2012-02-24

Key to growth differences between species

Using the wings of these insects as a tool to study how growth is regulated, biologists at the University of Rochester have discovered that changes in expression of a well-known cell regulator gene called "unpaired" (upd) accounts for wing growth differences between males of closely related species. Unpaired is distantly related to a class of genes called "interleukins'" which affect cell growth and specialization in humans. The discovery illustrates the principle that animals -- from insects to humans -- often use the same "genetic toolkit," despite immense differences in their biology. The findings are being published in the current issue of the journal Science.

Prof. John (Jack) Werren and doctoral student David Loehlin isolated the gene causing the wing difference through a technique called positional cloning. The large-winged N. giraulti and small-winged N. vitripennis wasps were crossbred, resulting in hybrid wasps with mixed chromosomes. Afterwards, the offspring with the largest wings were crossbred with pure N. vitripennis wasps, until, after ten generations, Werren and Loehlin had pure N. vitripennis wasps, with one exception: The young wasps now had DNA for large wings. They then used the same method to "break" the isolated genetic material into parts, in order to investigate how DNA flanking the gene affected its regulation and growth of the wings.

"The NIH had already supported sequencing of the genomes of the wasps, so we had the necessary tools to do the work," said Werren. Specifically, Werren and Loehlin found that the change in wing size wasn't due to the gene, but to the regulation of the gene.

"The DNA sequence next to the gene controls where in the wing the gene is turned on or off," said Loehlin, the first author of the research project. "This is one of the first cases where scientists have found genetic material responsible for naturally-occurring growth differences in animals."

Normal growth regulation is also required for an animal to develop, and inappropriate regulation of growth causes disease, including cancer. "This work is another clear example that regulating the activity of genes contributes to the incredible diversity of life on Earth," said Susan Haynes, Ph.D., who oversees developmental biology grants at the National Institutes of Health's National Institute of General Medical Sciences, which partially funded the work. "In this case, modulating the activity of a gene for cell growth reshapes and resizes a wasp's wing. Because insects and humans use similar genetic networks to create organs, this research could help us better understand our own development and the underlying causes of certain diseases."

Nasonia are emerging as a model insect for research because the male wasps are haploid, which means they have only one set of chromosomes, while the females are diploid, having two sets of chromosomes. Since a single gene in a male wasp controls a given trait -- without consideration for whether that gene is dominant or recessive -- the result is that physical changes to the male wasps showed up more quickly from one generation to the next.

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Micron increases stake in Inotera

SAN FRANCISCO—Micron Technology Inc. has increased its stake in Inotera Memories Inc., its Taiwanese joint venture with Nanya Technology Corp., according to a regulatory filing made by Inotera this week.

In a filing with Taiwan's stock exchange, Inotera disclosed that Micron, through its Numonyx Holding BV subsidiary, would buy more than 763 million shares of Inotera at a discounted price of NT$6.55, about 10 percent lower than Inotera's stock value at the time.

According to a report by the Taipei Times, Micron will pay about $169 million total for the shares. The Taipei Times also reported that the deal would boost Micron's ownership stake in Inotera to 40 percent from 30 percent, surpassing Nanya, which will now hold 26 percent of the joint venture.

In the filing, Inotera said the issuance of shares through private placement with Micron would increase Inotera's net worth and improve its financial structure.

"There is no change in the board seat arrangement after the shareholding change, but Micron will take more 30-nm capacity, which is expected to improve Inotera's profitability," the filing stated.

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TAG:Micron Inotera Memory Stake Nanya

Theory of the 'rotting' Y chromosome dealt a fatal blow

Such is the case for a team of Whitehead Institute scientists, whose latest research on the evolution of the human Y chromosome confirms that the Y -- despite arguments to the contrary -- has a long, healthy future ahead of it.

Proponents of the so-called rotting Y theory have been predicting the eventual extinction of the Y chromosome since it was first discovered that the Y has lost hundreds of genes over the past 300 million years. The rotting Y theorists have assumed this trend is ongoing, concluding that inevitably, the Y will one day be utterly devoid of its genetic content.

Over the past decade, Whitehead Institute Director David Page and his lab have steadily been churning out research that should have permanently debunked the rotting Y theory, but to no avail.

"For the past 10 years, the one dominant storyline in public discourse about the Y is that it is disappearing," says Page. "Putting aside the question of whether this ever had a sound scientific basis, the story went viral -- fast -- and has stayed viral. I can't give a talk without being asked about the disappearing Y. This idea has been so pervasive that it has kept us from moving on to address the really important questions about the Y."

To Page, this latest research represents checkmate in the chess match he's been drawn into against the "rotting Y" theorists. Members of his lab have dealt their fatal blow by sequencing the Y chromosome of the rhesus macaque -- an Old World monkey whose evolutionary path diverged from that of humans some 25 million years ago -- and comparing it with the sequences of the human and chimpanzee Y chromosomes.

The comparison, published this week in the online edition of the journal Nature, reveals remarkable genetic stability on the rhesus and human Ys in the years since their evolutionary split.

Grasping the full impact of this finding requires a bit of historical context. Before they became specialized sex chromosomes, the X and Y were once an ordinary, identical pair of autosomes like the other 22 pairs of chromosomes humans carry. To maintain genetic diversity and eliminate potentially harmful mutations, autosome pairs swap genes with each other in a process referred to as "crossing over." Roughly 300 million years ago, a segment of the X stopped crossing over with the Y, causing rapid genetic decay on the Y. Over the next hundreds of millions of years, four more segments, or strata, of the X ceased crossing over with the Y. The resulting gene loss on the Y was so extensive that today, the human Y retains only 19 of the more than 600 genes it once shared with its ancestral autosomal partner.

"The Y was in free fall early on, and genes were lost at an incredibly rapid rate," says Page. "But then it leveled off, and it's been doing just fine since."

How fine? Well, the sequence of the rhesus Y, which was completed with the help of collaborators at the sequencing centers at Washington University School of Medicine and Baylor College of Medicine, shows the chromosome hasn't lost a single ancestral gene in the past 25 million years. By comparison, the human Y has lost just one ancestral gene in that period, and that loss occurred in a segment that comprises just 3% of the entire chromosome. The finding allows researchers to describe the Y's evolution as one marked by periods of swift decay followed by strict conservation.

