2013年10月22日星期二

Researchers demonstrate efficient method for converting fat cells to liver cells

Researchers demonstrate efficient method for converting fat cells to liver cells

Oct. 21, 2013 — In a feat of modern-day alchemy with huge potential for regenerative medicine, Stanford University School of Medicine scientists have developed a fast, efficient way to turn cells extracted from routine liposuction into liver cells.


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The advance is described in a study published Oct. 21 in Cell Transplantation.

The scientists performed their experiments in mice, but the adipose stem cells they used came from human liposuction aspirates and became human, liver-like cells that flourished inside the mice's bodies. This method is distinct from those producing liver cells from embryonic stem cells or induced pluripotent stem cells. Although iPS and embryonic stem cells are pluripotent -- they can, in principle, differentiate into every cell type -- they carry a palpable risk of forming tumors. However, the cells produced using this new technique, which involves no intermediate pluripotent phase, show no signs of being tumorogenic.

The liver is the body's chemistry set. It builds complex biomolecules we need, and it filters and breaks down waste products and toxic substances that might otherwise accumulate to dangerous levels. Unlike most other organs, a healthy liver can regenerate itself to a significant extent. But this capacity cannot overcome acute liver poisoning or damage from chronic alcoholism or viral hepatitis.

Acute liver failure from acetaminophen alone takes about 500 lives annually and accounts for close to 60,000 emergency-room visits and more than 25,000 hospitalizations annually. Other environmental toxins, including poisonous mushrooms, contribute still more cases.

All aspects of the new fat-to-liver technique are adaptable for human use, said Gary Peltz, MD, PhD, professor of anesthesia and the study's senior author. Creating iPS cells requires introducing foreign and potentially carcinogenic genes. But adipose stem cells merely have to be harvested from fat tissue. The process takes nine days from start to finish -- fast enough to regenerate liver tissue in acute liver poisoning victims, who would otherwise die within a few weeks, barring liver transplantation.

Some 6,300 liver transplants are performed annually in the United States, with another 16,000 patients on the waiting list. Every year, more than 1,400 people die before a suitable liver can be found for them. While it can save lives, liver transplantation is complicated, risky and, even when successful, fraught with aftereffects. Typically, the recipient is consigned to a lifetime of taking immunosuppressant drugs to prevent organ rejection.

"We believe our method will be transferable to the clinic," Peltz said. "And because the new liver tissue is derived from a person's own cells, we do not expect that immunosuppressants will be needed."

Liver cells are not something an adipose stem cell normally wants to turn into, Peltz said.

The Stanford team knew it was possible, though. Another way of converting liposuction-derived adipose stem cells to liver-like cells (called i-Heps, for induced hepatocytes) had been developed in 2006 by Japanese researchers. But that method, which relies on chemical stimulation, requires 30 days or longer and is inefficient; it could not produce enough material for liver reconstitution. (Working with iPS cells takes even longer; they must first be generated from adult cells before they can be converted to i-Heps.)

Using a different technique -- Peltz refers to it as spherical culture -- he and his associates were able to achieve the conversion within nine days with an efficiency of 37 percent, as opposed to the vastly lower yield obtained with the prior method (12 percent) or using iPS cells. (Peltz said improvements since the study's publication now enable yields exceeding 50 percent within seven to eight days.)

Dan Xu, PhD, a postdoctoral scholar and the study's lead author, adapted the spherical culture methodology from early embryonic-stem-cell literature. Instead of growing on flat surfaces in a laboratory dish, the harvested adipose stem cells are cultured in a liquid suspension in which they form spheroids. "This seems to make them happier," Peltz said.

When they had enough cells, the investigators tested them by injecting them into immune-deficient laboratory mice that accept human grafts. These mice were bioengineered in 2007, in a collaboration between Peltz's lab and study co-author Toshihiko Nishimura, MD, PhD, and other scientists at the Tokyo-based Central Institute for Experimental Animals. Only the livers of these mice contained an extra gene that would convert the antiviral compound gancyclovir into a potent toxin. When these mice were treated with gancyclovir, their liver cells died off quickly.

