Showing posts with label science. Show all posts
Showing posts with label science. Show all posts

Monday, January 14, 2008

Don't just stand there, think - study says we think with our bodies too

New research suggests that we think not just with our brains, but with our bodies


WHEN YOU READ something confusing, or work a crossword puzzle, or try to remember where you put your keys, what do you do with your body? Do you sit? Do you stand? Do you pace? Do you do anything with your hands? Do you move your eyes in a particular pattern?

Discuss Do you use movement to think better?


How you answer questions like these, it turns out, may determine how long it will take for you to decipher what you're reading, solve your puzzle, or get your keys back.

The brain is often envisioned as something like a computer, and the body as its all-purpose tool. But a growing body of new research suggests that something more collaborative is going on - that we think not just with our brains, but with our bodies. A series of studies, the latest published in November, has shown that children can solve math problems better if they are told to use their hands while thinking. Another recent study suggested that stage actors remember their lines better when they are moving. And in one study published last year, subjects asked to move their eyes in a specific pattern while puzzling through a brainteaser were twice as likely to solve it.

The term most often used to describe this new model of mind is "embodied cognition," and its champions believe it will open up entire new avenues for understanding - and enhancing - the abilities of the human mind. Some educators see in it a new paradigm for teaching children, one that privileges movement and simulation over reading, writing, and reciting. Specialists in rehabilitative medicine could potentially use the emerging findings to help patients recover lost skills after a stroke or other brain injury. The greatest impact, however, has been in the field of neuroscience itself, where embodied cognition threatens age-old distinctions - not only between brain and body, but between perceiving and thinking, thinking and acting, even between reason and instinct - on which the traditional idea of the mind has been built.

"It's a revolutionary idea," says Shaun Gallagher, the director of the cognitive science program at the University of Central Florida. "In the embodied view, if you're going to explain cognition it's not enough just to look inside the brain. In any particular instance, what's going on inside the brain in large part may depend on what's going on in the body as a whole, and how that body is situated in its environment."

Or, as the motto of the University of Wisconsin's Laboratory of Embodied Cognition puts it, "Ago ergo cogito": "I act, therefore I think."

The emerging field builds on decades of research into human movement and gesture. Much of the earlier work looked at the role of gestures in communication, asking whether gesture grew out of speech or exploring why people gestured when they were talking on the telephone.

But today, neuroscientists, linguists, and philosophers are making much bolder claims. A few argue that human characteristics like empathy, or concepts like time and space, or even the deep structure of language and some of the most profound principles of mathematics, can ultimately be traced to the idiosyncrasies of the human body. If we didn't walk upright, for example, or weren't warm-blooded, they argue, we might understand these concepts totally differently. The experience of having a body, they argue, is intimately tied to our intelligence.
Discuss Do you use movement to think better?
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"If you want to teach a computer to play chess, or if you want to design a search engine, the old model is OK," says Rolf Pfeifer, director of the artificial intelligence lab at the University of Zurich, "but if you're interested in understanding real intelligence, you have to deal with the body."

. . .

Embodied cognition upends several centuries of thinking about thinking. Rene Descartes, living in an age when steam engines were novelty items, envisioned the brain as a pump that moved "animating fluid" through the body - head-shrinkers through the ages have tended to enlist the high-tech of their day to describe the human cognitive system - but the mind, Descartes argued, was something else entirely, an incorporeal entity that interacted with the body through the pineal gland.

While a few thinkers, most notably the French philosopher Maurice Merleau-Ponty in the 1940s, challenged Descartes' mind-body separation, it remained the dominant model up through the 20th century, though its form evolved with the times. After the development of the modern computer in the years after World War II, a new version of the same model was adopted, with the brain as a computer and the mind as the software that ran on it.

In the 1980s, however, a group of scholars began to contest this approach. Fueled in part by broad disappointment with artificial-intelligence research, they argued that human beings don't really process information the way computers do, by manipulating abstract symbols using formal rules. In 1995, a major biological discovery brought even more enthusiasm to the field. Scientists in Italy discovered "mirror neurons" that respond when we see someone else performing an action - or even when we hear an action described - as if we ourselves were performing the action. By simultaneously playing a role in both acting and thinking, mirror neurons suggested that the two might not be so separate after all.

