sábado, 15 de novembro de 2014

Three win medicine Nobel for discovering brain's GPS

 

Tue, 10/07/2014 - 9:28am

Karl Ritter and Jill Lawless, Associated Press

 

Joint winner of the Nobel Prize for Physiology or Medicine professor John O'Keefe, a dual U.S. and British citizen, stands next to a chalkboard at the end of an interview with The Associated Press in an office he uses at the University College London, in London, Monday, Oct. 6, 2014. The U.S.-British scientist and a Norwegian husband-and-wife research team won the Nobel Prize in medicine Monday for discovering the brain's navigation system, a revelation that one day could help those with Alzheimer's. AP Photo/Matt Dunham

Joint winner of the Nobel Prize for Physiology or Medicine professor John O'Keefe, a dual U.S. and British citizen, stands next to a chalkboard at the end of an interview with The Associated Press in an office he uses at the University College London, in London, Monday, Oct. 6, 2014. The U.S.-British scientist and a Norwegian husband-and-wife research team won the Nobel Prize in medicine Monday for discovering the brain's navigation system, a revelation that one day could help those with Alzheimer's. AP Photo/Matt DunhamA U.S.-British scientist and a Norwegian husband-and-wife research team won the Nobel Prize in medicine Monday for discovering the brain's navigation system—the inner GPS that helps us find our way in the world—a revelation that could lead to advances in diagnosing Alzheimer's.

The research by John O'Keefe, May-Britt Moser and Edvard Moser represents a "paradigm shift" in neuroscience that could help researchers understand the sometimes severe spatial memory loss associated with Alzheimer's disease, the Nobel Assembly said.

"This year's Nobel Laureates have discovered a positioning system, an 'inner GPS' in the brain, that makes it possible to orient ourselves in space," the assembly said.

O'Keefe, 74, a dual U.S. and British citizen at the University College London, discovered the first component of this system in 1971 when he found that a certain type of nerve cell was always activated when a rat was at a certain place in a room. He demonstrated that these place cells were building up a map of the environment, not just registering visual input.

Thirty-four years later, in 2005, May-Britt Moser and Edvard Moser, married neuroscientists at the Norwegian University of Science and Technology in Trondheim, identified another type of nerve cell—the grid cell—that generates a coordinate system for precise positioning and path-finding, the assembly said.

Monday's award was the fourth time that a married couple has shared a Nobel Prize and the second time in the medicine category.

"This is crazy," an excited May-Britt Moser, 51, told The Associated Press by telephone from Trondheim.

"This is such a great honor for all of us and all the people who have worked with us and supported us," she said. "We are going to continue and hopefully do even more groundbreaking work in the future."

Her 52-year-old husband didn't immediately find out about the prize because he was flying to the Max Planck Institute in Munich, Germany, to demonstrate their research. Edvard Moser told the Norwegian news agency NTB he only discovered he had won after he landed in Munich, turned on his cellphone and saw a flood of emails, text messages and missed calls.

"I didn't know anything. When I got off the plane there was a representative there with a bouquet of flowers who said 'congratulations on the prize,'" he was quoted as saying.

The Nobel Assembly said the discoveries marked a shift in scientists' understanding of how specialized cells work together to perform complex cognitive tasks. They have also opened new avenues for understanding cognitive functions such as memory, thinking and planning.

"Thanks to our grid and place cells, we don't have to walk around with a map to find our way each time we visit a city, because we have that map in our head," said Juleen Zierath, chair of the medicine prize committee. "I think, without these cells, we would have a really hard time to survive."

O'Keefe told the AP he was working at home when his office called to say "there's a gentleman from Sweden who wants to have a word with you."

"Before I called him, I took a long, deep breath," O'Keefe said, speaking at his office at University College London.

O'Keefe was born in Harlem and raised in the South Bronx. "If you can survive the South Bronx, you can survive anything," he said.

He moved to England for postdoctoral training and found the place cells in a part of the brain called the hippocampus. The Mosers, meanwhile, identified the grid cells in a nearby section of the brain known as the entorhinal cortex.

O'Keefe said his work could be used as a basis for investigating Alzheimer's, for example, by designing tests to try to pick up the first signs of the disease.

"So we can not only use brain imaging to see the earliest signs of the disease in this part of the brain, but we can begin to see how it is affecting their memory, particularly their spatial memory," he said.