"We've been carefully developing this clearcut way of demystifying the evolution of the Y chromosome," says Page lab researcher Jennifer Hughes, whose earlier work comparing the human and chimpanzee Ys revealed a stable human Y for at least six million years. "Now our empirical data fly in the face of the other theories out there. With no loss of genes on the rhesus Y and one gene lost on the human Y, it's clear the Y isn't going anywhere."

"This paper simply destroys the idea of the disappearing Y chromosome," adds Page. "I challenge anyone to argue when confronted with this data."

This work was supported by the National Institutes of Health, the Howard Hughes Medical Institute, and the Charles A. King Trust.

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Genusion licenses B4-Flash to Rohm, Lapis



LONDON – Genusion Ltd., a fabless Japanese memory IP company, has announced that is has licensed its B4-flash non-volatile memory technology to Rohm Group and Rohm subsidiary Lapis Semiconductor Co. Ltd.

Genusion (Amagasaki, Japan), founded in 2002, has been working on the high-endurance, high-reliability memory for several years.

The B4-Flash technology is described as being both high-speed and high-reliability. Write and erase operations are 5 to 10 times faster tnan NOR flash memory and the memory retains data for 20 years at 125 degrees C after 10,000 erase/write cycles. The company presented a paper on a 90-nm, 512-Mbit NOR-style B4-Flash wirh 8F2 cell size at the 2011 Symposium on VLSI circuits.

The agreement with Rohm is expected to serve as a framework for both companies to develop and manufacture the B4-Flash memory. In addition Lapis will be able to develop and manufacture the B4-Flash memory as one of their commodity memory products.

Prior to the licensing agreement Rohm had been making the B4-Flash memory as a foundry, and started mass production in October 2011.

Rohm intends to use B4-Flash for applications in car navigation and smartphones using it for embedded non-volatile memory in analog products such as power IC and driver IC, and logic products such as SoC in addition to continuing foundry business.

Genusion said that it would work with Rohm and Lapis on further technical development and manufacturing of the B4-Flash memory and related products.


Related links and articles:

www.genusion.co.jp

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Genusion details advances to its B4-Flash device

Japan startup tips flash technology


Genusion licenses B4-Flash to Rohm, Lapis

TAG:Genusion Rohm Lapis semiconductor Flash NOR memory

2012-02-23

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MEMS acutuators fight robot tug-of-war


LONDON – YouTube has a video that shows the results of a number of "tug-of-war" matches between MEMS electrothermal actuators belonging to Hong Kong University of Science and Technology and Kyoto University.An electrothermal actuator is also known as a heatuator.

The basic rules were that to win a MEMS heatuator should pull its rival by 8-microns and hold for at least one minute with a maximum powers supply voltage of 100-V.



As you can see the battle was from 2011 but I'd like to know who won, apart from G4, that is. HKUST or Kyoto?

For more MEMS matter go to EE Times' MEMS Buzz.

EE Times is working on a MEMS Sector Profile and Database report. If you would be interested in being advised when copies are available, please send an email to peter.clarke@ubm.com


MEMS acutuators fight robot tug-of-war

TAG:HKUST Kyoto MEMS fight robot semiconductor

2012-02-22

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Samsung positions its fab to take on TSMC

SAN FRANCISCO--Samsung touted its new 32-nm high-k metal gate (HKMG) process at the International Solid-State Circuits Conference here Tuesday (Feb. 21), showing features it hopes might win customers over from a supply constrained TSMC.

While ostensibly presenting its upcoming 32-nm quad-core mobile processor, Samsung spent much of the time presenting its new process, which as well as boasting HKMG, also uses dynamic thermal management and body bias techniques, for a significant 40 percent performance increase over its 45-nm Exynos chip.

Intel and Globalfoundries have been shipping chips with HKMG for a while now, but with Samsung and TSMC joining the fray, the fab playing field is somewhat equalized.

With the industry bracing itself for a tight supply of 28-nm from TSMC, Samsung’s 32-nm process and excess capacity manufacturing facilities could prove an attractive alternative to the likes of Nvidia, or even AMD.

Analysts believe TSMC would give priority to customers like Apple or Qualcomm for the 28-nm process, which would make it difficult for smaller players to get the supply they needed. Samsung is not supply constrained, and the difference between a 28-nm process and a 32-nm process using HKMG is fairly marginal in terms of the end result.

On the other hand, some in the industry still have qualms over using Samsung as a foundry, largely because the firm competes with almost every one of its potential customers.

Samsung's chip-building capabilities were being put under the microscope on Tuesday, with the firm also talking up its dynamic thermal management system for mobile SoCs, as well as power gate technology for every CPU and even inside the GPU, allowing power to be switched off, cutting leakage at the source.

Body Biasing, too, would give Samsung a differentiating factor from the likes of Intel, which doesn’t use the technology. Body Biasing can be used to either speed up a transistor when full throttle is needed, increasing leakiness slightly, or it can slow the transistor down, stemming leakage for a more optimal low power state.

Whether customers will be enticed, however, remains to be seen.
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TAG:samsung chips tsmc fab

Injectable gel could repair tissue damaged by heart attack

The study by Karen Christman and colleagues appears in the Feb. 21 issue of the Journal of the American College of Cardiology. Christman is a professor in the Department of Bioengineering at the UC San Diego Jacobs School of Engineering and has co-founded a company, Ventrix, Inc., to bring the gel to clinical trials within the next year.

Therapies like the hydrogel would be a welcome development, Christman explained, since there are an estimated 785,000 new heart attack cases in the United States each year, with no established treatment for repairing the resulting damage to cardiac tissue.

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"It helps to promote a positive remodeling-type response, not a pro-inflammatory one in the damaged heart," Christman said.

What's more, the researchers' experiments show that the gel also can be injected through a catheter, a method that is minimally invasive and does not require surgery or general anesthesia.

New, unpublished work by her research team suggests that the gel can improve heart function in pigs with cardiac damage, which brings this potential therapy one step closer to humans, said Christman.

There are few injectable cardiac therapies in development designed to be used in large animals such as pigs, which have a heart that is similar in size and anatomy to the human heart, Christman explained. "Most of the materials that people have looked at have been tested in rats or mice, and they are injectable via a needle and syringe. However, almost all of them are not compatible with catheter delivery and would gel too quickly, clogging the catheter during the procedure.

In experiments with rats, the gel was not rejected by the body and did not trigger arrhythmic heart beating, providing some assurance that the gel will be similarly safe for humans, the researchers note.

Christman has an equity interest in Ventrix, Inc., a company that may potentially benefit from the research results, and also serves on the company's Scientific Advisory Board. The terms of this arrangement have been reviewed and approved by the University of California, San Diego in accordance with its conflict of interest policies.

