England managed to peel off single graphene layers.

Each single layer, the scientists later found, behaves in extraordinary ways. In most materials, the speed of electrons changes with their energy. In graphene, though, electrons behave as if they have no mass; they move at a constant speed no matter their energy, and they cannot be stopped. Only particles in atom smashers and cosmic rays behave this way, and the math that describes graphene electrons is very much like the math that describes neutrinos, those elusive, nearly massless particles that zip through space.

“Boom — all of a sudden we have a system of quasi-neutrinos,” says Eva Andrei, a physicist at Rutgers University’s campus in Piscataway, N.J. The only difference is that graphene electrons travel at roughly a million meters per second; neutrinos (and light) travel 300 times that fast.

Discovery after discovery has revealed the bizarre things these graphene electrons can do. In April in Science, Geim and his colleagues reported that under certain conditions, electrons in graphene can adopt a split personality in which one of their properties (electric charge) behaves according to the rules of the everyday world but another property (spin) behaves according to the otherworld of quantum mechanics. “We are not used to quantum mechanical effects happening in our normal life,” says Castro Neto. “When you find a material like that, it’s really a treasure.”

Stretching graphene also makes its electrons do funny things. At the University of California, Berkeley and the Lawrence Berkeley National Laboratory, scientists accidentally found that if they grew graphene atop platinum, the graphene sheet could sprout tiny bubbles on its surface. Within those bubbles, electrons act as if they are under the influence of a strong magnetic field. Nobody is really sure what this means, says team member Castro Neto, but researchers in Singapore have managed to create similar bubbles at will. “Now we can control at the nanoscale the nature of the electronic states,” Castro Neto says. “I think this is going to really generate a revolution in the way in which we deal with graphene.”

And all that in just a single layer of graphene. For even more new tricks, scientists are turning to two-layer, or bilayer, graphene.

access The first integrated circuit made fully from graphene (yellow design, bottom; close-up, top) could herald a new age of graphene electronics.IBM

Doubled up

When it comes to building new electronic devices, single-layer graphene suffers from one huge drawback: It doesn’t have a “band gap,” or break in the energy levels that its electrons can occupy. Without a band gap, scientists can’t turn the flow of electrons on and off — a crucial part of any electronic gadget. But adding a second layer of graphene creates such a band gap, making the bilayer structure more like a semiconductor in which the flow of electrons can be controlled instead of zooming along willy-nilly.

“Unlike single-layer graphene, bilayer has the possibility of shifting charge from one layer to another,” says Amir Yacoby, a physicist at Harvard University. And interactions among the electrons cause other weird and wonderful physics, Yacoby says, such as the breaking of fundamental symmetries in how the electrons spin and move. “Several experiments indicate that interesting things are happening, but there is really no good understanding of what is going on there as of yet,” he says.

As intriguing as bilayer graphene is, making it isn’t as simple as slapping one graphene layer atop another. How the two layers are stacked relative to one another is crucial for electronic applications, Andrei and her colleagues reported in March in Physical Review Letters. If the carbon honeycombs of each layer are rotated less than 5 degrees relative to each other, Andrei’s team found, then they behave as a true bilayer, and can create the electronic band gap. But if the honeycombs are offset by about 20 degrees or more, then the graphene layers continue to behave electronically as two separate layers.

Such research shows how graphene electrons can be coaxed into acting however scientists want them to, Andrei says. “Here we have an external knob to control the electronic properties,” she says. “That’s quite exciting.”

Where two layers are good, three might be even better, and so some researchers are pushing to make trilayer graphene. But as with the bilayer, researchers can’t just throw three graphene sheets in a pile; the carbon honeycombs have to line up just so. Usually trilayer graphene comes in what’s called the ABA form, in which the honeycombs of the top and bottom layer mirror each other. The ABC form, in contrast, slides that topmost layer over to one side so that the honeycombs climb like stairsteps.

Nobody has ever gotten the ABA version of graphene to do anything very exciting, but a research team led by Tony Heinz of Columbia University has been playing around with the ABCs. In a paper appearing online in May at arXiv.org, Heinz and his colleagues report making an electronic band gap appear in ABC graphene. It’s the first time anyone has been able to do this, and opens a new class of materials that scientists can work with.