David Foster, a neuroscientist who studies place cells at Johns Hopkins University in Baltimore, said O'Keefe's discovery of place cells was controversial in 1971 but became widely accepted over the next few decades as more researchers began to study it.

"He founded the field," Foster said.

All three Nobel laureates won Columbia University's Louisa Gross Horwitz Prize last year for their discoveries. They will split the Nobel prize money of 8 million Swedish kronor (about $1.1 million), with half to O'Keefe and the other half to the Mosers.

The Nobel awards in physics, chemistry, literature and peace will be announced later this week and the economics prize will be announced next Monday. Created by Swedish industrialist Alfred Nobel, theNobel Prizes were first awarded in 1901. The winners collect their awards on Dec. 10, the anniversary ofNobel's death in 1896.

Last year's medicine award went to researchers who discovered how substances are transported within cells, a process involved in such important activities as brain cell communication and the release of insulin.

2014 Nobel Prize in Medicine: Details about the winners

Multispectral Sensors

 

PIXELTEQ has introduced new PixelSensor multispectral sensors. Thee multispectral sensors use on-chip filtering to pack eight wavelength-selective photodiodes onto an array measuring less than 1 cm, enabling simpler and smaller OEM optical devices. PixelCam and SpectraCam spectral cameras image spectral bands in UV, visible and NIR, as well as SWIR, for many applications.

PIXELTEQ, www.pixelteq.com

 

Thermal Imaging Camera

 

Thu, 04/10/2014 - 9:42am

 

FLIR Systems has introduced an enhanced version of its T650sc thermal imaging camera. Engineered for R&D the FLIR T650sc combines high accuracy (+/- 1 C) and sensitivity to routinely deliver accurate measurement of temperature differences (less than 20 mK).

The FLIR T650sc measures temperature of up to 2,000 C and includes a 5 Megapixel digital camera to provide clear visual images that may be overlaid with your IR data. With real-time radiometric recording in the camera, it is possible to capture fast events on the camera’s SD card for further analysis by the supplied analysis software. A new highly intuitive touchscreen user interface facilitates productive use of the T650sc with a minimum of training. The camera combines excellent ergonomics and feature-rich flexibility with superior image quality of 640 by 480 pixel Infrared resolution. The T650sc camera is equipped with FLIR's Multi Spectral Dynamic Imaging (MSX) feature.

FLIR Systems, www.flir.com

 

Industrial Measuring Microscope

 

Tue, 10/28/2014 - 12:23pm

 

Olympus Corp. has recently announced the launch of the new STM7 measuring microscope, an industrial microscope system designed for highly accurate measurement of machined parts, semiconductors, electronic components, and other processed industrial materials.

A measuring microscope series that combines high-performance Olympus optics with today’s most advanced measurement capabilities, the STM7 is available as both a manual Z-axis model and a motorized Z-axis model, each with a variety of stage options. Designed for highly efficient inspection and enhanced productivity, the STM7’s large square stage (up to 300 x 300 mm) can accommodate a number of variously shaped samples at the same time. The STM7 makes it possible to measure large samples such as printed circuit boards or semiconductor wafers with no shift in orientation.

To ensure measurement accuracy and ongoing reliability, the STM7 features a highly durable, vibration-resistant frame with a granite surface plate. As a result of this stability, part size, assembly, and other measurements can be taken at sub-micron levels with minimal error. When coupled with Olympus’ proven optical technology, this exceptionally stable frame assembly enables vivid high-resolution imaging of extremely minute samples.

The STM7 uses the same UIS2 infinity-corrected observation system harnessed by the industry’s most powerful optical microscopes. As a result, brightfield, darkfield, DIC, and POL images can all be observed with high resolution and high contrast, with aberration thoroughly eliminated. This ensures highly accurate measurement of even the smallest component details.

When used with STM7-BSW measurement support software and an Olympus microscope digital camera, the STM7 can perform accurate measurements of highly complex shapes while keeping system operation extremely simple. Measurement results can then be easily exported to Excel, facilitating fast, simple report generation and management.

Olympus IMS

Coordinate Measuring Machine

 

Zeiss Industrial Metrology has announced the latest generation of the successful Zeiss Contura is now entering the market. Zeiss is officially introducing the coordinate measuring machine at the CONTROL show in Stuttgart, Germany, beginning May 6, 2014. This system provides a platform for flexible, reliable and uncompromising quality assurance. It is even more precise than its predecessor and offers a large package of optical sensors on top of additional measuring ranges. Outstanding scanning technology, Zeiss Calypso reference software and a highly tuned overall system enable Zeiss Contura to maintain its place as the standard in its class.