The study's co-authors include Jennifer Singelyn, Priya Sundaramurthy, Todd Johnson, Pamela Schup-Magoffin, Diane Hu, Denver Faulk, Jean Wang, and Kristine M. Mayle in the Department of Bioengineering; Kendra Bartels, Anthony N. DeMaria, and Nabil Dib of the UC San Diego School of Medicine; and Michael Salvatore and Adam M. Kinsey of Ventrix, Inc. The research was funded in part by the National Institutes of Health Director's New Innovator Award Program (part of the NIH Roadmap for Medical Research), the Wallace H. Coulter Foundation, and the National Science Foundation.

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Caught in the act: Scientists discover microbes speciating

The idea of sympatric speciation (one lineage diverging into two or more species with no physical or mechanical barriers keeping them apart) is controversial and tricky to prove, especially in microbes, said University of Illinois microbiology professor Rachel Whitaker, who led the study.

"One of the big questions, from Darwin on, is how do species diverge if they are living together?" she said. "That question really hasn't been answered very well, even in the macro-organisms that we've studied for hundreds of years."

Bacteria and their distantly related microbial cousins the archaea (are-KEY-uh) are even more difficult to study because they have so many ways to share genetic information, Whitaker said. The microbes divide to conquer, producing exact or near-exact clones of themselves. If this were their only way of getting established, their genetic diversity would be quite low, the result of a few random copy errors and mutations, Whitaker said. But they also can link up with each other to pass genes back and forth, suck up random genetic elements from the environment and acquire new genes from the viruses that infect them and their neighbors.

Before scientists were able to dissect the genetic endowment of individual microbes, they had a hard time telling the bugs apart -- so much so that they once confused bacteria and archaea. Researchers now know that the archaea belong to third domain of life -- as different from bacteria as plants and animals are.

"Every time we look, everywhere we look we see variation in microbial populations using these molecular tools," Whitaker said. "You have to use these molecules, these DNA sequences, to tell the difference between species." But even with new sequencing technologies, the task of studying microbial evolution is daunting.

Whitaker and her colleagues focused on Sulfolobus islandicus, a heat-loving organism from the archaeal domain of life, because it is one of few microorganisms that live in distinct "island" populations created by geothermal hot springs. (Watch a movie of a hot spring in Yellowstone Park that is similar to the one the scientists sampled.)

"We're looking at an environment that's not very complex in microbial terms," Whitaker said. "There are not that many organisms that can handle it, and the ones that can don't successfully move around very often."

The researchers sequenced the genomes of 12 strains of S. islandicus from a single hot spring in the Mutnovsky Volcano region of Kamchatka. By comparing sequences at multiple sites on the microbes' single (circular) chromosome using new software programs ClonalFrame and ClonalOrigin, the researchers were able to reconstruct the genetic history of each of the strains.

The analysis revealed two distinct groups of S. islandicus among the 12 strains. The microbes were swapping genes with members of their own group more than expected, but sharing genes with the other group less than expected, Whitaker said. And the exchange of genetic material between the two groups was decreasing over time.

This indicates that the two groups are already separate species, even though they share the same habitat, Whitaker said. The differences between the two groups were slight, but speciation was clearly under way, she said.

Peering more closely at the patterns of change, the researchers saw a mosaic of differences along the chromosome, with vast "continents" of variation and smaller "islands" of stability. Those islands likely represent regions that are under selective pressure, Whitaker said; something in their environment is weeding out the microbes that don't have those genes or sets of genes. The variable regions are more fluid, with genes coming and going (a process called recombination) and mutations increasing diversity.

The findings provide the first evidence that sympatric speciation occurs in a microbe, Whitaker said.

"We caught them speciating," she said. "They do exchange some genes -- just not very many. So now we know you don't have to have a (geographic or mechanical) barrier to recombination for speciation to occur. All you have to have is selection pulling the two groups apart, which nobody knew before."

This study provides a glimpse of the profound genetic diversity that likely occurs everywhere in wild microbial populations, Whitaker said.

"What we see as two different species are 0.35 percent different across the chromosome; that's about one-third of the distance between human and chimp," she said. The two distinct groups of microbes are "orders of magnitude" more similar to each other than groups normally considered separate species, she said.

"That means there are orders of magnitude more species of microbes than we ever thought there were," she said. "And that's kind of mind-boggling."

The study appears in the journal PLoS Biology. The research team included scientists from Arizona State University, the University of California at Davis, and the University of Oxford.

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TAG:Microbes and More Evolutionary Biology New Species Exotic Species Ecology Biodiversity

Superbugs from space offer new source of power

Bacillus stratosphericus -- a microbe commonly found in high concentrations in the stratosphere orbiting Earth with the satellites -- is a key component of a new 'super' biofilm that has been engineered by a team of scientists from Newcastle University.

Isolating 75 different species of bacteria from the Wear Estuary, Country Durham, UK, the team tested the power-generation of each one using a Microbial Fuel Cell (MFC).

By selecting the best species of bacteria, a kind of microbial "pick and mix," they were able to create an artificial biofilm, doubling the electrical output of the MFC from 105 Watts per cubic metre to 200 Watts per cubic metre.

While still relatively low, this would be enough power to run an electric light and could provide a much needed power source in parts of the world without electricity.

Among the 'super' bugs was B. Stratosphericus, a microbe normally found in the atmosphere but brought down to earth as a result of atmospheric cycling processes and isolated by the team from the bed of the River Wear.

Publishing their findings February 21 in the American Chemical Society's Journal of Environmental Science and Technology,

Grant Burgess, Professor of Marine Biotechnology at Newcastle University, said the research demonstrated the "potential power of the technique."

"What we have done is deliberately manipulate the microbial mix to engineer a biofilm that is more efficient at generating electricity," he explains.

"This is the first time individual microbes have been studied and selected in this way. Finding B.Stratosphericus was quite a surprise but what it demonstrates is the potential of this technique for the future -- there are billions of microbes out there with the potential to generate power."

The use of microbes to generate electricity is not a new concept and has been used in the treatment of waste water and sewage plants.

Microbial Fuel Cells, which work in a similar way to a battery, use bacteria to convert organic compounds directly into electricity by a process known as bio-catalytic oxidation.

A biofilm -- or 'slime' -- coats the carbon electrodes of the MFC and as the bacteria feed, they produce electrons which pass into the electrodes and generate electricity.

