Category Archives: News

Google Search for Innovation. Result: Israel.

Google to set up startup incubator in Israel

Search engine giant to endorse 20 initiatives at a time by providing office space and information, Internet, consultation, financial and legal services

Blogged from Ynet.
Assaf Gilad, Calcalist
Published: 11.14.11, 07:47 / Israel Business

Google is falling in line with other global companies and plans to establish a startup incubator for Israeli startup companies, scheduled to become operational next August.

Google will rent an entire floor at the Electra office tower in the heart of Tel Aviv. The initiative is scheduled to begin operating at the same time Google Israel headquarters and its R&D center move into the Electra tower as well.

The incubator will endorse 20 startups at a time which will rotate every few months. Google stresses that the technological incubator will be separate from the R&D center and operate as a community in its own right.

Google Israel will not invest in the companies in return for stock but it will assist them to procure loans and find guarantors.

Furthermore, Google will provide the startups with the utilities and infrastructure for their operations: Office space, meeting rooms, internet access, information services, tools and consultation from Google professionals, guidance from external bodies and experts as well as ancillary services such as legal, marketing and financial consultation.

The project will be headed by Amir Shavit, who is the company’s liaison with its developers in Israel, and Eyal Miller, head of business development at Google Israel.

According to head of R&D at Google Israel, Professor Yossi Matias, the incubator will welcome startups from various fields with an emphasis on open technologies, including from sectors which usually are not represented in Israel’s technology industry.

Google will establish a team that will work in cooperation with universities and colleges and most probably choose companies that can develop complementary products for Google’s products.

Recently a number of global companies have been establishing incubator-like initiatives, among them Red Hat, which announced last week it would launch a program to assist Israeli startup companies.

Other recently established initiatives include Genesis Fund’s Junction and Gil Ben Artzy’s UpWest Labs.

Microsoft also announced that it would establish together with the Technion an academic research center for the development of technological commerce technologies.

Israel’s Neuroscientists pool strengths for Alzheimers treatment

Avraham Pharmaceuticals raises $3m

Avraham Pharmaceuticals has begun a Phase II clinical trials of its treatment, which combines existing drugs from Teva and Novartis.

Blogged from Globes.

13 November 11 18:47, Gali Weinreb.

Avraham Pharmaceuticals Ltd., which is developing a treatment for Alzheimer’s disease, has raised $3 million. Eli Hurvitz’s Pontifax Fund, Clal Biotechnology Industries Ltd. (TASE: CBI), Yissum Technology Transfer Company of the Hebrew University of Jerusalem, and the Technion Research and Development Foundation have participated in the financing round. Prof. Marta Weinstock-Rosin of Hebrew University, the inventor of Exelon, made by Novartis AG (NYSE:NVS; LSE: NOV; SWX: NOVZ), also participated in the round.
Avraham Pharmaceuticals announced that it has begun Phase II clinical trials of its treatment, which is a new molecule in which components from two existing drugs are combined: Teva’s Azilect used to treat Parkinson’s disease, and Novartis’s Exelon used to treat Alzheimer’s disease.
The drug was developed by Teva for over ten years, but then returned to Yissum and the Technion because of patent considerations and the project was taking such a long time. Since then, the company has been re-established, has raised $9 million, and a few changes in the patent were made making it valid for a longer period of time. Teva has proven in clinical trials that the drug is safe and that it affects the body as expected, ie. causes a rise or fall in the level of chemicals associated with Alzheimer’s in the blood. The drug has not, however, reached the trial stage in which its benefit to real patients has been examined. Avraham Pharmaceuticals now has the responsibility to prove this.
In addition to its experiments concerning Alzheimer’s disease, Avraham Pharmaceuticals will soon begin clinical trials of a drug that treats mild cognitive impairment, which is thought to precede Alzheimer’s disease.
Yissum Technology has announced that its 30% stake in Avraham Pharmaceuticals (after the latest investment) will be transferred to a new holding company that it founded in the biotech field.
Sources inform “Globes” that besides Avraham Pharmaceuticals, the holding company will include six other companies that are currently conducting clinical trials: Tiltan Pharma, VCD, Autocas Bio, Lipicure, Algen Biopharmaceuticals and Novotyr Therapeutics. The holding company is called Integra and it is currently in the midst of a private financing round. Integra will be managed by Dr. Noa Shelach, a former Weizmann Institute Yeda manager, and CBI-Weizmann Institute Campus Bio project manager.

Published by Globes [online], Israel business news – www.globes-online.com – on November 13, 2011
© Copyright of Globes Publisher Itonut (1983) Ltd. 2011

Israel’s Neuroscientists pool strengths for Alzheimers treatment

Avraham Pharmaceuticals raises $3m

Avraham Pharmaceuticals has begun a Phase II clinical trials of its treatment, which combines existing drugs from Teva and Novartis.

Blogged from Globes.