Like no other Zeiss coordinate measuring machine, Zeiss Contura has made high-performance measuring technology available to the masses. The latest generation will continue on this proven path. A reliable measuring system is the result of the interaction of its components: design, sensors, software and service.

Thanks to its robust design, Zeiss Contura can also be used near production. The latest and most powerful scanning sensors from Zeiss are available for the machine.

Tailored sensors

In tune with the various customer requirements, sensors are available in the direkt, RDS and aktiv versions. With the Zeiss Vast XXT probe, the direkt model enables scanning. This configuration is ideal for small workpieces, for which a small single or star stylus is sufficient. Scanning makes it possible to efficiently and precisely measure the form in addition to the size and location. For parts with different angular positions, the RDS sensor model is the right choice. The RDS articulating probe holder can be freely positioned in 2.5 degree increments, resulting in more than 20,000 possible positions. Thanks to the RDS-CAA, the data from every single position can be mathematically calculated in just a few minutes. This drastically improves the utilization level of the machine and results in additional possibilities to immediately measure even complex angular positions. Its sensor interface permits the flexible use of contact and optical sensors, including the new Zeiss LineScan sensor. It enables the fast optical measurement of features.

The aktiv configuration is recommended when long styli are needed for measurements deep inside a part or for additional demands on precision and speed. The Zeiss Vast XTR gold and Vast XT gold premium probes are available. This active regulation enables highly accurate measurements with very long, heavy stylus systems.

Choice of measuring ranges

Another new feature is the range of measuring volumes. The Zeiss Contura family has eight different sizes starting with a measuring volume of 700 x 700 x 600 mm up to 1200 x 2400 x 1000 millimeters. From a design standpoint, Zeiss Contura is based on proven features: its efficient, highly precise air bearings are an in-house development. Zeiss AirSaver can also be integrated for additional savings. This technology reduces compressed air consumption by up to 60 percent depending on how it is used.

Zeiss Industrial Metrology

Raspberry Pi Model A+ brings smaller build, even lower price tag

 

The new board is the smallest and cheapest Raspberry Pi ever

The new board is the smallest and cheapest Raspberry Pi ever

 

The Raspberry Pi Foundation has today announced the latest version of its popular mini-computer. Known as the Model A+, the new system brings improvements introduced with the Model B+, while slimming down both the size and price tag of the board.

The most striking difference between the older Raspberry Pi boards and the new model is its size. The new version cuts the mini-computer’s length down from 86 mm (3.4 in) to just 65 mm (2.6 in). Like the Model B+, the new release makes use of microSD storage over full-size cards, and a low-noise power supply for better integrated audio.

It also carries over the same, larger GPIO header, with 40 pins compared to the 26 found on the original board, allowing for compatibility with the company’s HAT standard for add-on boards. Like the original Model A, the A+ only features a single USB port, meaning you’ll have to pick up a USB hub if you’re intending to plug multiple devices into the tiny computer, and there’s no Ethernet port on board. There is a plus side to those omissions, with the new model using less power than the original Model A.

The Model A+ measures just 65 mm (2.6 in) in length

In light of those changes, it’s clear that the Model A+ is designed to sit alongside existing B+ rather than serve as an outright replacement for older boards. The latest Pi packs the same 700 MHz Broadcom BCM2835 SoC as the Model B+, and offers 256 MB RAM, meaning that its small form-factor and low-powered nature are its biggest draws.

Aside from the even tinier build, the biggest headline here is the price tag. Raspberry Pi boards have never been expensive pieces of kit, but the new version is the most affordable yet, lowering the asking price to just US$20. The refreshed mini-computer is built in the same South Wales Sony factory as the Model B+, and is available for purchase today from MCM in the US and Farnell in the UK, where it retails for £20.

Source: Raspberry Pi Foundation

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Standalone Burg smartwatch lets you call and text from your wrist

 

The Burg lets users place calls, send messages and more, right from their wrist

The Burg lets users place calls, send messages and more, right from their wrist

 

The Burg 12 smartwatch from lifestyle designer Hermen van den Burg allows users to make phone calls, send messages and more, without the need to connect the device to a smartphone.