At this point the investigators injected 5 million i-Heps into the mice's livers. To do that -- no mean feat, as these tiny organs weigh a scant 1.8 grams -- they used an ultrasound-guided injection procedure that is routinely employed in gastroenterological clinics for biopsies.

Four weeks later, the investigators examined the mice's blood and found the presence of a protein (human serum albumin) that is only produced by human liver cells and was shown to be an accurate proxy for the number of new human liver cells in these experimental mice's livers. The mice's blood had substantial human serum albumin levels, which nearly tripled in the following four weeks. These blood levels correspond with the repopulation of roughly 10-20 percent of the mice's pre-destroyed livers by new human liver tissue. (Past studies have shown only miniscule human serum albumin production, at best, in mice given similar amounts of chemically induced i-Heps.)

Blood tests also revealed that the mice's new liver tissue was discharging its waste-filtration responsibility. Examination of the livers themselves showed that the transplanted cells had integrated into the liver, expressed surface markers unique to mature human hepatocytes and produced multi-cell structures required for human bile duct formation. Other tests indicated that the spherically cultured i-Heps resembled natural human hepatocytes more closely than did i-Heps produced from iPS cells.

Importantly, two months after injection of i-Heps produced by spherical culture, there was no evidence of tumor formation. But mice in which IPS-cell-originated i-Heps were introduced developed multiple tumors, which could be felt through the body surface within three weeks.

At 1,500 grams, a healthy human liver is more than 800 times the size of a mouse's and contains about 200 billion cells. "To be successful, we must regenerate about half of the damaged liver's original cell count," said Peltz. With spherical culture, he said, close to a billion injectable iHeps can be produced from 1 liter of liposuction aspirate, readily obtained from a single liposuction procedure. The cell replication that takes place after injection expands that number further, to over 100 billion i-Heps.

That could be enough to substitute for a human liver transplant, Peltz said. Stanford's Office of Technology Licensing has filed a patent on the use of spherical culture for hepatocyte induction. Peltz's group is optimizing the culture and injection techniques, talking to the U.S. Food and Drug Administration, and gearing up for safety tests on large animals. Barring setbacks, the new method could be ready for clinical trials within two to three years, he estimated.

- See more at: http://med.stanford.edu/ism/2013/october/liver.html#sthash.nSWbs6EP.dpuf



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2013年10月21日星期一

Learning dialects shapes brain areas that process spoken language

Learning dialects shapes brain areas that process spoken language

In the study published in the Journal Brain and Language, Drs. Yutaka Sato, Reiko Mazuka and their colleagues examined if speakers of a non-standard dialect used the same brain areas while listening to spoken words as native speakers of the standard dialect or as someone who acquired a second language later in life.

When we hear language our brain dissects the sounds to extract meaning. However, two people who speak the same language may have trouble understanding each other due to regional accents, such as Australian and American English. In some languages, such as Japanese, these regional differences are more pronounced than an accent and are called dialects.

Unlike different languages that may have major differences in grammar and vocabulary, the dialects of a language usually differ at the level of sounds and pronunciation. In Japan, in addition to the standard Japanese dialect, which uses a pitch-accent to distinguish identical words with different meanings, there are other regional dialects that do not.

Similar to the way that a stress in an English word can change its meaning, such as "pro'duce" and "produ'ce," identical words in the standard Japanese language have different meanings depending on the pitch-accent. The syllables of a word can have either a high or a low pitch and the combination of pitch-accents for a particular word imparts it with different meanings.

The experimental task was designed to test the participants' responses when they distinguish three types of word pairs: (1) words such as /ame'/ (candy) versus /kame/ (jar) that differ in one sound, (2) words such as /ame'/ (candy) versus /a'me/ (rain) that differ in their pitch accent, and (3) words such as 'ame' (candy in declarative intonation) and /ame?/ (candy in a question intonation).