13 November 11 18:47, Gali Weinreb.

Avraham Pharmaceuticals Ltd., which is developing a treatment for Alzheimer’s disease, has raised $3 million. Eli Hurvitz’s Pontifax Fund, Clal Biotechnology Industries Ltd. (TASE: CBI), Yissum Technology Transfer Company of the Hebrew University of Jerusalem, and the Technion Research and Development Foundation have participated in the financing round. Prof. Marta Weinstock-Rosin of Hebrew University, the inventor of Exelon, made by Novartis AG (NYSE:NVS; LSE: NOV; SWX: NOVZ), also participated in the round.
Avraham Pharmaceuticals announced that it has begun Phase II clinical trials of its treatment, which is a new molecule in which components from two existing drugs are combined: Teva’s Azilect used to treat Parkinson’s disease, and Novartis’s Exelon used to treat Alzheimer’s disease.
The drug was developed by Teva for over ten years, but then returned to Yissum and the Technion because of patent considerations and the project was taking such a long time. Since then, the company has been re-established, has raised $9 million, and a few changes in the patent were made making it valid for a longer period of time. Teva has proven in clinical trials that the drug is safe and that it affects the body as expected, ie. causes a rise or fall in the level of chemicals associated with Alzheimer’s in the blood. The drug has not, however, reached the trial stage in which its benefit to real patients has been examined. Avraham Pharmaceuticals now has the responsibility to prove this.
In addition to its experiments concerning Alzheimer’s disease, Avraham Pharmaceuticals will soon begin clinical trials of a drug that treats mild cognitive impairment, which is thought to precede Alzheimer’s disease.
Yissum Technology has announced that its 30% stake in Avraham Pharmaceuticals (after the latest investment) will be transferred to a new holding company that it founded in the biotech field.
Sources inform “Globes” that besides Avraham Pharmaceuticals, the holding company will include six other companies that are currently conducting clinical trials: Tiltan Pharma, VCD, Autocas Bio, Lipicure, Algen Biopharmaceuticals and Novotyr Therapeutics. The holding company is called Integra and it is currently in the midst of a private financing round. Integra will be managed by Dr. Noa Shelach, a former Weizmann Institute Yeda manager, and CBI-Weizmann Institute Campus Bio project manager.

Published by Globes [online], Israel business news – www.globes-online.com – on November 13, 2011
© Copyright of Globes Publisher Itonut (1983) Ltd. 2011

Robots and I





Prof. Moshe Shoham of the Faculty of Mechanical Engineering and the head of the Center for Manufacturing Systems and Robotics at the Department of Mechanical Engineering at the Technion speaks about the development of a medical micro-robot, a goalkeeper robot and what lies between them.

By Noam Bercovitz

If everything goes according to Prof. Moshe Shoham’s plan, come next year or so, at the opening of the Year of the Robot at MadaTech-The Israel National Museum of Science, a star from Israel’s National Football Association will challenge a robot goalkeeper, courtesy of the Technion, and try to beat him by kicking a penalty shot. Assuming that by then the development will have been completed, the robot will deflect the airborne ball, regardless of the human player’s talent and skill.
The robot goalkeeper comprises a video camera, a computer and a metal plate that is moved about at high speed by four engines positioned at the four corners of the goal. The plate is meant to get to the point at which it is estimated the ball will be coming and deflect it.
Shoham says that at this stage some of the robot’s systems have been completed and it can calculate where exactly the ball that is kicked will be heading. However, development is still required so that the plate will move fast enough to arrive at the exact point where it is needed. The technological challenge is not simple and the problem rests in identification, course estimation and reaction mechanics. The ball is in the air for about a half of a second after it is kicked and until it reaches the goal. During this period of time the robot must photograph the ball at several points along its course, and using this data in combination with the ball’s freefall, pinpoint where it will impact the goal line, and then accelerate and stop the “goal” at this point.
Shoham believes that his team will complete development in time. He is anxious not to miss the media opportunity to capture the attention of youngsters all over the country and get them interested in robotics and the activities at the Technion’s Robotics Institute, which Prof. Shoham heads, and which was recently set up, with the help of Leumi Bank. Prof. Shoham’s goal: to foster education and knowledge in the area of robotics in Israel.