Until now, the biofilm has been allowed to grow un-checked but this new study shows for the first time that by manipulating the biofilm you can significantly increase the electrical output of the fuel cell.

Funded by the Engineering and Physical Sciences Research Council (EPSRC), the Biotechnology and Biological Sciences Research Council (BBSRC) and the Natural Environment Research Council (NERC), the study identified a number of electricity-generating bacteria.

As well as B. Stratosphericus, other electricity-generating bugs in the mix were Bacillus altitudinis - another bug from the upper atmosphere -- and a new member of the phylum Bacteroidetes.

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Wireless will redefine the home audio market as we know it

Over the next five years, wireless connectivity to mobile devices and the Internet will redefine the mainstream products within the home audio market. Despite differences in capabilities, form factors, and usage scenarios, a variety of home audio products will all increasingly incorporate wireless functionality in order to play audio streamed from mobile devices, home networks, and the Internet.

In recent years the home audio industry has been challenged to adapt to changing trends in consumers' media consumption habits and the proliferation of Internet-based streaming audio services. As a result, consumer home audio is rapidly evolving by integrating wireless connectivity into devices such as A/V receivers, soundbars, standalone speaker docks, and home theater in a box (HTIB) systems.

The soundbar and speaker dock categories have seen growth thanks to consumers trending towards mobile devices, streaming services, and less-expensive intermediate audio solutions, driven by current economic conditions. This is in large part to address the lackluster audio of thin-bezel HDTVs. Though these same trends have challenged the market for traditional A/V receivers and HTIBs, the inclusion of wireless connectivity is expected to aid both product categories going forward.

According to the IMS Research report, "A/V Receivers and Advanced Home Audio – 2012 Edition," in 2016 over 60 million audio devices will ship with WiFi and/or Bluetooth connectivity, including AV receivers, speaker docks, HTIB systems, and soundbars. Indicative of trends taking place in the consumer marketplace, the majority of this volume will be driven by speaker docks and soundbars.

According to IMS Research, as wireless home networking increases along with consumer expectations of wireless connectivity in consumer electronics, the use of wireless streaming in audio playback is expected to naturally rise on a complementary basis. Though connectivity to mobile devices is expected to be a major driver, the growing popularity of services such as Spotify, Deezer, Pandora, iCloud, and Google Music drives the need for direct Internet connectivity in some of these home audio products as well.

In the opinion of Paul Erickson, senior analyst at IMS Research, "With the move towards smartphone- and tablet-centric media consumption, and the proliferation of Internet-based music services, the home audio market is gradually adapting to meet the needs of consumers. We're clearly headed for a future where various forms of wireless streaming will be cornerstones of the audio experience in the home."

http://imsresearch.com.

This article originally appeared on EE Times Europe.


Wireless will redefine the home audio market as we know it

TAG:Wireless audio streaming audio home audio audio networking home networking Pandora iCloud Google Music

Is fructose being blamed unfairly for obesity epidemic?

Researchers from St. Michael's Hospital reviewed more than 40 published studies on whether the fructose molecule itself causes weight gain.

In 31 "isocaloric" trials they reviewed, participants ate a similar number of calories, but one group ate pure fructose and the other ate non-fructose carbohydrates. The fructose group did not gain weight.

In 10 "hypercaloric" trials, one group consumed their usual diet and the other added excess calories in the form of pure fructose to their usual diet or a control diet. Those who consumed the extra calories as fructose did gain weight.

However, all that could mean is that one calorie is simply the same as another, and when we consume too many calories we gain weight, said the lead author, Dr. John Sievenpiper.

His research was recently published in the Annals of Internal Medicine.

"Fructose may not be to blame for obesity," he said. "It may just be calories from any food source. Overconsumption is the issue."

Fructose is naturally found in fruits, vegetables and honey. Participants in the studies examined by Dr. Sievenpiper ate fructose in the form of free crystalline fructose, which was either baked into food or sprinkled on cereals or beverages.

The studies did not look at high-fructose corn syrup, which has been singled out as the main culprit for weight gain. It is only 55 per cent fructose, along with water and glucose.

Dr. Sievenpiper said the majority of studies they examined were small, of short-duration and of poor quality, so there is a need for larger, longer and better quality studies.

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Step forward in effort to regenerate damaged nerves

It's scenes like this that neurosurgeon Jason Huang, M.D., confronts every day. Severe damage to nerves is one of the most challenging wounds to treat for Huang and colleagues. It's a type of wound suffered by people who are the victims of gunshots or stabbings, by those who have been involved in car accidents -- or by soldiers injured on the battlefield, like those whom Huang treated in Iraq.

Now, back in his university laboratory, Huang and his team have taken a step forward toward the goal of repairing nerves in such patients more effectively. In a paper published in the journal PLoS ONE, Huang and colleagues at the University of Rochester Medical Center report that a surprising set of cells may hold potential for nerve transplants.

In a study in rats, Huang's group found that dorsal root ganglion neurons, or DRG cells, help create thick, healthy nerves, without provoking unwanted attention from the immune system.

The finding is one step toward better treatment for the more than 350,000 patients each year in the United States who have serious injuries to their peripheral nerves. Huang's laboratory is one of a handful developing new technologies to treat such wounds.

"These are very serious injuries, and patients really suffer, many for a very long time," said Huang, associate professor of Neurosurgery and chief of Neurosurgery at Highland Hospital, an affiliate of the University of Rochester Medical Center. "There are a variety of options, but none of them is ideal.

"Our long-term goal is to grow living nerves in the laboratory, then transplant them into patients and cut down the amount of time it takes for those nerves to work," added Huang, whose project was funded by the National Institute of Neurological Disorders and Stroke and by the University of Rochester Medical Center.

For a damaged nerve to repair itself, the two disconnected but healthy portions of the nerve must somehow find each other through a maze of tissue and connect together. This happens naturally for a very small wound -- much like our skin grows back over a small cut -- but for some nerve injuries, the gap is simply too large, and the nerve won't grow back without intervention.

For surgeons like Huang, the preferred option is to transplant nerve tissue from elsewhere in the patient's own body -- for instance, a section of a nerve in the leg -- into the wounded area. The transplanted nerve serves as scaffolding, a guide of sorts for a new nerve to grow and bridge the gap. Since the tissue comes from the patient, the body accepts the new nerve and doesn't attack it.

But for many patients, this treatment isn't an option. They might have severe wounds to other parts of the body, so that extra nerve tissue isn't available. Alternatives can include a nerve transplant from a cadaver or an animal, but those bring other challenges, such as the lifelong need for powerful immunosuppressant drugs, and are rarely used.