"You were seeing the same system, namely the motor system, playing a role in communication and cognition," says Arthur Glenberg, a professor of psychology and head of the embodied cognition laboratory at Arizona State University.

This realization has driven much of the recent work looking at how moving and thinking inform and interfere with each other. For example, a pair of studies published in 2006 by Sian Beilock, now an assistant professor of psychology at the University of Chicago, and Lauren Holt, one of her former students, examined how people who were good at certain physical activities thought about those activities.

In one study, Beilock and Holt had college hockey players, along with a non-hockey-player control group, read a sentence, sometimes hockey-related, sometimes not. Then the subjects would be shown a picture and asked if it corresponded with the sentence. Hockey players and non-hockey players alike almost invariably answered correctly, but on the hockey-related sentences the response times of the hockey players were significantly faster than the nonplayers. In a second study, the researchers found similar results with football players. According to Beilock, the difference in response time wasn't a matter of knowledge - after all, all of the subjects in the study got the vast majority of the questions right. What it suggested, Beilock argues, is that the athletes' greater store of appropriate physical experiences served as a sort of mental shortcut.
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"People with different types of motor experiences think in different ways," she argues.

These sorts of results aren't simply limited to thinking about sports, or other highly physical activities. A 2003 study by Michael Spivey, a psychology professor at Cornell, and his student Elizabeth Grant, found that people who were given a tricky spatial relations brainteaser exhibited a distinctive and unconscious pattern of eye movements just before they arrived at the answer. The subjects seemed to unconsciously work through the problem by enacting possible solutions with their gaze.

A study published in August by Alejandro Lleras and Laura Thomas, two psychologists at the University of Illinois, built on those results by inducing the eye movements Spivey had discovered. Lleras and Thomas found that doing so greatly improved the rate at which people solved the problem - even though most never figured out that the eye movements had anything to do with it.

"The subjects actually think that the eye-tracking task is very distracting," Lleras says. "They think we're doing this to keep them from solving the problem."

Other studies have looked at non-spatial problems and at memory. Work led by Susan Goldin-Meadow, a psychology professor at the University of Chicago, has found that children given arithmetic problems that normally would be too difficult for them are more likely to get the right answer if they're told to gesture while thinking. And studies by Helga Noice, a psychologist at Elmhurst College, and her husband Tony Noice, an actor and director, found that actors have an easier time remembering lines their characters utter while gesturing, or simply moving.

The body, it appears, can subtly shape people's preferences. A study led by John Cacioppo, director of the Center for Cognitive and Social Neuroscience at the University of Chicago, found that subjects (all non-Chinese speakers) shown a series of Chinese ideographs while either pushing down or pulling up on a table in front of them will say they prefer the ideographs they saw when pulling upward over the ones they saw while pushing downward. Work by Beilock and Holt found that expert typists, when shown pairs of two-letter combinations and told to pick their favorite, tend to pick the pairs that are easier to type - without being able to explain why they did so.

What's particularly interesting to neuroscientists is the role that movement seems to play even in abstract thinking. Glenberg has done multiple studies looking at the effect of arm movements on language comprehension. In Glenberg's work, subjects were asked to determine whether a string of words on a computer screen made sense. To answer they had to reach toward themselves or away from themselves to press a button.
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What Glenberg has found is that subjects are quicker to answer correctly if the motion in the sentence matches the motion they must make to respond. If the sentence is, for example, "Andy delivered the pizza to you," the subject is quicker to discern the meaning of the sentence if he has to reach toward himself to respond than if he has to reach away. The results are the same if the sentence doesn't describe physical movement at all, but more metaphorical interactions, such as "Liz told you the story," or "Anne delegates the responsibilities to you."

The implication, Glenberg argues, is that "we are really understanding this language, even when it's more abstract, in terms of bodily action."

Some linguists, cognitive scientists, and philosophers go further - arguing that the roots of even the most complex and esoteric aspects of human thought lie in the body. The linguist George Lakoff, of the University of California, Berkeley, along with Rafael Nunez, a cognitive scientist at the University of California, San Diego, have for several years advanced the argument that much of mathematics, from set theory to trigonometry to the concept of infinity, derives not from immutable properties of the universe but from the evolutionary history of the human brain and body. Our number system, they argue, and our understanding of addition and subtraction emerge from the fact that we are bipedal animals that measure off distances in discrete steps.

