Showing posts with label Latest Science News. Show all posts
Showing posts with label Latest Science News. Show all posts

Friday, 2 December 2011

ONLINE ILM KI DUNYA: Top science News

Amazing Time-Lapse Video of Earth from the International Space Station

 by Mike O'Neill

View of Earth from the International Space Station
An incredible new 5 minute video shows a time-lapse view of the Earth from the International Space Station. Words don’t do justice to the extreme beauty and visual majesty of this video. It gives you a glimpse of the experience of being in space that is so breathtaking it leaves you yearning to be on the next mission to the International Space Station.
Photographs were taken onboard the International Space Station during Expedition 28 and Expedition 29 that were used by Michael König of Berlin, Germany to create this time-lapse video. The pictures were taken by flight engineers Satoshi Furukawa, Ron Garan, and other astronauts during August, September, and October 2011.
Read to find more background information on this spectacular video including details of the breathtaking views of the Aurora Borealis and Aurora Australis captured in this footage.
 Source: http://scitechdaily.com/time-lapse-video-earth-international-space-station/

ONLINE ILM KI DUNYA: Top science News

NASA Curiosity Heads to Mars

NASA Mars Rover Curiosity
We’re heading back to Mars to search for any clues that might indicate life has or could exist on the big red planet. Of course, by ‘we’ I mean the new Mars Science Laboratory known as the Curiosity rover, the largest and most advanced rover that’s ever been sent to Mars.
The Curiosity is the size of a car or small SUV and weighs approximately a ton, with a scientific payload that’s ten times more massive than the instruments carried by previous rovers. A few of the tools the mobile lab is equipped with include cameras, a robotic arm, a drill, and a laser that can vaporize tiny segments of rock that can then be studied by on-board instruments.
“The MSL rover is essentially like a geologist in a self-contained laboratory,” says Wanda Harding, the MSL’s mission manager for the Launch Services Program, “and the capabilities that exist are probably the next best thing to sending a human to do the same job.”
NASA Workers with Curiosity Rover
Since Curiosity is loaded with more equipment than previous rovers, a different power source was needed because the solar arrays that were used on earlier models wouldn’t provide enough power for the new MSL. To insure that power levels don’t become an issue, the Department of Energy built a nuclear-powered electrical system called a multi-mission radioisotope thermoelectric generator (MMRTG). The MMRTG converts heat from a small core of plutonium into approximately 110 watts of electricity, with the conversion process taking place around the clock all year long.
According to NASA, Curiosity will launch at 7:02AM PST on Saturday, November 26th from Cape Canaveral in Florida. The 354 million mile journey is expected to take more than eight months, with the rover landing on Mars in early August 2012.
Source:  http://scitechdaily.com/nasa-curiosity-heads-to-mars/

Wednesday, 30 November 2011

ONLINE ILM KI DUNYA: Top science News

Gray Matter in Brain’s Control Center Linked to Ability to Process Reward

Structure-function impairments observed in people addicted to cocaine

November 29, 2011
UPTON, NY — The more gray matter you have in the decision-making, thought-processing part of your brain, the better your ability to evaluate rewards and consequences. That may seem like an obvious conclusion, but a new study conducted at the U.S. Department of Energy’s Brookhaven National Laboratory is the first to show this link between structure and function in healthy people — and the impairment of both structure and function in people addicted to cocaine. The study appears in the Journal of Cognitive Neuroscience.
brain scans
Methodology and key findings