With wearable technology gaining some momentum in 2014, we’ve seen a wide range of smartwatches. While devices like the Asus ZenWatch have square displays, others, most notably the Moto 360, opted for a circular display instead. The Burg 12 attempts to combine the two concepts, putting a square display inside a circular dial. While the resulting aesthetic isn’t quite as disagreeable as the Epic wearable that we saw back in September, it’s far from our favourite smartwatch design.

Looks aside, the display here clocks in at 1.5-inches with a 240 x 240 resolution, giving it 226 pixels per inch. There’s 4 GB storage on board alongside a microSD reader, letting users expand storage up to 16 GB.

The watch runs its own proprietary software (usually not an encouraging sign), and gives the user access to call and text functionality without the need to pair it with a smartphone. The standalone abilities extend to calendar, calculator, MP3/MP4 player and radio functionality, and there’s even a camera on board (with an undisclosed resolution), allowing users to take, view and send snaps from their wrists.

The watch runs on custom software, and gives the user access to call and text functionalit...

The device ships with a US$25 prepaid SIM card. Interestingly, the standalone Burg 12 can also connect to any iPhone or Android smartphone, though it isn’t clear what added benefit this brings.

Standalone functionality isn’t a brand new concept for smartwatches – Samsung’s Gear S allows the user to place calls, send messages and even browse the web while a paired Galaxy phone sits at home.

The Burg 12 doesn’t appear to be nearly as refined a product as Samsung’s device, but it does have one thing going for it: price. The smartwatch is available now from Walmart, shipping for US$199 (just remember that you'll need to pay for its own line after that prepaid SIM bottoms out). It’s available in black and purple, and comes with black and purple straps, with additional interchangeable straps and bezels available.

Source: Burg Wearables

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sexta-feira, 14 de novembro de 2014

Chemists develop porous molecules that bind greenhouse gases

 


From left to right, chemists Allan Jacobson, Ognjen Miljanić and Olafs Daugulis developed porous molecules that bind greenhouse gases.

A team of University of Houston (UH) chemistry researchers have developed a molecule that assembles spontaneously into a lightweight structure with microscopic pores capable of binding large quantities of several potent greenhouse gases.

"Greenhouse gases, such a carbon dioxide, have received much attention lately because of their potential to dramatically affect Earth's climate, primarily the temperature of the planet," said Ognjen Miljanić, a UH associate professor of chemistry and leader of the team.

While carbon dioxide presents the biggest problem, Miljanić notes that several other compounds are hundreds or thousands of times more potent in their greenhouse effect per unit of mass. These compounds include Freons, used as common refrigerants, and fluorocarbons, highly stable organic compounds in which one or more hydrogen atoms have been replaced with fluorine.

"We developed a molecule that self-assembles into a structure that can capture these greenhouse vapors to the tune of 75 percent by weight," Miljanić said. "This molecule could be used to capture Freons from disposed refrigeration systems, for example, or to concentrate them prior to analysis of their content."

In their recent paper in Nature Communications, Miljanić and his colleagues report that a small molecule based on an extensively fluorinated backbone will form a structure with extremely small pores about 1.6 nanometers in diameter. Members of the team included Miljanić and professors Allan Jacobson and Olafs Daugulis, all from UH's Department of Chemistry in the College of Natural Sciences and Mathematics.

"These tiny pores are lined with fluorine atoms, giving them a high affinity for other molecules containing fluorine -- such as fluorocarbons and Freons," Miljanić said.

Porous materials with similar pore sizes have been developed in previous studies, but those materials were often heavy, because of the presence of metals, as well as sensitive to water and difficult to process and recycle.

"The advantages of the current material is that it is stable to water and composed from individual molecules held together only by weak interactions," Miljanić said. "This latter feature makes this material lightweight, because there are no metal connectors."

The weak interactions between the molecules can be broken when needed, so the molecule can be recycled or deposited on a surface. The molecule is stable to 280 degrees Celsius.

In this international collaboration, UH researchers worked with Yu-Sheng Chen from the University of Chicago and Yu-Chun Chuang from the Taiwan National Synchrotron Radiation Research Center. A provisional patent based on this work has been filed.


Story Source:

The above story is based on materials provided by University of Houston. The original article was written by Lisa Merkl. Note: Materials may be edited for content and length.