"If we had wheels, or moved along the ground on our bellies like snakes," Lakoff argues, "math might be very different."

These ideas have met intense opposition among mathematicians, but also among some cognitive scientists, who believe they reflect an overreaching reading of a promising but still sketchy set of experimental results.

"I think these findings are really fantastic and it's clear that there's a lot of connection between mind and body," says Arthur Markman, a professor of psychology at the University of Texas. He remains skeptical, though, that the roots of higher cognition will be found in something as basic as the way we walk or move our eyes or arms.

"Any time there's a fad in science there's a tendency to say, 'It's all because of this,"' Markman says. "But the thing in psychology is that it's not all anything, otherwise we'd be done figuring it out already."

While embodied cognition remains a young field, some specialists believe that it suggests a rethinking of how we approach education. Angeline Lillard, a psychology professor at the University of Virginia, says that one possibility is to take another look at the educational approach that Italian educator Maria Montessori laid out nearly 100 years ago, theories that for decades were ignored by mainstream educators. A key to the Montessori method is the idea that children learn best in a dynamic environment full of motion and the manipulation of physical objects. In Montessori schools, children learn the alphabet by tracing sandpaper letters, they learn math using blocks and cubes, they learn grammar by acting out sentences read to them.

To Lillard, the value of embodied cognition in education is self-evident.

"Our brains evolved to help us function in a dynamic environment, to move through it and find food and escape predators," she says. "It didn't evolve to help us sit in a chair in a classroom and listen to someone and regurgitate information."

Saturday, December 22, 2007

Surgery sans scars with crab shells



Washington, December 22 : Surgical stitches could soon become a relic of medical history, for scientists have developed a thin polymer bio-film that seals surgical wounds.

Scientists at the University of New South Wales in Australia say that surgical sutures date back some 4,000 years, so a new approach has been long overdue.

The bio-film, measuring 50 microns thick, is placed on a surgical wound and exposed to an infrared laser, which heats the film just enough to meld it to the tissue, sealing the wound.

The bio-film, known as Surgilux, is extracted from crab shells and has U.S. Food and Drug Administration approval, one of the device's inventors and leader of the Bio/polymer Research Group, UNSW scientist John Foster said.

Early test results indicate that it has strongest potential for use in brain and nerve surgery because it can avoid the numerous disadvantages of invasive stitches/sutures, which fail to seal and can act as a source of infection.

Up to 11 percent of brain surgery patients have to return for repeat surgery due to leakage of cerebro-spinal fluid (CSF) and other complications arising from sutures.

"Others have tried surgical glues but these are mainly gel-like so bonding to the tissue is uneven often resulting in leakages and they're not easy to use. The strongest surgical glue is so toxic that it's limited to external applications," Foster said.

"Other devices use ultra-violet light to effect rather poor sealing, but UV rays are damaging to living cells.

"The beauty of this is that infra-red laser doesn't cause any tissue damage. Better still, Surgilux has anti-microbial properties, which deters post-operative infections," he added.

Foster and his team are working with micro-surgeon Marcus Stoodley who specialises in nerve repair.

"Surgilux is well suited to repairing damaged nerves because the gold standard - sutures, inevitably cause damage to nerves and there is always some permanent loss of function," Stoodley said.

"Our test results with rats have shown some degree of permanent nerve recovery within six weeks of operating," he adeed.

The researchers, who are looking for commercial backing to initiate clinical trials, are planning a second generation version of Surgilux that incorporates growth factors and perhaps stem cells to regenerate nerves.

Thursday, December 13, 2007

Genetic switch for internal body clock discovered



A team of researchers including an Indian scientist have identified the chemical switch that facilitates the genetic mechanism controlling human body's circadian rhythms or the internal body clock.

The findings by the researchers at University of California, Irvine, have discovered the precise information regarding the body's circadian rhythms till date and this would specifically lead to a new pharmaceutical approach for sleep disorder treatments.

The study was authored by Paolo Sassone-Corsi, distinguished Professor and Chair of Pharmacology and Saurabh Sahar, Department of Pharmacology, School of Medicine, UC.

It was discovered that the genes controlling circadian rhythms were stimulated by a single amino acid.