Structural analysis of the MRI scans was performed using voxel-based morphometry (VBM). VBM is a whole-brain, fully automated, unbiased and operator-independent MRI analysis technique that is commonly used to detect regionally specific differences in brain tissue composition using voxel-wise comparisons. The gray matter tissue probability from each voxel was then correlated with the P300 amplitude difference between the highest monetary reward (45 cents per correct response) and no money (0 cents) conditions of a sustained attention task. The red/orange/yellow highlights on these brain scans indicate the regions where the correlation between gray matter volume and differential P300 response was quite strong in healthy control subjects but weak or nonexistent in cocaine-addicted individuals — the dorso-lateral and ventro-lateral prefrontal cortex, anterior cingulate cortex, and the orbitofrontal cortex, which are known to be functionally involved in reward processing and decision-making. These results suggest that the structural integrity of the prefrontal cortex modulates electrocortical sensitivity to monetary reward. Impairments in these regions may also be related to decreased ability to assess and respond to other modulated rewards and consequences, such as those associated with using addictive drugs.
“This study documents for the first time the importance to reward processing of gray matter structural integrity in the parts of the brain’s prefrontal cortex that are involved in higher-order executive function, including self-control and decision-making,” said Muhammad Parvaz, a post-doctoral fellow at Brookhaven Lab and a co-lead author on the paper.
“Previous studies conducted at Brookhaven and elsewhere have explored the structural integrity of the prefrontal cortex in drug addiction and the functional components of reward processing, but these studies were conducted separately,” Parvaz said. “We wanted to know whether the specific function of reward processing could be ‘mapped’ onto the underlying brain structure — whether and how these two are related,” he added.
Differences in gray matter volume — the amount of brain matter made up of nerve cell bodies, as opposed to the “white matter” axons that form the connections between cells — have been observed in a range of neuropsychiatric diseases when compared with healthy states, explained Anna Konova, the other co-lead author on the paper. “We wanted to know more about what these differences mean functionally in healthy individuals and in drug-addicted individuals,” she said.
To explore this structure-function relationship, the scientists performed magnetic resonance imaging (MRI) brain scans to measure brain volume in 17 healthy people and 22 cocaine users. The scans collect structural measurements for the entire brain, and can be analyzed voxel-by-voxel — the equivalent of three-dimensional pixels — to get detailed measurements for individual brain regions.
Within a short period of the MRI scans, the scientists also used electrodes placed on the research subjects’ scalps to measure a particular electrical signal known as the P300 (an event-related potential derived from an ongoing electroencephalogram, or EEG, that is time-locked to a particular event). This specific measure can index brain activity related to reward processing. During these electrical recordings, the subjects performed a timed psychological task (pressing buttons according to a specific set of rules) with the prospect of earning varying levels of monetary reward, from no money up to 45 cents for each correct response with a total potential reward of $50.
Previous studies by the research team have shown that, in healthy subjects, the P300 signal increases in magnitude with the amount of monetary reward offered. Cocaine-addicted individuals, however, do not exhibit this differential response in the P300 measure of brain activity, even though they, like the healthy subjects, rate the task as more interesting and exciting when the potential reward is greater.
The current study extended these results by linking them for the first time with the structural measurements.
The scientists used statistical methods to look for correlations between the difference in brain activity observed in the high-reward and no-reward conditions — how much the brain’s P300 response changed with increasing reward — and the gray matter volume in various parts of the brain as measured voxel-by-voxel in the MRI scans.
In the healthy subjects, the magnitude of change in the P300 signal with increasing reward was most strongly correlated with the volume of gray matter in three regions of the prefrontal cortex.
“The higher the gray matter volume in those particular regions, the more brain activity increased for the highest monetary reward as compared to the non-reward condition,” Konova said.
The cocaine-addicted individuals had reduced gray matter volume in these regions compared with the healthy subjects, and no detectable differences between the reward conditions in the P300 measure of brain activity. There were also no significant correlations between the former and latter — structure and function measures — in the cocaine-addicted subjects.
“These findings suggest that impaired reward processing may be attributed to deficits in the structural integrity of the brain, particularly in prefrontal cortical regions implicated in higher order cognitive and emotional function,” Parvaz said. “This study therefore validates the use of the structural measures obtained by MRI as indicative of functional deficits.”
The implications are important for understanding the potential loss of control and disadvantageous decision-making that can occur in people suffering from drug addiction, Konova explained: “These structure-function deficits may translate into dysfunctional behaviors in the real world. Specifically, impaired ability to compare rewards, and reduced gray matter in the prefrontal cortex, may culminate in the compromised ability to experience pleasure and to control behavior, especially in high-risk situations — for example, when craving or under stress — leading individuals to use drugs despite catastrophic consequences.”
The authors acknowledge that there are still questions about whether these changes in brain structure and function are a cause or a consequence of addiction. But the use of multimodal imaging techniques, as illustrated by this study, may open new ways to address these and other questions relevant to understanding human motivation in both health and disease states, with particular relevance to treating drug addiction.
This research was performed at Brookhaven Lab under the guidance of Rita Goldstein, Director of Brookhaven Lab’s Neuropsychoimaging Group and the corresponding author on the paper. Dardo Tomasi of the National Institute on Alcohol Abuse and Alcoholism, who runs Brookhaven’s MRI facility, and Nora Volkow, Director of the National Institute on Drug Abuse (NIDA), were co-authors. The research was funded by a grant to Goldstein from the National Institutes of Health and by the General Clinical Research Center of Stony Brook University.