Robotics Pioneers

Prof. Shoham is one of the pioneers of robotics in Israel and was a member of the team that greeted the first robot that arrived at the Technion in 1982. About a decade ago, Shoham launched a new area of robotics – medical robots, and today Mazor Surgical Technologies Ltd., which he set up together with the Technion, is one of the four leading companies in the world in this field.
When he entered the field of medical robots, Shoham first turned to medical centers in Israel and the world, asking them for proposals and requests to develop tools that would help them improve their work. His group received several ideas for implementation and at the end, focused on one product – a robot for back surgery, which enables surgeons to implant screws during spinal fusion operations. This surgery requires surgeons to position implants between vertebrae where the cartilage has been destroyed. Drilling the holes for the screws mandates precision positioning and is risky given the proximity to the central nervous system. The robot’s job is to guide the surgeon to the drilling site during the operation. Using the robot enables great precision and stability, minimal invasiveness, and as a result, a speedier recovery by the patient.
The robot, which is about the size of a human fist, lies on the patient’s back during the operation. It has passed all the clinical tests and has been authorized for use in operations in four countries: the U.S., Russia, Germany and Israel. Today, about 25 systems worldwide have been used in about 1,000 operations. In regular spinal fusion surgery, 5% of patients suffer from different levels of nerve damage, but in operations that have used Shoham’s robot, no permanent  nerve damage at all has been reported.
About a half a million spinal fusion operations take place annually all over the globe, so the marketing potential of the device is indeed huge. However, Prof. Shoham conditions this optimism and explains that using the robot changes the way surgeons usually work, and therefore, he estimates that increased use of the robot will be gradual and a certain market education will be required.  In this framework, ISRACAS is held annually in Israel. Prof. Shoham is one of the organizers of this symposium in which engineers, researchers and doctors from different fields meet to discuss the integration of computers and robots in medicine.

The future in miniature

The next challenge in medical robots is to create a micro-robot that can be introduced into the human body and carry out a series of tasks. The concept is old and immortalized in Fantastic Voyage, a movie that came out in 1966. Only today, however, are there technologies that allow the illusion to become reality.
Shoham and his team – Oded Salomon and Dr. Nir Shvalb – built a micro-robot called Virob, seen here in a CNN news report. The robot is about a millimeter wide and 4 mm long. It is designed to move  inside blood vessels, tissue and even within the lungs and it is designed so that it can carry out a series of medical activities.
Among others, it is expected that these robots will be able to carry medication, releasing it at a precise spot, so that, for example, anti-cancer drugs can be released inside a tumor itself. In addition, these robots can clean drainage pipes that are implanted in surgery and become blocked, can perform delicate surgery, biopsies and more.
Because of its small size, the Virob does not carry an autonomous power source and is guided by a control that identifies its location using imaging equipment. Prof. Shoham explains that labs all over the world are working on micro robots that can travel inside blood vessels but that these kinds of robots may be particularly difficult to develop due to the strong flow of blood within the vessels. Likewise, a robot of this type is meant to grab onto the blood vessel walls in order to advance or remain in place and there is a risk that it will peel off layers of material that have become attached to the walls and thus cause this material to move to places where it may plug the vessels and cause a cerebrovascular accident (CVA).
The miniaturization itself raises an array of problems. For instance, for bodies that are measured in millimeters, water appears as viscous as honey. This phenomenon is defined in flow mechanics through Reynolds numbers, which express the relation between the inertial forces of the body and the friction forces acting between it and the liquid surrounding it. The smaller the body is, the smaller are the inertial forces and the viscosity effect grows and makes movement difficult.
Shoham’s doctoral student, Gabor Kosa, now a post doc in ETH Zurich  has shown that for micro robots that are meant to advance by using a swimming mechanism, there is no need to develop a mechanism that includes fins (as fish have). The solution is a flagella mechanism that creates an advancing wave, similar to what miniature-sized creatures use in nature.

A robot for every purpose

On the entrance level of the Robotics Center, one can see the goalkeeper robot, and further on lies an area for “robotraffic” in which high school students build robotic cars that move autonomously along a course that simulates an urban landscape. Nonetheless, one’s attention is captured by a three-legged, gangly and odd-looking robot, which turns out to be a prototype of a painter robot, that is, a robot designed to paint walls. It is difficult not to imagine a world full of painter robots working alongside plasterer robots, gardener robots and heavens knows what else – a perfect world in which everyone works without any problems and without “I’ll be there first thing in the morning” and not showing up. On second thought, though, to paint a wall once every few years, no one will buy a robot. The only person who would buy such a robot would be a painter, and then most likely, at the end of the negotiations he’ll still warmly promise: “I’ll be at your home first thing in the morning with my robot”…

Robots and I





Prof. Moshe Shoham of the Faculty of Mechanical Engineering and the head of the Center for Manufacturing Systems and Robotics at the Department of Mechanical Engineering at the Technion speaks about the development of a medical micro-robot, a goalkeeper robot and what lies between them.