Amino acids are the building blocks of proteins and this surprised Sassone-Corsi as he found that only a single amino acid activates the body-clock mechanism because of the complex genes involved.

"Because the triggering action is so specific, it appears to be a perfect target for compounds that could regulate this activity," Nature quoted, Sassone-Corsi as saying.

He added: "It is always amazing to see how molecular control is so precise in biology."

The Circadian rhythms are the body's in built system of time-tracking, which foresee environmental changes and adapts to the appropriate time of day. They also regulate a number of body functions, right from sleep patterns and hormonal control to metabolism and behavior.

Almost 10 pct to 15 pct of all human genes are controlled through circadian rhythms. Any kind of disturbance of these rhythms can dramatically influence human health and has been linked to insomnia, depression, heart disease, cancer and neurodegenerative disorders.

Circadian rhythms are triggered by the gene clock and its partner BMAL1.

This research team, last year uncovered that clock functions as an enzyme that modifies chromatin, the protein architecture of a cell's DNA.

However, in the current study, the researchers' team discovered that a single amino acid in the BMAL1 protein undergoes a alteration that activates the genetic chain of events associated with circadian rhythms.

It was also noted, if this amino-acid modification is impaired in any way, the switching mechanism can be dropped, which can be the genetic support for circadian-rhythm-related ailments.

at present, Sassone-Corsi is testing antibodies targeting this BMAL1 amino-acid activity.

Wednesday, December 12, 2007

Best Sci/Tech Toys for Kids




My kids love to play with the usual plastic junk as much as any child obsessed with colorful, shiny objects, but like many a parent, I've grown weary of giving them stuff that won't teach them anything and will just end up at Goodwill (or a landfill) in six months' time.

This year I set out to find some gifts that would at best teach them something about science or technology or, at worst, at least get them inspired and interested in learning a little more about science.

I used my 5-year-old and nearly-2-year-old as guinea pigs with hands-on testing of all these toys; here's what they liked best.

Roboquad - This quadruped robot from Wowwee (which offers a number of fun robo-companions) was the biggest hit with both kids. You can use a remote to order him around the house, step by step (or dance, which the kids like to see at least 10 times a day), or put him in a semi-autonomous mode to blip and beep and explore on his own. He even has LED eyes to light up dark closets. Older kids can program the robot to follow a sequence of instructions. Yeah, he gets stuck in the corner sometimes, but don't we all? $90

Bladerunner III - It's a pint-sized helicopter which you can fly in your house. Nothing was better at quieting a screaming toddler than picking up the Bladerunner and having it land on his mom's head, then lecturing him about Leonardo da Vinci. Be warned: Kids will have to be content to watch, as the controls are extremely difficult to master. I'm also sure it will break in relatively short order, as crashes are all too common. $50

Ice Shattering Mammoth Dig - A huge hit with the kids. You freeze a miniature mammoth skeleton in the included tray, then they whack at it with plastic chisels and warm water to "excavate" the bones. Once the work is done, it goes together like a puzzle. If you want to get kids excited about archeology, it's this, or Indiana Jones. Be prepared for a wet mess, though. $20

Rainbow In My Room - No, it doesn't do much: It puts a rainbow in your room. My daughter loves it nonetheless, and even though it doesn't use a real prism to create its colors (colored LEDs mimic a rainbow instead), it has let me discuss light with her more scientifically. Like she cares... she just wants a rainbow in her room! $30

Digital Speed Sensing Baseball - Why play ball with a normal baseball when you can use this one, which has a speed sensor built in. I have no way of knowing if it's very accurate (other people's reviews are mixed), but it does at least offer something new instead of the usual game of catch. $25

R2-D2 Interactive Droid - I was hoping this miniature R2 unit would get higher marks, but adults liked him more than the kids. Unlike Roboquad, R2-D2 is voice activated, responding and reacting to 30 phrases. My 5-year-old just didn't have the patience to master the required phrasing, though, and R2 didn't like it when two kids just sat there yelling at him. Better for older tykes. $120

Got other shopping suggestions for science-minded kids? Post them here! (And Spirograph doesn't count!)

Tuesday, November 27, 2007

Experts produce high-performance thin field transistors from carbon


Georgia Tech researchers have reportedly produced high-performance field transistors using thin films of Carbon 60, also known as fullerene.