Source:  http://www.bnl.gov/bnlweb/pubaf/pr/PR_display.asp?prID=1355&template=Today

Saturday, 26 November 2011

ONLINE ILM KI DUNYA: Top science News

How Bats 'Hear' Objects in Their Path

ScienceDaily (Nov. 29, 2011) — By placing real and virtual objects in the flight paths of bats, scientists at the Universities of Bristol and Munich have shed new light on how echolocation works. Their research is published today in Behavioural Processes.


 
Overlay of 20 video images showing the flight paths of bats passing the loudspeaker used for virtual object presentation. (Credit: Image by University of Bristol School of Biological Sciences)






 The researchers found that it is not the intensity of the echoes that tells the bats the size of an object but the 'sonar aperture', that is the spread of angles from which echoes impinge on their ears.
Echolocating bats emit calls for orientation. These calls bounce off objects in a bat's environment, carrying information about the object back to the bat -- for example, the echoes of large objects are louder than those of small objects. Analysing echoes when surrounded by a cacophony of calls and echoes from other bats, however, makes this a difficult task for the auditory system.
The Bristol and Munich researchers first wanted to know whether bats are able to use echolocation in such a crowded situation at all. The team filmed the flight paths of hundreds of bats of 13 different species while the bats were emerging from a cave, and then placed a small novel object in the flight paths.
Dr Holger Goerlitz, now a Research Fellow at Bristol's School of Biological Sciences, was amazed by the experience: "The videos clearly showed curves in the bats' flight paths after we introduced the small novel object. This means that the bats were able to use echolocation in this familiar and crowded situation to detect the object, which measured only 5x8 cm, and to guide their evasive flight."
But how do bats perceive the size of an object from the echoes bouncing off it? To test whether bats use echo intensity, the team used echoes of virtual objects, which could be manipulated in size, from a loudspeaker. This method records the calls of passing bats and simulates in real time the echoes of objects that are not present physically -- just like a projector can show visual images of absent objects. Using this method for the first time with wild bats, the researchers could manipulate a single echo parameter -- intensity -- and study its effect on the perception of object size.
Although the size of the virtual object, and thus its echo intensity, was more than ten times larger than the small, real object used before, the bats did not show any evasive flight.
Dr Goerlitz said: "This result suggested that the virtual object was lacking a crucial feature for object size perception. We think that bats use another echo parameter beside intensity: the sonar aperture, which is the spread of angles of incidence from which echoes impinge on a bat's ears. The sonar aperture directly correlates with the size of real objects. And in contrast to real objects, virtual objects presented from a single loudspeaker lack a wide sonar aperture."
A second study, just published in the Journal of Neuroscience by Dr Goerlitz's colleagues in Munich, confirms this finding. Using loudspeaker arrays, Melina Heinrich and colleagues trained bats in the lab to chose the larger of two objects. The results show that the bats were able to choose the larger object using the sonar aperture only, independently of echo intensity. This behaviour was reflected in the activity of nerve cells that reacted specifically to echoes of a given sonar aperture.
Together, these studies have uncovered a novel mechanism for object size perception in bats, which employs the small echo differences between both ears generated by echoes arriving from different directions. In contrast, our eyes can measure object size directly from the two-dimensional retinal image. By perceiving the intensity and sonar aperture of object echoes, however, the auditory system has evolved its own solution for the perception of object features -- giving bats access to comparable information about objects as we obtain with our eyes.