Graphene building

Just as in the construction industry, foundation is everything when it comes to building with graphene. Left to its own devices, a graphene sheet will wrinkle like poorly torn plastic wrap. Some researchers try to get around this by suspending graphene on clips in air, like a piece of laundry hanging out to dry. Even then, though, the edges will ripple or roll themselves up, or the sheet itself will tear. So scientists are investigating new ways to lay graphene flat and keep it that way.

Early on, most research teams plopped some graphene on a slab of silicon dioxide, the stuff of everyday computer chips. But the silicon and oxygen atoms interfered with the way the graphene’s electrons zipped along. Instead, scientists have now switched their foundations to boron nitride, the stuff used to add glitter to cosmetics. Like graphene, boron nitride also has its atoms arranged in a single hexagonal sheet, with boron and nitrogen alternating in the spaces where carbon atoms sit in graphene. It’s an almost perfect match.

“Once you use a boron nitride substrate and stack it with graphene, a number of things change,” says Philip Kim, a physicist at Columbia. Compared with silicon dioxide, boron nitride lets the electrons zip along without interference, Kim and his colleagues showed last year.

To see why boron nitride works so well, scientists at UC Berkeley and the Lawrence Berkeley lab recently took a closer look at what happens when graphene and boron nitride meet. Using a scanning tunneling microscope, which can see at the level of individual atoms, the team compared graphene mounted on silicon dioxide with graphene mounted on boron nitride. The silicon dioxide version turned out to be strewn with “charge puddles,” or spots where the electron flow got hung up. In contrast, the boron nitride samples were practically puddle-free. Michael Crommie, Alex Zettl and colleagues reported the findings this year in Nano Letters.

With this solid foundation and new ways of stacking, researchers can now act as architects, designing devices that take advantage of graphene’s protean qualities. Though it probably won’t ever replace the industry standard of silicon, graphene could lead to new kinds of gadgets. “It’s really about what we can gain by using graphene in different applications,” Castro Neto says.

Already, the wonder sheets are making inroads into silicon’s traditional territory. In June in Science, IBM scientists reported making an integrated circuit whose components, including a transistor, are made completely out of graphene. Other teams have made individual graphene components before, and even linked hundreds of transistors together on a single chip. But the IBM group, led by Phaedon Avouris at IBM’s Watson Research Center in Yorktown Heights, N.Y., is the first to make a complete circuit entirely out of graphene. Because graphene is so cheap, these kinds of circuits could prove popular for use in smartphones and other portable devices.

Unlike today’s rigid computers, graphene can also be molded over surfaces, like a dust sheet protecting furniture from debris. Last year, for instance, researchers at Samsung in South Korea showed off the world’s first graphene touch screen, a flexible sheet that uses the carbon atoms as see-through electrodes. Other industry scientists are developing graphene-based biological sensors and solar cells as cheap, bendable alternatives to ones already on the market. And in a paper published in June in Physical Review B, the Berkeley collaborators describe how they gathered up graphene like a bedsheet into folds, ruffles and pleats, creating a never-before-seen material they dub “grafold.”

At another research frontier, scientists are taking advantage of graphene’s weird electronic properties by interleaving stacks of it with different materials, such as insulators. “It’s like making a big sandwich with tomato, lettuce, meat, bread and so on,” says Castro Neto. “Each material gives a different taste, and at the end of the day you can have a very juicy sandwich that doesn’t look at all like the piece of bread you started with.”

Scientists are just starting to test the various combinations available, and it’s clear the graphene delicatessen won’t run out of possibilities anytime soon. In early 2005, at the first major American Physical Society meeting after Geim and Novoselov’s Nobel-winning discovery, attendees at the only graphene session didn’t even fill a small conference room. In spring 2011, Novoselov headlined the same physical society meeting while dozens of breakout sessions delved into the new possibilities offered by graphene.

With this amount of intellectual firepower, the discovery that started with some Scotch tape and pencil lead is sure to meet a much higher-tech end.