Journal Reference:

  1. Teng-Hao Chen, Ilya Popov, Watchareeya Kaveevivitchai, Yu-Chun Chuang, Yu-Sheng Chen, Olafs Daugulis, Allan J. Jacobson, Ognjen Š. Miljanić. Thermally robust and porous noncovalent organic framework with high affinity for fluorocarbons and CFCs. Nature Communications, 2014; 5: 5131 DOI: 10.1038/ncomms6131

 

'Topological insulators' promising for spintronics, quantum computers

 


Purdue University doctoral student Yang Xu, lead author of a new research paper on "topological insulators," an emerging class of materials that could make possible "spintronic" devices and practical quantum computers far more powerful than today's technologies, is shown here inspecting devices made from topological insulators under a microscope before electrical measurements.

Researches have uncovered "smoking-gun" evidence to confirm the workings of an emerging class of materials that could make possible "spintronic" devices and practical quantum computers far more powerful than today's technologies.

The materials are called "topological insulators." Unlike ordinary materials that are either insulators or conductors, topological insulators are in some sense both at the same time -- they are insulators inside but always conduct electricity via the surface. Specifically, the researchers have reported the clearest demonstration of such seemingly paradoxical conducting properties and observed the "half integer quantum Hall effect" on the surface of a topological insulator.

"This is unambiguous smoking-gun evidence to confirm theoretical predictions for the conduction of electrons in these materials," said Purdue University doctoral student Yang Xu, lead author of a paper appearing this week in the journal Nature Physics.

Yong P. Chen, a Purdue associate professor of physics and astronomy and electrical and computer engineering, led a team of researchers from Purdue, Princeton University and the University of Texas at Austin in studying the bismuth-based material.

"This experimental system provides an excellent platform to pursue a plethora of exotic physics and novel device applications predicted for topological insulators," Chen said.

For example, by further combining topological insulators with a superconductor, which conducts electricity with no resistance, researchers may be able to build a practical quantum computer. Such a technology would perform calculations using the laws of quantum mechanics, making for computers much faster than conventional computers at certain tasks such as database searches and code-breaking.

"One of the main problems with prototype quantum computers developed so far is that they are prone to errors," Chen said. "But if topologically protected, there is a mechanism to fundamentally suppress those errors, leading to a robust way to do quantum computing."

The topological insulators were synthesized at Purdue and fabricated into electrical devices at the Birck Nanotechnology Center in the university's Discovery Park.

The researchers for the first time demonstrated a three-dimensional material with an electrical resistance not dependent on the thickness of the material, a departure from conventional behavior. Whereas electrons usually have a mass, in the case of topological insulators the conducting electrons on the surface have no mass and are automatically "spin polarized," leading to the unique half-integer quantum Hall effect observed and also making the material promising for various potential applications.

Topological insulators could bring future computing platforms based on "spintronics." Conventional computers use the presence and absence of electric charges to represent ones and zeroes in a binary code needed to carry out computations. Spintronics, however, uses the "spin state" of electrons to represent ones and zeros.

"Compounds based on bismuth, antimony, telluride and selenide are the cleanest and most intrinsic topological insulators demonstrated so far, with no measurable amount of undesirable conduction inside the bulk that often spoils the topological conduction properties in earlier topological insulator materials," Chen said.

The researchers also found evidence consistent with the conduction of electrons being "topologically protected," meaning its surface is guaranteed to be a robust conductor. Studying thin-slab-shaped samples cut from this material down to ever decreasing thickness while observing the conductance, the researchers found that the conductance -- which occurs always and only at the surface -- barely changes.

"For the thinnest samples, such topological conduction properties were even observed at room temperature, paving the way for practical applications," Xu said.

The paper was authored by Xu; Purdue research scientist Ireneusz Miotkowski, who created the high-quality materials; Princeton postdoctoral research associate Chang Liu; Purdue postdoctoral research associate Jifa Tian; UT Austin graduate student Hyoungdo Nam; Princeton graduate student Nasser Alidoust; Purdue graduate student Jiuning Hu; Chih-Kang Shih, Jane and Roland Blumberg Professor at UT Austin; M. Zahid Hasan, a Princeton professor of physics; and Chen.

In addition to the material growth and electrical measurements performed by the Purdue researchers, the Princeton and UT Austin groups contributed to this study by performing advanced characterizations that further confirmed important properties of the material as a topological insulator.

The research was funded by the Defense Advanced Research Projects Agency, which supports a Purdue-led program with participation from Princeton and other institutions aiming to develop energy efficient electronic devices based on topological insulators. The electrical measurements revealing the signature half-integer quantum Hall effect were performed at the National Science Foundation's National High Magnetic Field Laboratory. UT Austin's contribution to this study was supported the Welch Foundation and U.S. Army Research Office.