RIKEN neuroscientists used Near Infrared Spectroscopy (NIRS) to examine whether the two brain hemispheres are activated differently in response to pitch changes embedded in a pair of words in standard and accent-less dialect speakers. This non-invasive way to visualize brain activity is based on the fact that when a brain area is active, blood supply increases locally in that area and this increase can be detected with an infrared laser.

It is known that pitch changes activate both hemispheres, whereas word meaning is preferentially associated with the left-hemisphere. When the participants heard the word pair that differed in pitch-accent, /ame'/ (candy) vs /a'me/ (rain), the left hemisphere was predominantly activated in standard dialect speakers, whereas in accent-less dialect speakers did not show the left-dominant activation. Thus, standard Japanese speakers use the pitch-accent to understand the word meaning. However, accent-less dialect speakers process pitch changes similar to individuals who learn a second language later in life.

The results are surprising because both groups are native Japanese speakers who are familiar with the standard dialect. "Our study reveals that an individual's language experience at a young age can shape the way languages are processed in the brain," comments Dr. Sato. "Sufficient exposure to a language at a young age may change the processing of a second language so that it is the same as that of the native language."


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Programmable Logic and Asic Xilinx 3D FPGA in production

Programmable Logic and Asic Xilinx 3D FPGA in production

2013/10/21

30oct13xilinxXilinx and TSMC have announced production release of the Virtex-7 HT family, claimed to be industry’s first heterogeneous 3D ICs in production.

“All Xilinx 28nm 3D IC families are now in volume production. These 28nm devices were developed on TSMC’s chip-on-wafer-on-substrate (CoWoS) 3D IC process,” said Xilinx.

Xilinx is sticking with TSMC for its next generations.

We “are now positioned to leverage TSMC’s 20SoC and 16nm FinFET process with our UltraScale architecture,” said Victor Peng, general manager at Xilinx.

Virtex-7 HT FPGAs feature up to 16 28Gbit/s and 72 13.1Gbit/s transceivers. The firm is aiming them at high-bandwidth, high-speed Nx100G and 400G line card applications in optical transport networks.

Two other homogeneous devices in the 3D IC family have been in volume production since early 2013: Virtex-7 2000T “provides the equivalent of 20 million ASIC gates,” for asic replacement and prototyping, said Xilinx and Virtex-7 X1140T has 96 13.1Gbit/s 10GBASE-KR compliant transceivers for wired communication applications.



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Tiny sea creatures are heading for extinction, and could take local fisheries with them

Tiny sea creatures are heading for extinction, and could take local fisheries with them

Oct. 18, 2013 — A species of one of the world's tiniest creatures, ocean plankton, is heading for extinction as it struggles to adapt to changes in sea temperature. And it may take local fisheries with it.


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Research led by Deakin University (Warrnambool, Australia) and Swansea University (UK) has found that a species of cold water plankton in the North Atlantic, that is a vital food source for fish such as cod and hake, is in decline as the oceans warm. This will put pressure on the fisheries that rely on abundant supplies of these fish.

"There is overwhelming evidence that the oceans are warming and it will be the response of animals and plants to this warming that will shape how the oceans look in future years and the nature of global fisheries," explained Deakin's professor of marine science, Graeme Hays.

"We know that warm water species are expanding their ranges as warming occurs, and vice versa. What is not known is whether species are able to adapt to new temperatures. Will, for example, cold water species gradually adapt so they can withstand warming seas and not continually contract their ranges. From the results of our study, it is looking like the answer is no."

Answering the question of adaptation is not easy as it requires long-term observations spanning multiple generations. For this study, the research team examined a 50-year time series from the North Atlantic on the distribution and abundance of two very common but contrasting species of ocean plankton, Calanus helgolandicus that lives in warmer water and Calanus finmarchicus that lives in cold water. These crustaceans are vital food for fish and underpin many commercial fisheries in the North Atlantic region.

The researchers were surprised to find that the cold water C. finmarchicus has continued to contract its range over 50 years of warming.

"In other words, even over 50 generations (each plankton lives for one year or less) there is no evidence of adaptation to the warmer water," Professor Hays said.