One technology used by Huang and other neurosurgeons is the NeuraGen Nerve Guide, a hollow, absorbable collagen tube through which nerve fibers can grow and find each other. The technology is often used to repair nerve damage over short distances less than half an inch long.

In the PLoS One study, Huang's team compared several methods to try to bridge a nerve gap of about half an inch in rats. The team transplanted nerve cells from a different type of rat into the wound site and compared results when the NeuraGen technology was was used alone or when it was paired with DRG cells or with other cells known as Schwann cells.

After four months, the team found that the tubes equipped with either DRG or Schwann cells helped bring about healthier nerves. In addition, the DRG cells provoked less unwanted attention from the immune system than the Schwann cells, which attracted twice as many macrophages and more of the immune compound interferon gamma.

While both Schwann and DRG cells are known players in nerve regeneration, Schwann cells have been considered more often as potential partners in the nerve transplantation process, even though they pose considerable challenges because of the immune system's response to them.

"The conventional wisdom has been that Schwann cells play a critical role in the regenerative process," said Huang, who is a scientist in the Center for Neural Development and Disease. "While we know this is true, we have shown that DRG cells can play an important role also. We think DRG cells could be a rich resource for nerve regeneration."

In a related line of research, Huang along with colleagues in the laboratory of Douglas H. Smith, M.D. , at the University of Pennsylvania are creating DRG cells in the laboratory by stretching them, which coaxes them to grow about one inch every three weeks. The idea is to grow nerves several inches long in the laboratory, then transplant them into the patient, instead of waiting months after surgery for the nerve endings to travel that distance within the patient to ultimately hook up.

The first author of the PLoS One paper is research associate Weimin Liu, Ph.D. Other authors, in addition to Huang and Smith, are graduate students Yi Ren and Xiaowei Wang; post-doctoral associate Samantha Dayawansa, Ph.D.; undergraduate Adam Bossert; neurologist Handy Gelbard, M.D., Ph.D.; Jing Tong, M.D., formerly of the Huang laboratory and now a neurosurgeon at Hebei Medical University in China, and Xiaoshen He, M.D., a neurosurgeon at Fourth Military Medical University in China.

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Samsung gives peak at quad-core mobile CPU

SAN FRANCISCO – Samsung gave an early peak at its first quad-core mobile application processor at the International Solid-State Circuits Conference here. The unannounced chip is Samsung’s first to use a 32 nm high-k metal gate process and sports advances in performance and battery life over its existing 45 nm Exynos chips.

The new chip comes in versions using two or four ARM Cortex A9 cores running at rates from 200 MHz to 1.5 GHz along with a 64-bit ARM Neon media processing block. The cores share a 1 Mbyte L2 cache with a snoop control unit.

Samsung designed its own graphics unit for the chip. It includes four pixel processors and one geometry engine with a dedicated 128 KByte L2 cache. The graphics support the OpenGL ES 2.0 API and can generate up to 57 Mpolygons/s.

The chip supports two LPDDR2 or DDR3 interfaces running up to 400 MHz for a total memory bandwidth of up to 6.4 Gbytes/s.

Thanks both to the 32 nm process and a handful of power and thermal management techniques, the chip can deliver up to 26 percent more performance overall than Samsung’s current Exynos chip made in a 45 nm polysilicon process. It also can deliver improvements in battery life ranging from 34 to 50 percent, depending on the application.

Samsung said the new chip delivers up to 26.3 percent improvements in video frame rates. In a demo, Samsung showed the chip using 48 percent less power on 3-D calculations and 45 percent less power in CPU jobs than the 45 nm chip.

The 32 nm HKMG process keep transistor and gate leakage nearly to the levels of the company’s 45 nm polysilicon process, much lower than expected for 32 nm polysilicon technology. Samsung tuned the process to a sweet spot somewhere between its potential for delivering 40 percent more performance or a tenth the leakage, said Se-Hyung Yang, a principal engineer for SoC development at Samsung Electronics who presented the paper.

The chip has four independent power domains and several power sub-domains. Each ARM core and up to a half of the cache memory can be turned off or on independently. A set of media accelerator blocks are similarly power gated independently.

The chip dynamically uses either forward or reverse body-biasing on n-wells to improve performance or reduce leakage as needed. It also uses thermal monitors and a thermal management unit to trigger power management actions including shutting down blocks as needed to protect devices from over-heating and keep a handset below a fixed surface temperature set by handset makers.

“Recently power consumption for mobile devices have increased a lot and mobile devices have limited cooling capability,” said Yang, underlining a growing problem in smartphone design.

Samsung will formally announce the product soon, said Yang, presumably at next week’s Mobile World Congress. Nvidia grabbed the lead in rolling out a quad-core mobile chip last year.
Samsung gives peak at quad-core mobile CPU

TAG:Mobile Applications Processors Mobile Processors Samsung Exynos Mobile Processors Nvidia ISSCC

Fastest wind from stellar-mass black hole

The record-breaking wind is moving about 20 million mph, or about 3 percent of the speed of light. This is nearly 10 times faster than had ever been seen from a stellar-mass black hole.

Stellar-mass black holes are born when extremely massive stars collapse. They typically weigh between five and 10 times the mass of the Sun. The stellar-mass black hole powering this super wind is known as IGR J17091-3624, or IGR J17091 for short.

"This is like the cosmic equivalent of winds from a category five hurricane," said Ashley King from the University of Michigan, lead author of the study published in the Feb. 20 issue of The Astrophysical Journal Letters. "We weren't expecting to see such powerful winds from a black hole like this."

The wind speed in IGR J17091 matches some of the fastest winds generated by supermassive black holes, objects millions or billions of times more massive.

"It's a surprise this small black hole is able to muster the wind speeds we typically only see in the giant black holes," said co-author Jon M. Miller, also from the University of Michigan. "In other words, this black hole is performing well above its weight class."

Another unanticipated finding is that the wind, which comes from a disk of gas surrounding the black hole, may be carrying away more material than the black hole is capturing.

"Contrary to the popular perception of black holes pulling in all of the material that gets close, we estimate up to 95 percent of the matter in the disk around IGR J17091 is expelled by the wind," King said.

Unlike winds from hurricanes on Earth, the wind from IGR J17091 is blowing in many different directions. This pattern also distinguishes it from a jet, where material flows in highly focused beams perpendicular to the disk, often at nearly the speed of light.