 

Story Source:

The above story is based on materials provided by Purdue University. The original article was written by Emil Venere. Note: Materials may be edited for content and length.


Journal Reference:

  1. Yang Xu, Ireneusz Miotkowski, Chang Liu, Jifa Tian, Hyoungdo Nam, Nasser Alidoust, Jiuning Hu, Chih-Kang Shih, M. Zahid Hasan, Yong P. Chen. Observation of topological surface state quantum Hall effect in an intrinsic three-dimensional topological insulator. Nature Physics, 2014; DOI: 10.1038/nphys3140

 

Purdue University. "'Topological insulators' promising for spintronics, quantum computers." ScienceDaily. ScienceDaily, 13 November 2014. <www.sciencedaily.com/releases/2014/11/141113195156.htm>.

Common cholesterol-fighting drug may prevent hysterectomies in women with uterine fibroids

 

November 13, 2014

University of Texas Medical Branch at Galveston

The cholesterol-lowering drug simvastatin inhibits the growth of human uterine fibroid tumors, researchers have discovered for the first time. Statins, such as simvastatin, are commonly prescribed to lower high cholesterol levels. Beyond these well-known cholesterol-lowering abilities, statins also combat certain tumors. Statins have previously been shown to have anti-tumor effects on breast, ovarian, prostate, colon, leukemia and lung cancers. The effect of statins on uterine fibroids was unknown.


Researchers at the University of Texas Medical Branch at Galveston, in collaboration with The University of Texas Health Science Center at Houston (UTHealth), Baylor College of Medicine and the Georgia Regents University, report for the first time that the cholesterol-lowering drug simvastatin inhibits the growth of human uterine fibroid tumors. These new data are published online and scheduled to appear in the January print edition of the Journal of Biological Chemistry.

Statins, such as simvastatin, are commonly prescribed to lower high cholesterol levels. Statins work by blocking an early step in cholesterol production.

Beyond these well-known cholesterol-lowering abilities, statins also combat certain tumors. Statins have previously been shown to have anti-tumor effects on breast, ovarian, prostate, colon, leukemia and lung cancers. The effect of statins on uterine fibroids was unknown.

"Non-cancerous uterine fibroids are the most common type of tumor in the female reproductive system, accounting for half of the 600,000 hysterectomies done annually in the U.S. Their estimated annual cost is up to $34 billion in the U.S. alone," said UTMB's Dr. Mostafa Borahay, assistant professor in the department of obstetrics and gynecology and lead author. "Despite this, the exact cause of these tumors is not well understood, as there are several genetic, familial and hormonal abnormalities linked with their development."

The study investigated the impact of simvastatin on human uterine fibroid cell growth. The researchers revealed that simvastatin impedes the growth of uterine fibroid tumor cells. The researchers also studied the way simvastatin works to suppress these tumors. Simvastatin was shown to inhibit ERK phosphorylation, which is a critical step in the molecular pathway that prompts the growth of new cells. In addition, simvastatin stops the progression of tumor cells that have already begun to grow and induces calcium-dependent cell death mechanisms in fibroid tumor cells.

"Taken together, this study has identified a novel pathway by which simvastatin induces the death of uterine fibroid tumor cells." said Darren Boehning, associate professor in the department of biochemistry and molecular biology at the UTHealth Medical School, adjunct professor in the department of neuroscience and cell biology at UTMB and member of The University of Texas Graduate School of Biomedical Sciences at Houston.

"The findings of this study are particularly significant; statins have been in clinical use for years so their safety profile is well known," said Dr. Borahay. "Having a safe medicine to treat these common tumors has been a goal for women and the medical community for a long time."

"The research team is currently studying the effects of statins in fibroid animal models and adopting nanotechnology to enhance the drug delivery to the tumor," said Chandrasekhar Yallampalli, professor in the department of obstetrics and gynecology at Baylor College of Medicine.


Story Source:

The above story is based on materials provided by University of Texas Medical Branch at Galveston. Note: Materials may be edited for content and length.


Journal Reference:

  1. M. A. Borahay, G. S. Kilic, C. Yallampalli, R. R. Snyder, G. D. V. Hankins, A. Al-Hendy, D. Boehning. Simvastatin Potently Induces Calcium-Dependent Apoptosis of Human Leiomyoma Cells. Journal of Biological Chemistry, 2014; DOI: 10.1074/jbc.M114.583575