"The consequences of this study are profound. It suggests that cold water plankton will continue to become scarcer as their ranges contract to the poles, and ultimately disappear. So certainly for these animals, thermal adaptation appears unlikely to limit the impact of climate change.

"C. finmarchicus is a key food source for fish such as cod and hake. So continued declines in abundance will have a negative impact on the long-term viability of cold water fisheries in the North Sea and other areas in the southern part of their range. At the same time the continued increase in abundance of the warm water plankton, C. helgolandicus, will likely play a role in the emergence of new fisheries for warm water species."

Professor Hays said that the impact of ocean warming was not confined to the North Atlantic region.

"Ocean warming is occurring globally and so these findings are likely to apply to other areas around the world including southern hemisphere locations such as Australia, South Africa and South America that support important fisheries dependant on plankton," Professor Hays said.

"Plankton recorders deployed in the southern hemisphere, for example as part of the Australian Continuous Plankton Recorder Project (a joint project of CSIRO Marine and Atmospheric Research and the Australian Antarctic Division), will continue to document these changes."

The results of the study will be published in the journal Global Change Biology.



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全球电气化车辆2020年市场份额将达7%

全球电气化车辆2020年市场份额将达7%

全球绿色能源市场咨询企业Navigant Research 20日发布最新前瞻报告称,电气化汽车(包含混合动力、插电式混合动力恶化纯电动)到2020年将占据全球汽车市场7%的份额。

全球2013-2020年汽车销量预测

预计混合动力汽车将在上述比例中占据更大的比重,但是,年复一年,纯电动汽车和插电式混合动力车将逐步取得进展,到2020年,这两种车型的市场份额将与传统混合动力车不分上下。

Navigant称,电气化车辆2013年的销售量将超过200万辆,到2020年,将猛增至660万辆。增长因素包括:消费者需求更低廉的汽车运行成本,各国政府持续的补贴鼓励政策,主要汽车制造商不断推出新车型,以及电池成本的下降。




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Mixing nanoparticles to make multifunctional materials

Mixing nanoparticles to make multifunctional materials

The approach takes advantage of the attractive pairing of complementary strands of synthetic DNA-based on the molecule that carries the genetic code in its sequence of matched bases known by the letters A, T, G, and C. After coating the nanoparticles with a chemically standardized "construction platform" and adding extender molecules to which DNA can easily bind, the scientists attach complementary lab-designed DNA strands to the two different kinds of nanoparticles they want to link up. The natural pairing of the matching strands then "self-assembles" the particles into a three-dimensional array consisting of billions of particles. Varying the length of the DNA linkers, their surface density on particles, and other factors gives scientists the ability to control and optimize different types of newly formed materials and their properties.

"Our study demonstrates that DNA-driven assembly methods enable the by-design creation of large-scale 'superlattice' nanocomposites from a broad range of nanocomponents now available-including magnetic, catalytic, and fluorescent nanoparticles," said Brookhaven physicist Oleg Gang, who led the research at the Lab's Center for Functional Nanomaterials (CFN). "This advance builds on our previous work with simpler systems, where we demonstrated that pairing nanoparticles with different functions can affect the individual particles' performance, and it offers routes for the fabrication of new materials with combined, enhanced, or even brand new functions."

Future applications could include quantum dots whose glowing fluorescence can be controlled by an external magnetic field for new kinds of switches or sensors; gold nanoparticles that synergistically enhance the brightness of quantum dots' fluorescent glow; or catalytic nanomaterials that absorb the "poisons" that normally degrade their performance, Gang said.

"Modern nano-synthesis methods provide scientists with diverse types of nanoparticles from a wide range of atomic elements," said Yugang Zhang, first author of the paper. "With our approach, scientists can explore pairings of these particles in a rational way."

Pairing up dissimilar particles presents many challenges the scientists investigated in the work leading to this paper. To understand the fundamental aspects of various newly formed materials they used a wide range of techniques, including x-ray scattering studies at Brookhaven's National Synchrotron Light Source (NSLS) and spectroscopy and electron microcopy at the CFN.