By Noam Bercovitz

If everything goes according to Prof. Moshe Shoham’s plan, come next year or so, at the opening of the Year of the Robot at MadaTech-The Israel National Museum of Science, a star from Israel’s National Football Association will challenge a robot goalkeeper, courtesy of the Technion, and try to beat him by kicking a penalty shot. Assuming that by then the development will have been completed, the robot will deflect the airborne ball, regardless of the human player’s talent and skill.
The robot goalkeeper comprises a video camera, a computer and a metal plate that is moved about at high speed by four engines positioned at the four corners of the goal. The plate is meant to get to the point at which it is estimated the ball will be coming and deflect it.
Shoham says that at this stage some of the robot’s systems have been completed and it can calculate where exactly the ball that is kicked will be heading. However, development is still required so that the plate will move fast enough to arrive at the exact point where it is needed. The technological challenge is not simple and the problem rests in identification, course estimation and reaction mechanics. The ball is in the air for about a half of a second after it is kicked and until it reaches the goal. During this period of time the robot must photograph the ball at several points along its course, and using this data in combination with the ball’s freefall, pinpoint where it will impact the goal line, and then accelerate and stop the “goal” at this point.
Shoham believes that his team will complete development in time. He is anxious not to miss the media opportunity to capture the attention of youngsters all over the country and get them interested in robotics and the activities at the Technion’s Robotics Institute, which Prof. Shoham heads, and which was recently set up, with the help of Leumi Bank. Prof. Shoham’s goal: to foster education and knowledge in the area of robotics in Israel.

Robotics Pioneers

Prof. Shoham is one of the pioneers of robotics in Israel and was a member of the team that greeted the first robot that arrived at the Technion in 1982. About a decade ago, Shoham launched a new area of robotics – medical robots, and today Mazor Surgical Technologies Ltd., which he set up together with the Technion, is one of the four leading companies in the world in this field.
When he entered the field of medical robots, Shoham first turned to medical centers in Israel and the world, asking them for proposals and requests to develop tools that would help them improve their work. His group received several ideas for implementation and at the end, focused on one product – a robot for back surgery, which enables surgeons to implant screws during spinal fusion operations. This surgery requires surgeons to position implants between vertebrae where the cartilage has been destroyed. Drilling the holes for the screws mandates precision positioning and is risky given the proximity to the central nervous system. The robot’s job is to guide the surgeon to the drilling site during the operation. Using the robot enables great precision and stability, minimal invasiveness, and as a result, a speedier recovery by the patient.
The robot, which is about the size of a human fist, lies on the patient’s back during the operation. It has passed all the clinical tests and has been authorized for use in operations in four countries: the U.S., Russia, Germany and Israel. Today, about 25 systems worldwide have been used in about 1,000 operations. In regular spinal fusion surgery, 5% of patients suffer from different levels of nerve damage, but in operations that have used Shoham’s robot, no permanent  nerve damage at all has been reported.
About a half a million spinal fusion operations take place annually all over the globe, so the marketing potential of the device is indeed huge. However, Prof. Shoham conditions this optimism and explains that using the robot changes the way surgeons usually work, and therefore, he estimates that increased use of the robot will be gradual and a certain market education will be required.  In this framework, ISRACAS is held annually in Israel. Prof. Shoham is one of the organizers of this symposium in which engineers, researchers and doctors from different fields meet to discuss the integration of computers and robots in medicine.

The future in miniature

The next challenge in medical robots is to create a micro-robot that can be introduced into the human body and carry out a series of tasks. The concept is old and immortalized in Fantastic Voyage, a movie that came out in 1966. Only today, however, are there technologies that allow the illusion to become reality.
Shoham and his team – Oded Salomon and Dr. Nir Shvalb – built a micro-robot called Virob, seen here in a CNN news report. The robot is about a millimeter wide and 4 mm long. It is designed to move  inside blood vessels, tissue and even within the lungs and it is designed so that it can carry out a series of medical activities.
Among others, it is expected that these robots will be able to carry medication, releasing it at a precise spot, so that, for example, anti-cancer drugs can be released inside a tumor itself. In addition, these robots can clean drainage pipes that are implanted in surgery and become blocked, can perform delicate surgery, biopsies and more.
Because of its small size, the Virob does not carry an autonomous power source and is guided by a control that identifies its location using imaging equipment. Prof. Shoham explains that labs all over the world are working on micro robots that can travel inside blood vessels but that these kinds of robots may be particularly difficult to develop due to the strong flow of blood within the vessels. Likewise, a robot of this type is meant to grab onto the blood vessel walls in order to advance or remain in place and there is a risk that it will peel off layers of material that have become attached to the walls and thus cause this material to move to places where it may plug the vessels and cause a cerebrovascular accident (CVA).
The miniaturization itself raises an array of problems. For instance, for bodies that are measured in millimeters, water appears as viscous as honey. This phenomenon is defined in flow mechanics through Reynolds numbers, which express the relation between the inertial forces of the body and the friction forces acting between it and the liquid surrounding it. The smaller the body is, the smaller are the inertial forces and the viscosity effect grows and makes movement difficult.
Shoham’s doctoral student, Gabor Kosa, now a post doc in ETH Zurich  has shown that for micro robots that are meant to advance by using a swimming mechanism, there is no need to develop a mechanism that includes fins (as fish have). The solution is a flagella mechanism that creates an advancing wave, similar to what miniature-sized creatures use in nature.