Simultaneous observations made with the National Radio Astronomy Observatory's Expanded Very Large Array showed a radio jet from the black hole was not present when the ultra-fast wind was seen, although a radio jet is seen at other times. This agrees with observations of other stellar-mass black holes, providing further evidence the production of winds can stifle jets.

The high speed for the wind was estimated from a spectrum made by Chandra in 2011. Ions emit and absorb distinct features in spectra, which allow scientists to monitor them and their behavior. A Chandra spectrum of iron ions made two months earlier showed no evidence of the high-speed wind, meaning the wind likely turns on and off over time.

Astronomers believe that magnetic fields in the disks of black holes are responsible for producing both winds and jets. The geometry of the magnetic fields and rate at which material falls towards the black hole must influence whether jets or winds are produced.

IGR J17091 is a binary system in which a Sun-like star orbits the black hole. It is found in the bulge of the Milky Way galaxy, about 28,000 light-years away from Earth.

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2012-02-21

January chip sales fell 15% year-on-year, says analyst


LONDON – A number of factors are likely to have contributed to soft January chip sales according to Bruce Diesen, an analyst at Carnegie Group (Oslo, Norway).

The net effect would have been that January's actual global chip sales were 15 percent below what they were in January 2011. However, as one of the influences is the movement of the Chinese New Year from February in 2011 to January 2012 there is hope of a better-than-usual February to follow.

However, other factors remain problematic. These factors include: PC weakness and higher costs due to the continued aftermath of flooding in Thailand and observed weakness in the mobile phone handset and automotive business sectors.

The three-month average of global chip sales for January, as reported by the World Semiconductor Trade Statistics (WSTS) organization, is likely to be $22.7 billion, according to Diesen's data models. This would compare with a three-month average of $23.83 billion reported by WSTS for December 2011. Actual sales in January are set to be between 15 and 16 percent below where they were in January 2011, Diesen said.

"Although several chip makers indicated the inventory correction in Q4 has ended, our early indicator indicates that it continued into Q1," Diesen said.

Diesen said that both South Korea's broader technology exports and Japan's chip exports were down sharply in January. Korean handset exports were down 39 percent year-on-year partly due to the holiday shift from February in 2011 to January in 2012.

Diesen's forecast for growth in the semiconductor market in U.S. dollar terms in 2012 is a 2 percent increase.


Related links and articles:

Analyst's model predicts 3 percent chip market growth in 2012

Global chip sales squeeze 0.4 percent annual growth in 2011

Analyst sees chip sales rebound in December

Bullish Penn sees chip market growth of 8 percent in 2012

January chip sales fell 15% year-on-year, says analyst

TAG:Bruce Diesen Carnegie WSTS semiconductor

Terahertz CMOS debuts at ISSCC

PORTLAND, Ore.—Downsizing big bulky terahertz (THz) detectors for integration on CMOS image chips has been accomplished by the University of Texas (Dallas) with funding from the Semiconductor Research Corp. (SRC). Accomplished under SRC’s Focus Research Program, the demonstration of terahertz speeds on standard CMOS opens a door for a new slew of consumer devices that can see through solid objects.

"We can now build a CMOS image chip for a cell-phone-sized camera module that sees in the terahertz range," said Ken O, a professor and lead researcher for SRC’s program at UT Dallas and a key investigator in the Center for Circuit and System Solutions, a part of SRC’s Focus Center Research Program.

Today terahertz cameras are used, for instance, in the airport to see inside luggage and under clothing to detect hidden weapons, but the devices require expensive discrete components. By downsizing terahertz sensors for standard CMOS chips, the terahertz camera can be both size and cost reduced in the extreme.

"Inexpensive handheld terahertz cameras could be used to detect counterfeit money or documents, to see inside envelopes or packages, or to find where the studs, wires and pipes are in walls," said O.


A one-pixel CMOS terahertz image chip (left) can see through solid objects, here showing the inner workings of an old-school floppy disk.

Terahertz CMOS debuts at ISSCC

TAG:CMOS Complementary metal oxide semiconductor semiconductor sensor imager terahertz THz

Thermal Diffusivity Sensors: Temperature Sensors that Scale

SAN FRANCISCO—Thermal diffusivity based sensors are the future, according to professor Kofi Makinwa of Delft University of Technology, speaking at the International Solid States Circuits Conference here Monday (Feb. 20).

Makinwa said he has been working on the technology for six years and that their importance was increasing owing to the fact thermal sensors are to be found in practically any computer system.

“Systems would self-destruct if you let them have their own way,” he noted, explaining the need for a more practical heatsink.

With systems becoming increasingly multi-core, hot spots throughout the processor are increasing, said Makinwa. The problem is becoming progressively complex because the hot spots move dynamically based on various processes, he said.

“SoC monitoring needs a fast conversion rate since thermal transients can have milisecond time constraints,” said Makinwa, adding that they also needed to be very small and consume as little power as possible, though they didn’t necessarily need to be highly accurate.

Since most properties of silicon are temperature dependent, Makinwa said band gap temperature sensors were simply not good enough and that a different approach was needed.

“Heat diffusion is a mechanical process,” said Makinwa, noting that this needed to be more about phonons than electrons.

The system works by measuring the thermal delay between an on-chip heater and an on-chip relative temperature sensor. That delay can then be digitized or used to define the output frequency of an oscillator.

“Thermal diffusivity of silicon is strongly temperature dependent,” said Makinwa, noting that thermal diffusivity based sensors were fully CMOS compatible, were insensitive to doping variations, packaging stress and could operate at higher temperatures, even up to 250 degrees centigrade. They also have performance accuracy and speed that scales with process, said Makinwa.

Makinwa said proof-of-concept thermal diffusivity sensors have already been fabricated in 0.7μm and 0.18μm bulk CMOS, as well as in 0.5μm SOI technology and were found to work over a wide temperature range from -70°C to 170°C.

An implementation in 0.18μm bulk CMOS achieved an untrimmed inaccuracy of ±0.2°C (3σ) from -55°C to 125°C, said Makinwa, concluding that therefore, TD sensors were the best solution for thermal management in nanometer CMOS.
Thermal Diffusivity Sensors: Temperature Sensors that Scale

TAG:thermal silicon temperature sensors

Welding nanowires with light

RESEARCH at Stanford School of Engineering have found a way to weld together meshes of nanowires with light.

A lot of work is currently being done on nanoelectronics, and one of these is the creation of electrically conductive meshes made of metal nanowires. These meshes could one day be used in touchscreens, displays, LEDs and thin-film solar cells.