Found in: Materials Science, Molecules and Physics

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News in brief: Life

Flowers rely on advertising
Some unusual graffiti shows how important the advertising signs are among the wild flowers. Six white stripes on a dark Iris flower, a kind of a wild point of vital "proboscis here insert" opening at the saczy nectar. Erasing ink to some or all of these characters, the Guide did not make much difference in whether pollinators approached flower. However, a few pollinators of flowers defaced sipped and pollen spread dropped as low as zero, Dennis Hansen and colleagues report on the University of KwaZulu-Natal, South Africa in the coming of the Royal Society b. — Susan Milius

Hope for the return of the cod
New data crunching four decades suggests that predatory fish such as cod finally may be able to increase their numbers. Far exceeded the Canadian East Coast Scotian Shelf has not returned despite the beginning of the closure of the fishery virtual in the early 1990s. For 15 years the numbers of cod and other species of predatory fish remain low during eating plankton and fish of larger invertebrates boomed. Now the plankton eaters seems to have outpaced food supply and reducing their predation as cod opportunity offers, Kenneth Bedford Institute of Oceanography, Frank in Nova Scotia and his colleagues argue online 27 July in nature. — Susan Milius

Fruit loo
One of the toilets of nature uses fruity smell to its furry critters to lure dangerous rims. Carnivorous pitcher plants of Borneo Nepenthes rajah is a favorite tree shrews and the throne for rats. While the Association of the Leading pool animals lick the lid at the plant and provide rich nutrient now poopy. And they occasionally drown in bowl, which is filled with digestive juices soupy, insects and fecal matter. Now, scientists from Germany and Malaysia think they know, which maintains a small mammals return to toilets: lid exudes hydrocarbons, esters, ketones and alcohols — compounds that produce tempting fruity or wonderful, the team reports in the journal of Tropical Ecology of July. Nadia – Drake

Deciduous beckon Bats transmitters
Although they are not as flashy as their neighbors kwiatowym, Plain old leaf could attract too pollinators. Bat Echolocation signals bounce off the leaves growing on bat pollinated Cuban rainforest Marcgravia vines, the evenia scientists from Germany and the U.K. Report 29 July in science. Strange, the dish-shaped leaf hangs above the vine ring of flowers. Shooting simulated animal echolocation calls of leaves produced a strong, multifaceted and invariant reflection. Deleting a leaf feeding Time doubled Nectar nectar bats, suggesting that in fact, ECHO is a significant pull nocturnal pollinators. Strange leaf shape and orientation affects the efficiency of the photosynthetic, but scientists think that the cost is offset by the benefits has registered the pollination of bat. Nadia – Drake


Found in: Life

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Saturday, August 6, 2011

News in brief: Atom and Cosmos

Jupiter, black hole interactions and gargantuan hole watered this week newsWeb edition: Tuesday, August 2, 2011

The asteroid Trojan land
The Trojan may also sound like nikczemników-sneaky buggers ready for extraction of barrage meteorites — but don't have a lot more than tagalongs orbits. The scientists report in July 28 nature that Earth has one of these friends sharing its orbit of the Rocky Mountains, such as Mars, Jupiter and Neptune. Astronomers in Canada and the United States found a 300-meter, called TK7, 2010 data from the telescope Wide Field Infrared Survey Explorer and confirms its presence in the ranges on Earth. Trojan horses are difficult to detect, because they usually dwell in the daylight sky but can produce good candidates to the asteroid Rendez-vous. Nadia – Drake

Not enough black hole
Small black holes may eschew innermost area around the gargantuan Black hole after the two galaxies merge. The result, reported online on July 21, Alessia Gualandris on arXiv.org through the Max Planck Institute for Astrophysics and David Merritt Rochester Institute of Technology, comes from a computer simulation as the stuff in the cores of galaxies reorganizes after the collision. Both galaxies began pressuring the central black hole, which coalesced into a single larger hole. However, after the beginning of everything, settling down, a number of smaller black holes, which stuck close to the newly formed beast was only 1 per cent to 10 per cent of what was expected. Astronomers suggest that real galaxies in this connection it may have populations of black holes with/"very uncertain". — Camille M. Carlisle

Galaxy watering hole
Astronomers detect the reservoir is the oldest and largest in the universe. Water, holed up in a cloud surrounding a gigantic black hole in our Galaxy, which blazed brightly about 1.6 billion years after the big bang. The water runs rampant in the cosmos, but this OASIS has water equal to the mass of at least 100 000 suns, fount stash Starfield approximately 4000 times. The results reported by two international teams in the two documents will appear in Astrophysical Journal, suggest a vapor almost 2,000 light years wide surrounds a central black hole. — Camille M. Carlisle


Found in: Atom and Cosmos

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