A robot for every purpose

On the entrance level of the Robotics Center, one can see the goalkeeper robot, and further on lies an area for “robotraffic” in which high school students build robotic cars that move autonomously along a course that simulates an urban landscape. Nonetheless, one’s attention is captured by a three-legged, gangly and odd-looking robot, which turns out to be a prototype of a painter robot, that is, a robot designed to paint walls. It is difficult not to imagine a world full of painter robots working alongside plasterer robots, gardener robots and heavens knows what else – a perfect world in which everyone works without any problems and without “I’ll be there first thing in the morning” and not showing up. On second thought, though, to paint a wall once every few years, no one will buy a robot. The only person who would buy such a robot would be a painter, and then most likely, at the end of the negotiations he’ll still warmly promise: “I’ll be at your home first thing in the morning with my robot”…

Newer birth control pills again tied to blood clots

By Amy Norton
NEW YORK | Mon Nov 7, 2011 6:12pm EST


(Reuters Health) 

A study out Monday adds to evidence that a newer type of birth control pill may carry a higher risk of blood clots than older versions.

The study, of 330,000 Israeli women, found that those who used birth control pills with the hormone drospirenone — found in brand-names like Yaz and Yasmin — were more likely than other Pill users to develop blood clots called venous thromboembolisms.

Overall, there were just over six cases of venous blood clots per 10,000 Pill users each year in the study. But the risk was 43 percent to 65 percent higher with drospirenone-containing pills, compared with older, so-called second- and third-generation pills.

That increased risk would translate to about eight to 10 clots per 10,000 women per year.

Venous thromboembolisms most commonly form in the leg veins, but can travel to the lungs, where they cause a pulmonary embolism.

It has long been known that women on the Pill have a small, although higher-than-average risk of blood clots. But recent studies have suggested the risk may be relatively higher with pills containing drospirenone — which include Yaz, Yasmin, Beyaz and Safyral, along with their generic equivalents.

“It’s important to remember that all oral contraceptives are associated with a risk of blood clots,” said Dr. Susan Solymoss of McGill University in Montreal, who wrote an editorial published with the study in the Canadian Medical Association Journal.

She suggested that women who are considering their birth control options have an “open discussion” with their doctor on the risks and benefits of various contraceptives.

One key thing to consider, Solymoss said, is whether you have other risk factors for blood clots, like obesity or high blood pressure. It may make sense to avoid the Pill formulation with the highest clot risk.

Naomi Gronich, MD
Dr. Naomi Gronich, of the National Israeli Cancer Control Center

Dr. Naomi Gronich, who led the new study, agreed.

Age is another factor, according to Gronich, of the Technion-Israel Institute of Technology in Haifa. In this study, she told Reuters Health in an email, blood clot risk gradually increased after the age of 25. (Women who are older than 35 and smoke — another clot risk factor — are already advised to avoid birth control pills in general.)

For any woman, avoiding birth control pills altogether is an option. However, Solymoss said, other contraceptives may not be as effective at preventing pregnancy. “And pregnancy is a bigger risk for blood clots,” she pointed out.

For every 10,000 women who become pregnant in a year, about 20 will develop venous blood clots. That compares with the rate of six women per 10,000 among Pill users overall and three in 10,000 women who are not on the pill.

Earlier, industry-funded studies of Yasmin, Yaz and related pills had indicated no elevated risk versus other Pill formulations. But several studies since 2009 have linked the newer contraceptives to relatively higher blood clot risks.

Just last week, the U.S. Food and Drug Administration (FDA) released the latest update of its own investigation of the question.

Based on records for more than 800,000 U.S. women who used the Pill between 2001 and 2007, the agency found that the risk of blood clots was higher among those on drospirenone-containing pills.

The FDA said the risk translated into about 10 cases of blood clots for every 10,000 women using the newer pills in a year — compared with six per 10,000 among women using older Pill versions.

The agency is set to discuss the issue at a meeting on December 8.

Bayer HealthCare, which makes Yaz, Yasmin, Beyaz and Safyral, said it was still reviewing the new study from Israel and could not comment on it.

But in an email to Reuters Health, Bayer pointed to its own post-marketing studies that have failed to turn up a heightened clot risk with drospirenone contraceptives versus older ones.

Drospirenone is a progestin, a synthetic version of the hormone progesterone.

The different “generations” of the Pill vary in which progestin they use. Second-generation pills contain the progestins levonorgestrel or norgestrel. Because they can cause side effects like acne and body-hair growth, the third-generation of progestins were developed in the 1980s to lower the odds of those problems.

But some studies later found that third-generation pills carried a higher blood clot risk than their predecessors — suggesting that risk is influenced by the progestins in the formulation.

Yasmin arrived on the scene a decade ago. Its progestin, drospirenone, was different from older ones, which are derived from testosterone. And the “Yaz” products have been promoted as causing less weight gain and swelling than older-generation pills.