However, to create such a mesh, nanowires must be melded together in a crisscross pattern. Pressing them together or heating them damages the nanowires.

The Stanford engineers utilised plasmonics to fuse the wires using light. Plasmonics is the physics behind the interaction of light and metal in which the light flows across the surface of the metal in waves.

If two nanowires are placed to criss-cross each other, light generates Plasmon waves at the intersection, creating a hot spot. This fuses the nanowires, after which the hot spot disappears, preventing damage from residual heat.

This light-based, self-limiting, highly precise heating increases the control, speed and energy efficiency of nanoscale welding, easing the creation of nanowire meshes.

According to the researchers, the new technique could also allow mesh electrodes to be bound to flexible or transparent plastics and polymers. For example, they sprayed a solution containing silver nanowires in suspension on a plastic wrap and dried it.

Upon inspection after illumination, the spray had left an ultrathin layer of welded nanowires. The wrap was balled up, and found to maintain its electrical properties upon unwrapping. It also maintained most of its transparency.

Prior to the plasmonics approach, the plastic wrap holding the nanowires would have had to be heated to weld them together, destroying the substrate.


Welding nanowires with light

TAG:nanotechnology research and development

Intel gives deeper look into Ivy Bridge

SAN FRANCISCO – Intel gave its first details public look into Ivy Bridge, the first processors to use its 22 nm tri-gate technology. Intel plans at least four major variants of the chip which packs 1.4 billion transistors into 160mm2 in its largest version.

Ivy Bridge packs 20 channels of PCI Express Gen 3 interconnect and a Displayport controller, Intel’s first chip to integrate PCIe. The move marks one small step into the long term quest of what an Intel executive called terascale-class clients.

The first Ivy Bridge chip targets a range of desktop, notebook, embedded and single-socket server systems with up to 8 Mbytes cache. Like previous Intel parts it integrates a memory controller and graphics, now upgraded to support DDR3L DRAMs and Microsoft DirectX 11.0 graphics APIs.

“We spent a lot of time on the modularity of this die to create different flavors of it very quickly,” said Scott Siers, an Intel engineer who presented a paper on the chip at the International Solid-State Circuits Conference here.

Specifically the largest die includes four x86 cores and a large graphics block. It can be chopped along its x- and/or y-axis using automated generation tools to create versions with two cores or a smaller graphics block.

Siers said Ivy Bridge is Intel’s first client chip to support low power 1.35V DDR3L and DDR power gating in standby mode. It handles up to 1,600 MTransfers/s as well as 1.5V DDR3. A new write assist cache circuit provides an average 100 millivolt power reduction.

The Displayport block supports three simultaneous displays including one 1.6 GHz and two 2.7 GHz links with four lanes each.

The PCIe receiver uses a continuous time linear equalizer with 32 gain control levels and a transmitter with a three-tap digital FIR filter. The PCIe block also supports on die testing for jitter as well as timing and voltage margin measurements.

The chip’s x86 and graphics cores can scale in data rates at 100 and 50 MHz increments respectively. Overall, the chip supports five power planes and 180 clock islands that can be separately gated.

In a separate ISSCC keynote, Dadi Perlmutter, chief product officer for Intel, scoped out a long term vision of terahertz-class clients. Terahertz systems consume as much as three kilowatts today but could be reduced to 20W by the end of the decade using a broad variety of techniques, he said.

The techniques include optimizing chips to work at near threshold voltage levels, a subject of several Intel papers at ISSCC. Lower power internal and external interconnects are also needed, he said.

3-D IC packaging will be needed to lower power memory, Permutter said. Toward that end Intel is working with Micron and others on its Hypercube stacked memory design, he said. The design could boost memory bandwidth ten-fold while cutting power to eight pico-joules per bit, down from 50-75 pj/bit in today’s DDR3, he added.

In addition, “voltage regulation has to go into the IC itself because inductance is too big off chip or even on package,” Perlmutter said. “When you have a lot of voltage regulators to turn on and off it becomes very complex to do on a package, so we are working on getting power regulators into the ICs,” he said.

Perlmutter said he sees another 30 years of engineering needed in computing. “For people who thought they could retire from this industry, I say there’s a lot more to do,” he said.

Dadi Perlmutter scoped out challenges to get to terahertz clients.
Intel gives deeper look into Ivy Bridge

TAG:Ivy Bridge Intel X86 Processors ISSCC Ultrabooks

2012-02-20

New brain connections form in clusters during learning

The researchers studied mice as they learned new behaviors, such as reaching through a slot to get a seed. They observed changes in the motor cortex, the brain layer that controls muscle movements, during the learning process. Specifically, they followed the growth of new "dendritic spines," structures that form the connections (synapses) between nerve cells.

"For the first time we are able to observe the spatial distribution of new synapses related to the encoding of memory," said Yi Zuo, assistant professor of molecular, cell and developmental biology at UC Santa Cruz and corresponding author of the paper.

In a previous study, Zuo and others documented the rapid growth of new dendritic spines on pyramidal neurons in the motor cortex during the learning process. These spines form synapses where the pyramidal neurons receive input from other brain regions involved in motor memories and muscle movements. In the new study, first author Min Fu, a postdoctoral researcher in Zuo's lab, analyzed the spatial distribution of the newly formed synapses.

Initial results of the spatial analysis showed that one third of the newly formed synapses were located next to another new synapse. These clustered synapses tended to form over the course of a few days during the learning period, when the mouse was repeatedly performing the new behavior. Compared to non-clustered counterparts, the clustered synapses were more likely to persist through the learning sessions and after training stopped.

In addition, the researchers found that after formation of the second spine in a cluster, the first spine grew larger. The size of the spine head correlates with the strength of the synapse. "We found that formation of a second connection is correlated with a strengthening of the first connection, which suggests that they are likely to be involved in the same circuitry," Zuo said. "The clustering of synapses may serve to magnify the strength of the connections."

Another part of the study also supported the idea that the clustered synapses are involved in neural circuits specific to the task being learned. The researchers studied mice trained first in one task and then in a different task. Instead of grabbing a seed, the mice had to learn how to handle a piece of capellini pasta. Both tasks induced the formation of clustered spines, but spines formed during the learning of different tasks did not cluster together.

The researchers also looked at mice that were challenged with new motor tasks every day, but did not repeat the same task over and over like the ones trained in seed-grabbing or capellini-handling. These mice also grew lots of new dendritic spines, but few of the new spines were clustered.