Researchers have been interested in making field-effect transistors and other devices from organic semiconductors that can be processed onto various substrates, including flexible plastic materials.

As an organic semiconductor material, C60 is attractive because it can provide high electron mobility – a measure of how fast current can flow.

The ability to produce devices with such performance with an organic semiconductor represents another milestone toward practical applications for large area, low-cost electronic circuits on flexible organic substrates.

The new devices – which have electron-mobility values higher than amorphous silicon, low threshold voltages, large on-off ratios and high operational stability – could encourage more designers to begin working on such circuitry for displays, active electronic billboards, RFID tags and other applications that use flexible substrates.

According to Professor Bernard Kippelen, the researchers are pretty close to making an effective and efficient thin-film transistor.

"Now that we have shown very nice single transistors, we want to demonstrate functional devices that are combinations of multiple components. We have everything ready to do that," Kippelen added.
Fabrication of the C60 transistors was reported in the journal Applied Physics Letters on August 27th.

The U.S. National Science Foundation through the STC program MDITR, and the U.S. Office of supported the research.

Because they are sensitive to contact with oxygen, the C60 transistors must operate under a nitrogen atmosphere.

Kippelen expects to address that limitation by using other fullerene molecules – and properly packaging the devices.

Though their performance is impressive, the C60 transistors won't threaten conventional CMOS chips based on silicon. That's because the applications Kippelen has in mind don't require high performance.

Now that they have demonstrated attractive field-effect C60 transistors, Kippelen and collaborators Xiao-Hong Zhang and Benoit Domercq plan to produce other electronic components such as inverters, ring oscillators, logic gates, and drivers for active matrix displays and imaging devices.

Assembling these more complex systems will showcase the advantages of the C60 devices.

"The goal is to increase the complexity of the circuits to see how that high mobility can be used to make more complex structures with unprecedented performance," Kippelen said.

Kippelen's team has been working with C60 for nearly ten years, and is also using the material in photovoltaic cells.

Beyond the technical advance, Kippelen believes this new work demonstrates the growing maturity of organic electronics. (ANI)

Saturday, October 27, 2007

Now, walk while you work!


The Associated Press
Last Updated: October 27, 2007 02:38:03
Grand Rapids, Mich. October 27:A number of employers apparently are willing to let their workers walk. Steelcase Inc. says many companies have expressed interest in its newest product, which combines an office workstation with a treadmill so workers can burn calories while earning a paycheck.

The nation's largest office furniture maker will begin taking orders for its Walkstation beginning Nov. 19.

``What we have done is taken science from the lab to a product that could potentially help millions and millions of people,'' Walkstation developer James Levine told The Grand Rapids Press for a story published Thursday. ``I think it's the next iPod. Everybody is going to want one.''

Levine, a researcher at the Mayo Clinic in Rochester, Minn., who has spent the past 15 years studying energy expended during daily activity, collaborated on the Walkstation with Steelcase.

He approached staff members of the Grand Rapids-based company with the idea while they were doing research at the renowned medical facility. Within a month, a prototype was built that combined a height-adjustable workstation produced by Details, a Steelcase subsidiary, with a treadmill from the company's fitness area.

The final product, which will sell for about $4,000 and be the first product of Details' new FitWork line, incorporates a specially designed treadmill by St. Louis-based True Fitness Technology Inc.

The quiet-running treadmill is designed to offer a user a low-impact slow stroll rather than a sweat-inducing run-walk. It operates at a maximum speed of 3.5 mph instead of a more typical 10 mph.

Walking regularly, even at a slow pace, can improve a person's health, said Steve Glass, a fitness expert who is a professor of movement science at Grand Valley State University.

``How hard you work to burn calories isn't as important as burning those calories from the standpoint of long-term health,'' Glass said.

Levine said his research has shown that a sedentary lifestyle is unnatural. The key to fighting obesity and many other health problems is to keep people from spending their days desk-bound.

``Over the last 150 years, we've become chair-imprisoned. We are behind a screen all day at work. We are in a car or bus getting to and from work. And in the evening, we are in a chair watching television or surfing the Internet,'' Levine said. ``We've gone from being on our legs all day to being on our bottoms all day.''