For women seeking birth control, Yaz and Beyaz can also be used to manage moderate acne or so-called premenstrual dysphoric disorder — a severe form of PMS that causes physical symptoms and serious mood swings before a woman’s period.

After its approval in 2006, Yaz quickly became the top-selling birth control pill in the U.S. — though its sales have dropped off in the past couple years (partly because of generic competitors). Worldwide, Yaz and its sister pills had sales of about $1.07 billion in the first nine months of this year according to company financial statements.

For women who have already been using Yaz or related pills without a problem, there may be little reason to switch, according to both Solymoss and Gronich.

In this study, Gronich pointed out, blood clot risk was greatest in the first few months of use.

“A woman already on drospirenone for four months probably shouldn’t be more worried than if she (were on) another second- or third-generation contraceptive,” Gronich said.

SOURCE: bit.ly/qB3Mku CMAJ, online November 7, 2011.

Newer birth control pills again tied to blood clots

By Amy Norton
NEW YORK | Mon Nov 7, 2011 6:12pm EST


(Reuters Health) 

A study out Monday adds to evidence that a newer type of birth control pill may carry a higher risk of blood clots than older versions.

The study, of 330,000 Israeli women, found that those who used birth control pills with the hormone drospirenone — found in brand-names like Yaz and Yasmin — were more likely than other Pill users to develop blood clots called venous thromboembolisms.

Overall, there were just over six cases of venous blood clots per 10,000 Pill users each year in the study. But the risk was 43 percent to 65 percent higher with drospirenone-containing pills, compared with older, so-called second- and third-generation pills.

That increased risk would translate to about eight to 10 clots per 10,000 women per year.

Venous thromboembolisms most commonly form in the leg veins, but can travel to the lungs, where they cause a pulmonary embolism.

It has long been known that women on the Pill have a small, although higher-than-average risk of blood clots. But recent studies have suggested the risk may be relatively higher with pills containing drospirenone — which include Yaz, Yasmin, Beyaz and Safyral, along with their generic equivalents.

“It’s important to remember that all oral contraceptives are associated with a risk of blood clots,” said Dr. Susan Solymoss of McGill University in Montreal, who wrote an editorial published with the study in the Canadian Medical Association Journal.

She suggested that women who are considering their birth control options have an “open discussion” with their doctor on the risks and benefits of various contraceptives.

One key thing to consider, Solymoss said, is whether you have other risk factors for blood clots, like obesity or high blood pressure. It may make sense to avoid the Pill formulation with the highest clot risk.

Naomi Gronich, MD
Dr. Naomi Gronich, of the National Israeli Cancer Control Center

Dr. Naomi Gronich, who led the new study, agreed.

Age is another factor, according to Gronich, of the Technion-Israel Institute of Technology in Haifa. In this study, she told Reuters Health in an email, blood clot risk gradually increased after the age of 25. (Women who are older than 35 and smoke — another clot risk factor — are already advised to avoid birth control pills in general.)

For any woman, avoiding birth control pills altogether is an option. However, Solymoss said, other contraceptives may not be as effective at preventing pregnancy. “And pregnancy is a bigger risk for blood clots,” she pointed out.

For every 10,000 women who become pregnant in a year, about 20 will develop venous blood clots. That compares with the rate of six women per 10,000 among Pill users overall and three in 10,000 women who are not on the pill.

Earlier, industry-funded studies of Yasmin, Yaz and related pills had indicated no elevated risk versus other Pill formulations. But several studies since 2009 have linked the newer contraceptives to relatively higher blood clot risks.

Just last week, the U.S. Food and Drug Administration (FDA) released the latest update of its own investigation of the question.

Based on records for more than 800,000 U.S. women who used the Pill between 2001 and 2007, the agency found that the risk of blood clots was higher among those on drospirenone-containing pills.

The FDA said the risk translated into about 10 cases of blood clots for every 10,000 women using the newer pills in a year — compared with six per 10,000 among women using older Pill versions.

The agency is set to discuss the issue at a meeting on December 8.

Bayer HealthCare, which makes Yaz, Yasmin, Beyaz and Safyral, said it was still reviewing the new study from Israel and could not comment on it.

But in an email to Reuters Health, Bayer pointed to its own post-marketing studies that have failed to turn up a heightened clot risk with drospirenone contraceptives versus older ones.

Drospirenone is a progestin, a synthetic version of the hormone progesterone.

The different “generations” of the Pill vary in which progestin they use. Second-generation pills contain the progestins levonorgestrel or norgestrel. Because they can cause side effects like acne and body-hair growth, the third-generation of progestins were developed in the 1980s to lower the odds of those problems.

But some studies later found that third-generation pills carried a higher blood clot risk than their predecessors — suggesting that risk is influenced by the progestins in the formulation.

Yasmin arrived on the scene a decade ago. Its progestin, drospirenone, was different from older ones, which are derived from testosterone. And the “Yaz” products have been promoted as causing less weight gain and swelling than older-generation pills.