"Repetitive activation of the same cortical circuit is really important in learning a new task," Zuo said. "But what is the optimal frequency of repetition? Ultimately, by studying the relationship between synapse formation and learning, we want to find out the best way to induce new memories."

The study used mice that had been genetically altered to make a fluorescent protein within certain neurons in the motor cortex. The researchers used a special microscopy technique (two-photon microscopy) to obtain images of those neurons near the surface of the brain. The noninvasive imaging technique enabled them to view changes in individual brain cells of the mice before, during, and after learning a new behavior.

In addition to Zuo and first author Min Fu, the coauthors of the paper include UCSC graduate student Xinzhu Yu and Stanford University biologist Ju Lu. This research was supported by grants from the Dana Foundation and the National Institute of Mental Health.

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New brain connections form in clusters during learning

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Surprising molecular switch: Lipids help control the development of cell polarity

Over the last few years, Rong Li, Ph.D., and her team at the Stowers Institute for Medical Research have figured out many important details of the basic biochemical mechanism that establishes cell polarity in yeast. Now, using cutting-edge microscopy and advanced mathematics, the team has discovered a surprising new twist. In the March issue of Nature Cell Biology, predoctoral researcher Arupratan Das, Li, and five colleagues report that, in yeast, an enzyme literally flips a switch by moving molecules called phospholipids from the outer to the inner layer of the cell membrane.

What's more, all the molecules involved in this intricate mechanism are found not just in yeast, but in mammalian cells as well. That opens up new avenues for exploring how cell polarity is created in, say, liver cells, and whether or not glitches in the mechanism can contribute to disease. "Cell polarity is critical for the specialized function of the vast majority of cells," explains Li, who is also a professor in the Department of Molecular and Integrative Physiology at the University of Kansas Medical Center. "Our finding could lead to a lot of clues mechanistically. We're hoping that others will pick up on our discovery and apply it to the cells they study."

Several decades ago, scientists thought that cell polarity might result from external cues -- such as spatially localized chemical signals outside cells that tell the cells how to move and behave. However, researchers have also long noticed that without such localized signals cells can still polarize suggesting that the ability to polarize and bud is innate in the cell.

Li's team uncovered an important clue to the underlying process. Embedded in the cell membrane is a molecule, named Cdc42, that acts as a key regulator. In a non-polarized cell, Cdc42 is randomly distributed around the membrane, like stones randomly set in a brick wall. It also floats around within the cell.

When activated, Cdc42 stimulates the formation of a skeleton of microfilaments that guide free-floating Cdc42 towards the Cdc42 already in the membrane. Some parts of the membrane start out with a bit more Cdc42 than others and the process guided by the microfilaments concentrates the molecule in those areas. Eventually, cells ends up with a high concentration of Cdc42 in one spot -- the spot where the bud will emerge.

Of course it isn't that simple. Membrane-bound Cdc42 can diffuse away but can also be pulled out of the membrane by another molecule named Rdi1and then recycled back to the same spot on the membrane. The speed of the recycling determines how big the eventual spot will be, which directly affects the shape of the bud that grows out.

Imagine ants in a ditch, says Li. They keep running out. To keep them there, you pick them up and put them back. If your hands are fast, you can contain them in a very small area. If your hands are slow, the ants spread out more. It's the same in the yeast cell. Faster recycling of Cdc42 results in a smaller spot on the cell; slower recycling causes a bigger spot. In a 2009 paper, Li's team showed that the recycling process can be fast or slow.

So what controls the speed of Cdc42 dissociation and recycling? Li and her colleagues tackled the question by looking for genes that, when knocked out, affect the speed. They found one that slowed things way down. It was a big surprise. "It wasn't something we were envisioning," says Li. In fact, she wasn't even sure if her team would pursue it. The reason: The gene was for a type of an enzyme known as a lipid flippase, which literally flips lipids from one side of cell membranes to the other. And lipids are "really messy and hard to work with," she says. Predoctoral researcher Arupratan Das, however, was willing to take it on. "I have to give Das a lot of credit -- he's fearless," says Li.

Using cutting-edge fluorescence fluctuation spectroscopy, Das and his colleagues were able to chart the movement of molecules in live yeast cells, and figure out the role of the flippase. Here's what they found:

Near one end of the Cdc42 molecule is a patch with a net positive electrical charge. The cell membrane has a negative charge. As a result, the positively-charged patch of Cdc42 acts like a piece of Velcro, holding the molecule close to the membrane, allowing a lipid anchor at the end of Cdc42 to be stably inserted in the membrane. To pull out the Cdc42 for recycling, Rdi1 must grab this anchor. "Rdi1 cannot go into the membrane, so it needs the Velcro to be loosened," Li explains.

That's where the flippase enzyme comes in. The enzyme was known to flip a charge-neutral phospholipid to the inner layer of the membrane. The membrane thus becomes less negatively charged, allowing the Cdc42 anchor to slip out more easily. It's an example of how "a simple physical interaction can regulate the complex morphogenetic outcome observed during cell polarization," explains Das.

Case closed? Not quite. The researchers were hopeful that they'd uncovered the mechanism based upon their observations with living cells. But in a living cell "it's hard to rule out the effects of something else," says Li. So Das painstakingly created small bits of human-made, reconstituted membrane to test the mechanism. "It was a great challenge and required much troubleshooting before we performed it successfully," he recalls. After a year of effort, it worked. Using an imaging technique called total internal reflection fluorescence microscopy, the team was able to show that the charge of the membrane does indeed determine how fast Cdc42 can be pulled out by Rdi1.

The next challenge will be figuring out what controls the flippase. "There are some hints that it gets even messier -- that the flippase may be regulated by another kind of lipid in the membrane and perhaps other enzymes," says Li. But the work in the new paper is already opening the door to a better understanding of the development of cell polarity in all types of cells. And it points to the power of new experimental tools and mathematical analysis that can help track and count molecules in cells, says Li.

"What the study really highlights is the future of cell biology -- the ability to make these very accurate biochemical and biophysical measurements in single live cells and reconstituted systems, rather than using traditional bulk biochemical assays," says Li.

Researchers who also contributed to the study include Brian D. Slaughter, Jay R. Unruh, William D. Bradford, Richard Alexander and Boris Rubinstein at the Stowers Institute for Medical Research.

The work was part of a project funded by the National Institute of General Medical Sciences.

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Surprising molecular switch: Lipids help control the development of cell polarity

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