For example, the scientists explored the effect of particle shape. "In principle, differently shaped particles don't want to coexist in one lattice," said Gang. "They either tend to separate into different phases like oil and water refusing to mix or form disordered structures." The scientists discovered that DNA not only helps the particles mix, but it can also improve order for such systems when a thicker DNA shell around the particles is used.

They also investigated how the DNA-pairing mechanism and other intrinsic physical forces, such as magnetic attraction among particles, might compete during the assembly process. For example, magnetic particles tend to clump to form aggregates that can hinder the binding of DNA from another type of particle. "We show that shorter DNA strands are more effective at competing against magnetic attraction," Gang said.

For the particular composite of gold and magnetic nanoparticles they created, the scientists discovered that applying an external magnetic field could "switch" the material's phase and affect the ordering of the particles. "This was just a demonstration that it can be done, but it could have an application-perhaps magnetic switches, or materials that might be able to change shape on demand," said Zhang.

The third fundamental factor the scientists explored was how the particles were ordered in the superlattice arrays: Does one type of particle always occupy the same position relative to the other type-like boys and girls sitting in alternating seats in a movie theater-or are they interspersed more randomly? "This is what we call a compositional order, which is important for example for quantum dots because their optical properties-e.g., their ability to glow-depend on how many gold nanoparticles are in the surrounding environment," said Gang. "If you have compositional disorder, the optical properties would be different." In the experiments, increasing the thickness of the soft DNA shells around the particles increased compositional disorder.

These fundamental principles give scientists a framework for designing new materials. The specific conditions required for a particular application will be dependent on the particles being used, Zhang emphasized, but the general assembly approach would be the same.

Said Gang, "We can vary the lengths of the DNA strands to change the distance between particles from about 10 nanometers to under 100 nanometers-which is important for applications because many optical, magnetic, and other properties of nanoparticles depend on the positioning at this scale. We are excited by the avenues this research opens up in terms of future directions for engineering novel classes of materials that exploit collective effects and multifunctionality."

This research was funded by the DOE Office of Science.


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Evolution is not a one-way road towards complexity

Evolution is not a one-way road towards complexity

Oct. 18, 2013 — There are still a lot of unanswered questions about mollusks, e.g. snails, slugs and mussels. The research group of Andreas Wanninger, Head of the Department of Integrative Zoology of the University of Vienna, took a detailed look at the development of cryptic worms. The larvae of the "wirenia argentea" hold a much more complex muscular architecture than their adults -- they remodel during their metamorphosis. That's a clue that the ancestors had a highly complex muscular bodyplan. Their findings are published in the current issue of the scientific journal Current Biology.


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With over 200,000 species described, the Mollusca -- soft-bodies animals that, among others, include snails, slugs, mussels, and cephalopods -- constitutes one of the most species-rich animal phyla. What makes them particularly interesting for evolutionary studies, however, is not the sheer number of their representatives, but rather their vast variety of body morphologies they exhibit. Ever since they have been unambiguously assigned to the phylum, a group of worm-like, shell-less mollusks whose body is entirely covered by spicules -- the Aplacophora ("non-shell-bearers," usually small animals in the mm-range that inhabit the seafloors from a few meters to abyssal depths) has been hotly debated as being the group of today's living mollusks that most closely resembles the last common ancestor to all mollusks.

However, new studies on the development of a typical aplacophoran (Wirenia argentea, a species that was collected in 200 m depth off the coast of Bergen, Norway) tell a different story. Although their adult, worm-like body appears rather simple (hence the traditional assumption that they may constitute a basal molluscan group), their small, 0.1 to 0.3mm long larvae undergo a stage in which they show an extremely complex muscular architecture which is largely lost and remodeled during metamorphosis to become the simple muscular arrangement of the adult animal. The entire secret these animals hold only unravels if one takes a detailed look at the morphology of these tiny animals. In doing so, Andreas Wanninger, Head of the Department of Integrative Zoology of the University of Vienna, and colleagues found that the musculature of Wirenia larvae in detail resembles that of a quite different-looking mollusk, the so-called polyplacophorans or chitons (flat animals in the cm-range that bear 8 shell plates on their back). In contrast to the former, however, chitons do retain much of the larval muscles as adults.