For women seeking birth control, Yaz and Beyaz can also be used to manage moderate acne or so-called premenstrual dysphoric disorder — a severe form of PMS that causes physical symptoms and serious mood swings before a woman’s period.

After its approval in 2006, Yaz quickly became the top-selling birth control pill in the U.S. — though its sales have dropped off in the past couple years (partly because of generic competitors). Worldwide, Yaz and its sister pills had sales of about $1.07 billion in the first nine months of this year according to company financial statements.

For women who have already been using Yaz or related pills without a problem, there may be little reason to switch, according to both Solymoss and Gronich.

In this study, Gronich pointed out, blood clot risk was greatest in the first few months of use.

“A woman already on drospirenone for four months probably shouldn’t be more worried than if she (were on) another second- or third-generation contraceptive,” Gronich said.

SOURCE: bit.ly/qB3Mku CMAJ, online November 7, 2011.

Nanocrystals cheaper to catch Solar Power

Technion researchers polarize a nanometric-sized crystal by changing the composition of surrounding molecules. In the future, this could improve efficiency of 3G solar photovoltaic cells.

Technion researchers from the Sara and Moshe Zisapel Nano-Electronics Center successfully polarized a nanocrystal by changing the composition of the molecules surrounding it. This finding was just published in the prestigious scientific journal, Nature Materials.
Doctoral student, Nir Yaacobi-Gross, under the supervision of the head of the Zisapel Center, Prof. Nir Tessler, exchanged some of the molecules attached to the surface of the nanometric-sized crystal with different molecules whose chemical or atomic group anchoring them to the crystal’s surface was different. The researchers discovered that the lack of uniformity in the molecular covering caused the crystal to partially polarize. The research group led by Prof. Asher Schmidt of the Schulich Faculty of Chemistry also contributed to understanding the molecule-crystal connection process. 
As the paper shows, this discovery will likely have far-reaching consequences in as far as significantly improving the efficiency of solar cells. These are 3G photovoltaic cells that are being intensively developed around the world due to their relatively low cost (and therefore, their suitability for mass production). The solar cells used today are mostly silicon based and are expensive both in terms of production costs and in the energy required to manufacture them. The discovery by the Technion researchers changes the ability of nanocrystals to receive or give electrons to material surrounding it, which essentially means that they have changed the crystal’s characteristics.


 “Nano crystals of different materials are used to develop new light sources and solar cells.”

 “Nano crystals of different materials are used to develop new light sources and solar cells,” explains Prof. Tessler. “The nanocrystal is produced in a solution, is about 2-8 nanometers in diameter and covered by an organic molecule that stabilizes it and allows the nanocrystal to be dissolved in the proper fluids. In this case the solution is actually an ink containing opto-electronic materials and hence today there is a lot of activity going on around the world designed to integrate these materials in the field of printed electronics that will produce sheets of lights or sheets of solar cells.”
Prof. Nir Tessler
The researchers emphasize that in order to enable the integration of these new materials in opto-electronic devices, it is important to achieve control over their characteristics so as to be able to relate to them as building blocks to be used in engineering an advanced device.
In the early stages of the research in the Zisapel Center, it was found that organic molecules could be used to move the relative location of the particle’s level of energy. What surprised the researchers at this stage was the fact that the most important factor in this move was the atom found at the end of the molecule, which connects to the nanocrystal. The researchers showed that not only can the energy levels of the nanocrystal be moved relative to materials or to other nanocrystals, but that it was possible to change areas of this tiny crystal (approximately 4 nanometers in size) relative to other areas. “This study showed that we had a crystal that is inorganic but surrounded by organic molecules such that it constitutes an entity that is a hybrid of organic and inorganic material,” stresses Prof. Tessler. This distinction requires a change in the theoretical approaches that analyze these crystals and ignore their organic part (the organic molecules attached to them), mostly because “it just contributes to creating a solution.”

Nanocrystals cheaper to catch Solar Power

Technion researchers polarize a nanometric-sized crystal by changing the composition of surrounding molecules. In the future, this could improve efficiency of 3G solar photovoltaic cells.

Technion researchers from the Sara and Moshe Zisapel Nano-Electronics Center successfully polarized a nanocrystal by changing the composition of the molecules surrounding it. This finding was just published in the prestigious scientific journal, Nature Materials.
Doctoral student, Nir Yaacobi-Gross, under the supervision of the head of the Zisapel Center, Prof. Nir Tessler, exchanged some of the molecules attached to the surface of the nanometric-sized crystal with different molecules whose chemical or atomic group anchoring them to the crystal’s surface was different. The researchers discovered that the lack of uniformity in the molecular covering caused the crystal to partially polarize. The research group led by Prof. Asher Schmidt of the Schulich Faculty of Chemistry also contributed to understanding the molecule-crystal connection process. 
As the paper shows, this discovery will likely have far-reaching consequences in as far as significantly improving the efficiency of solar cells. These are 3G photovoltaic cells that are being intensively developed around the world due to their relatively low cost (and therefore, their suitability for mass production). The solar cells used today are mostly silicon based and are expensive both in terms of production costs and in the energy required to manufacture them. The discovery by the Technion researchers changes the ability of nanocrystals to receive or give electrons to material surrounding it, which essentially means that they have changed the crystal’s characteristics.


