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A Robotic Review from Israel

Robotics is the branch of technology that deals with the design, construction, operation and application of robots and computer systems for their control, sensory feedback, and information processing. These technologies deal with automated machines that can take the place of humans, in hazardous or manufacturing processes, or simply just resemble humans. Many of today’s robots are inspired by nature contributing to the field of bio-inspired robotics.
Watch robots come to life with this New Year Hip Hop greeting from Technion to its friends and colleagues around the world.
The creation of machines that could operate autonomously dates back to classical times, but research into the functionality and potential uses of robots did not grow substantially until the 20th century. Throughout history, robotics has been often seen to mimic human behavior, and often manage tasks in a similar fashion. Today, robotics is a rapidly growing field, as we continue to research, design, and build new robots that serve various practical purposes, whether domestically, commercially, or in search and rescue.
In 2012, Reuters reported that Intel will be collaborating with Technion scientists in research that could yield devices that even mimic the human brain by 2014 or 2015.


Many of the robotic solutions emerging around the world today can save lives, such as the micro robot marketed by the company Mazor, founded out of innovations from the laboratory of Technion Prof. Moshe Shoham. Yet beyond the first frontier of research, robots also offer a great way to inspire the upcoming generation with an interest in technology and ingenuity. 


These future young engineers can be seen below receiving a class from RoboThespian™. As its name implies, RoboThespian is a dramatic actor robot complete with gestures, facial expressions and flirtatious eyes. This experimental live lesson was given in the framework of the project conducted by Prof. Igor Verner of the Technion’s Department of Education in Technology and Science and Dr. Takuya Hashimoto of Tokyo University of Science together with Alex Polishuk and Niv Krainer of MadaTech and Technion. RoboThespian™, produced by “Engineered Arts” of the UK, was bought two years ago by MadaTech for the robotics exhibition held there. 
Watch the video below to see some of the Technion’s other robots in action. Students and Faculty members from Mechanical Engineering, Electrical Engineering and Computer Science create these amazing robots in the Biorobotics and Biomechanics, Control and Robotic and Intelligent Systems laboratories.

A Robotic Review from Israel

Robotics is the branch of technology that deals with the design, construction, operation and application of robots and computer systems for their control, sensory feedback, and information processing. These technologies deal with automated machines that can take the place of humans, in hazardous or manufacturing processes, or simply just resemble humans. Many of today’s robots are inspired by nature contributing to the field of bio-inspired robotics.
Watch robots come to life with this New Year Hip Hop greeting from Technion to its friends and colleagues around the world.
The creation of machines that could operate autonomously dates back to classical times, but research into the functionality and potential uses of robots did not grow substantially until the 20th century. Throughout history, robotics has been often seen to mimic human behavior, and often manage tasks in a similar fashion. Today, robotics is a rapidly growing field, as we continue to research, design, and build new robots that serve various practical purposes, whether domestically, commercially, or in search and rescue.
In 2012, Reuters reported that Intel will be collaborating with Technion scientists in research that could yield devices that even mimic the human brain by 2014 or 2015.


Many of the robotic solutions emerging around the world today can save lives, such as the micro robot marketed by the company Mazor, founded out of innovations from the laboratory of Technion Prof. Moshe Shoham. Yet beyond the first frontier of research, robots also offer a great way to inspire the upcoming generation with an interest in technology and ingenuity. 


These future young engineers can be seen below receiving a class from RoboThespian™. As its name implies, RoboThespian is a dramatic actor robot complete with gestures, facial expressions and flirtatious eyes. This experimental live lesson was given in the framework of the project conducted by Prof. Igor Verner of the Technion’s Department of Education in Technology and Science and Dr. Takuya Hashimoto of Tokyo University of Science together with Alex Polishuk and Niv Krainer of MadaTech and Technion. RoboThespian™, produced by “Engineered Arts” of the UK, was bought two years ago by MadaTech for the robotics exhibition held there. 
Watch the video below to see some of the Technion’s other robots in action. Students and Faculty members from Mechanical Engineering, Electrical Engineering and Computer Science create these amazing robots in the Biorobotics and Biomechanics, Control and Robotic and Intelligent Systems laboratories.

A new year – and the robots are ready to party!