While it has been suspected for a long time that aplacophorans and chitons are closely related, it has often been argued that the aplacophoran morphology is closer to the ancestral molluscan condition than the polyplacophoran one. The current data paint a different picture: the fact that the highly complex larval muscular bodyplan is so similar in both groups but is only carried over into the adult stage in one of them -- the chitons -- strongly suggests that the common ancestor of both groups was of similar complexity; thereby implying that the worm-like groups lost these complex traits and became secondarily simplified over evolutionary time.

Interestingly, findings from the fossil record support this new developmental evidence. A recently described species from the Silurian -- Kulindroplax perissokosmos -- obviously had a mix of aplacophoran and polyplacophoran characters: while being long, slender, cylindrical in diameter, and covered by spicules -- closely reminding us of today's aplacophorans -- it had seven shells on its back. Although, at an age of 425 myr, too young to be considered the long-sought ancestor of polyplacophorans, aplacophorans and maybe even all mollusks (the origin of the phylum is known to date back to at least the Cambrian Explosion some 540 myr ago), this relative of the distant past demonstrates that evolution has widely played with the combination of the various morphological character sets in individual molluscan groups. Taking together the data currently available, a coherent scenario emerges that strongly suggests that today's simple, wormy mollusks evolved from an ancestor that had a much more complex musculature (and probably overall internal anatomy) and was covered with protective shell plates.



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Rats! Humans and rodents process their mistakes

Rats! Humans and rodents process their mistakes

People and rats may think alike when they've made a mistake and are trying to adjust their thinking.

That's the conclusion of a study published online Oct. 20 in Nature Neuroscience that tracked specific similarities in how human and rodent subjects adapted to errors as they performed a simple time estimation task. When members of either species made a mistake in the trials, electrode recordings showed that they employed low-frequency brainwaves in the medial frontal cortex (MFC) of the brain to synchronize neurons in their motor cortex. That action correlated with subsequent performance improvements on the task.

"These findings suggest that neuronal activity in the MFC encodes information that is involved in monitoring performance and could influence the control of response adjustments by the motor cortex," wrote the authors, who performed the research at Brown University and Yale University.

The importance of the findings extends beyond a basic understanding of cognition, because they suggest that rat models could be a useful analog for humans in studies of how such "adaptive control" neural mechanics are compromised in psychiatric diseases.

"With this rat model of adaptive control, we are now able to examine whether novel drugs or other treatment procedures boost the integrity of this system," said James Cavanagh, co-lead author of the paper who was at Brown when the research was done and has since become assistant professor of psychology at the University of New Mexico. "This may have clear translational potential for treating psychiatric diseases such as obsessive compulsive disorder, depression, attention deficit hyperactivity disorder, Parkinson's disease and schizophrenia."

To conduct the study, the researchers measured external brainwaves of human and rodent subjects after both erroneous and accurate performance on the time estimation task. They also measured the activity of individual neurons in the MFC and motor cortex of the rats in both post-error and post-correct circumstances.

The scientists also gave the rats a drug that blocked activity of the MFC. What they saw in those rats compared to rats who didn't get the drug, was that the low-frequency waves did not occur in the motor cortex, neurons there did not fire coherently and the rats did not alter their subsequent behavior on the task.

Although the researchers were able to study the cognitive mechanisms in the rats in more detail than in humans, the direct parallels they saw in the neural mechanics of adaptive control were significant.

"Low-frequency oscillations facilitate synchronization among brain networks for representing and exerting adaptive control, including top-down regulation of behavior in the mammalian brain," they wrote.

In addition to Cavanagh, the lead authors are Nandakumar Narayanan, formerly of Yale and now of the University of Iowa, and James Cavanagh, formerly of Brown and now of the University of New Mexico. The senior authors are Michael Frank of Brown and Mark Laubach of Yale.