 “Nano crystals of different materials are used to develop new light sources and solar cells.”

 “Nano crystals of different materials are used to develop new light sources and solar cells,” explains Prof. Tessler. “The nanocrystal is produced in a solution, is about 2-8 nanometers in diameter and covered by an organic molecule that stabilizes it and allows the nanocrystal to be dissolved in the proper fluids. In this case the solution is actually an ink containing opto-electronic materials and hence today there is a lot of activity going on around the world designed to integrate these materials in the field of printed electronics that will produce sheets of lights or sheets of solar cells.”
Prof. Nir Tessler
The researchers emphasize that in order to enable the integration of these new materials in opto-electronic devices, it is important to achieve control over their characteristics so as to be able to relate to them as building blocks to be used in engineering an advanced device.
In the early stages of the research in the Zisapel Center, it was found that organic molecules could be used to move the relative location of the particle’s level of energy. What surprised the researchers at this stage was the fact that the most important factor in this move was the atom found at the end of the molecule, which connects to the nanocrystal. The researchers showed that not only can the energy levels of the nanocrystal be moved relative to materials or to other nanocrystals, but that it was possible to change areas of this tiny crystal (approximately 4 nanometers in size) relative to other areas. “This study showed that we had a crystal that is inorganic but surrounded by organic molecules such that it constitutes an entity that is a hybrid of organic and inorganic material,” stresses Prof. Tessler. This distinction requires a change in the theoretical approaches that analyze these crystals and ignore their organic part (the organic molecules attached to them), mostly because “it just contributes to creating a solution.”

Technion Nanocrystals for Solar Power

Technion researchers polarize a nanometric-sized crystal by changing the composition of surrounding molecules. In the future, this could improve efficiency of 3G solar photovoltaic cells.

Technion researchers from the Sara and Moshe Zisapel Nano-Electronics Center successfully polarized a nanocrystal by changing the composition of the molecules surrounding it. This finding was just published in the prestigious scientific journal, Nature Materials.
Doctoral student, Nir Yaacobi-Gross, under the supervision of the head of the Zisapel Center, Prof. Nir Tessler, exchanged some of the molecules attached to the surface of the nanometric-sized crystal with different molecules whose chemical or atomic group anchoring them to the crystal’s surface was different. The researchers discovered that the lack of uniformity in the molecular covering caused the crystal to partially polarize. The research group led by Prof. Asher Schmidt of the Schulich Faculty of Chemistry also contributed to understanding the molecule-crystal connection process. 
As the paper shows, this discovery will likely have far-reaching consequences in as far as significantly improving the efficiency of solar cells. These are 3G photovoltaic cells that are being intensively developed around the world due to their relatively low cost (and therefore, their suitability for mass production). The solar cells used today are mostly silicon based and are expensive both in terms of production costs and in the energy required to manufacture them. The discovery by the Technion researchers changes the ability of nanocrystals to receive or give electrons to material surrounding it, which essentially means that they have changed the crystal’s characteristics.


 “Nano crystals of different materials are used to develop new light sources and solar cells.”

 “Nano crystals of different materials are used to develop new light sources and solar cells,” explains Prof. Tessler. “The nanocrystal is produced in a solution, is about 2-8 nanometers in diameter and covered by an organic molecule that stabilizes it and allows the nanocrystal to be dissolved in the proper fluids. In this case the solution is actually an ink containing opto-electronic materials and hence today there is a lot of activity going on around the world designed to integrate these materials in the field of printed electronics that will produce sheets of lights or sheets of solar cells.”
Prof. Nir Tessler
The researchers emphasize that in order to enable the integration of these new materials in opto-electronic devices, it is important to achieve control over their characteristics so as to be able to relate to them as building blocks to be used in engineering an advanced device.
In the early stages of the research in the Zisapel Center, it was found that organic molecules could be used to move the relative location of the particle’s level of energy. What surprised the researchers at this stage was the fact that the most important factor in this move was the atom found at the end of the molecule, which connects to the nanocrystal. The researchers showed that not only can the energy levels of the nanocrystal be moved relative to materials or to other nanocrystals, but that it was possible to change areas of this tiny crystal (approximately 4 nanometers in size) relative to other areas. “This study showed that we had a crystal that is inorganic but surrounded by organic molecules such that it constitutes an entity that is a hybrid of organic and inorganic material,” stresses Prof. Tessler. This distinction requires a change in the theoretical approaches that analyze these crystals and ignore their organic part (the organic molecules attached to them), mostly because “it just contributes to creating a solution.”