The National Institutes of Health (grants: K08 NS078100, MH080066-01, P01-AG030004-01) and the National Science Foundation (grants: 1125788 and 1121147) funded the research.


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2013年10月20日星期日

Business IDT focussing on financials

Business IDT focussing on financials

2013/10/18

IDT Jeffrey S McCreary

IDT CEO Jeff McCreary


The new CEO at IDT is looking to improve financial performance. Jeff McCreary took over from Ted Tewksbury in August.

The hugely respected Tewksbury had initiated a turnaround at IDT, putting the company into new product programmes aimed at taking IDT further into the mobile internet, cloud computing and connectivity.

“Ted did a great job in injecting some new DNA into this company,” says McCreary, “but were were spending a lot on R&D and not delivering great results and the company was vulnerable because the stock value was low.”

“The board thought we were vulnerable and had got distracted chasing new product ideas and were not delivering great financial results,” says McCreary, adding, “IDT has divested itself of some businesses that were OK but needed money to develop.”

In December 2011, Tewksbury told EW: “The biggest challenge is explaining to Wall Street, getting the analysts to understand that it does take time to turn around a company. Basically, in the semiconductor industry it takes about 3 to 5 years from the time that you define a product to the time you develop it, get it designed into customer systems, get it qualified, get it ramped up into early revenue, and then get it to peak revenue. Analysts and investors typically have a short attention span, so that’s the biggest challenge. Right now, we’re about 3 years into this 5-year turnaround. So, with that timeline constantly in mind, the next couple of years are going to be the most fruitful for the company in terms of revenue growth.”

The investors couldn’t wait.



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2013年10月19日星期六

Business IPextreme, Mentor combine to sell IP

Business IPextreme, Mentor combine to sell IP

2013/10/18

Xena_SemiconductorCompanies_DiagramIPextreme, the leading IP broker, has joined with Mentor Graphics to sell IPextreme’s IP.

Products available for licensing include automotive IP including CAN and Flexray cores; debug IP, including IEEE 1149.7 compact JTAG; 8/16/32-bit microcontrollers and complete sub-systems; and the Xena enterprise level IP management software platform.

Warren Savage, CEO of IPextreme, sees the deal as a catalyst for expansion at IPextreme comparing the deal to Starbucks co-locating in a Safeway store.

“We’re offering all our IP plus Xena, ” says Savage. The Mentor sales force can sell the IPextreme IP and customers will sign a license agreement with IPextreme and issue a purchase order to Mentor.

The IP is delivered via a Xena server.

“We see significant opportunities for deeper collaboration on the EDA side, as well as roadmap alignments on new IP titles that our mutual customers are demanding in their next generation SoCs,” says Savage.

IPextreme customers, like Infineon, welcomed the move as a way for more customers to get access to Infineon’s IP blocks.

IPextreme is dubbed the iTunes store of the IP world. The Xena IP allows IP developers, to put the IP they’ve developed in the Xena store for users to license or buy.

A buyer or licensee can use a search engine designed by IPextreme, to search across all the IP in the Xena store to find what they’re looking for.

A variant allows big companies to share IP across their internal divisions. Savage quotes an exec for an IP company who told him: “We often get customers where one division buys an IP licence for the entire company but doesn’t tell the other divisions. We just sell them another licence.”

“In big companies the IP function was traditionally done by the CAD department,” explains Savage, “but in the last decade CAD departments have been gutted along with other non-revenue-producing units.” So a big company can get a virtual CAD department via Xena.

This is very often very necessary if customers are to understand their needs. Savage quotes an IP manager at a large IP company saying they’d recently bought a UART from IPextreme only to find they had 32 UART designs in-house

IPextreme’s service becomes more and more necessary as complexity soars. The average number of gates per chip, now 120,000, is going to 240,000 in 2017 and the average number of IP blocks per chip is going from 100 now to 180 in 2017.

“Xena” says Savage, “detangles your IP problem.”



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