The Jewish year of 
~5773~
Geeks are boring? NO way. Nobel Laureates live in ivory towers? University presidents are inaccessible? Perhaps you should ask Technion President Prof. Peretz Lavie for some Hip Hop.
Join the entire Technion family and the world community of lovers of education, science and technology with some of the hottest robots from Technion – Israel Institute of Technology as they strut their stuff to a hip-hop cover of the traditional Jewish song, Shana Tova, or happy new year. Save it and share it with children and loved ones everywhere as a special new year’s greeting!




Bonne année, З Новим роком, نیا سال مبارک ہو, Yeni iliniz mübarək, Buon anno, Hamingjusamur Nýtt Ár, Athbhliain faoi mhaise daoibh, Gëzuar Vitin e Ri, Head uut aastat, Bonan Novjaron, Честита Нова Година, З Новым годам, শুভ নববর্ষ, გილოცავთ

 ახალ წელს, હેપ્પી ન્યુ યર, Feliz ano, Glückliches neues Jahr,
Godt Nytår. Gelukkig Nieuwjaar, नया साल मुबारक, Blwyddyn Newydd Dda, Chúc mừng năm mới, புத்தாண்டு, Yeni Yılınız Kutlu Olsun, హ్యాపీ న్యూ ఇయర్, Ευτυχισμένο το Νέο Έτος, מזל ניו יאָר, 明けましておめでとうございます, Laimīgu Jauno gadu, Felix Novus Annus, Naujųjų Metų, Selamat Tahun Baru, Godt Nyttår, Heri ya Mwaka Mpya, 新年好, Srečno novo leto, Šťastný Nový Rok, Feliz Año Nuevo, Срећна Нова Година, سنة جديدة سعيدة, Manigong Bagong Taon, Onnellista uutta vuotta, سال نو مبارک, Šťastný Nový Rok, Bonne année, 새해 복 많이 받으세요, Feliç Any Nou, La mulți ani, С Новым годом, Gott Nytt År, สวัสดีปีใหม่!!!!!!!!!!!

A new year – and the robots are ready to party!

The Jewish year of 
~5773~
Geeks are boring? NO way. Nobel Laureates live in ivory towers? University presidents are inaccessible? Perhaps you should ask Technion President Prof. Peretz Lavie for some Hip Hop.
Join the entire Technion family and the world community of lovers of education, science and technology with some of the hottest robots from Technion – Israel Institute of Technology as they strut their stuff to a hip-hop cover of the traditional Jewish song, Shana Tova, or happy new year. Save it and share it with children and loved ones everywhere as a special new year’s greeting!




Bonne année, З Новим роком, نیا سال مبارک ہو, Yeni iliniz mübarək, Buon anno, Hamingjusamur Nýtt Ár, Athbhliain faoi mhaise daoibh, Gëzuar Vitin e Ri, Head uut aastat, Bonan Novjaron, Честита Нова Година, З Новым годам, শুভ নববর্ষ, გილოცავთ

 ახალ წელს, હેપ્પી ન્યુ યર, Feliz ano, Glückliches neues Jahr,
Godt Nytår. Gelukkig Nieuwjaar, नया साल मुबारक, Blwyddyn Newydd Dda, Chúc mừng năm mới, புத்தாண்டு, Yeni Yılınız Kutlu Olsun, హ్యాపీ న్యూ ఇయర్, Ευτυχισμένο το Νέο Έτος, מזל ניו יאָר, 明けましておめでとうございます, Laimīgu Jauno gadu, Felix Novus Annus, Naujųjų Metų, Selamat Tahun Baru, Godt Nyttår, Heri ya Mwaka Mpya, 新年好, Srečno novo leto, Šťastný Nový Rok, Feliz Año Nuevo, Срећна Нова Година, سنة جديدة سعيدة, Manigong Bagong Taon, Onnellista uutta vuotta, سال نو مبارک, Šťastný Nový Rok, Bonne année, 새해 복 많이 받으세요, Feliç Any Nou, La mulți ani, С Новым годом, Gott Nytt År, สวัสดีปีใหม่!!!!!!!!!!!

Fighting Superbugs

By Vincent Zurawski, PhD

Iron Chelator-Based Neurodegenerative Drug for Treatment of Wound Infections and MDR Bacteria

Occasionally, a chance alignment of circumstances can lead to an unexpected and highly productive outcome, one with the potential to induce a sea change in a particular field of endeavor. A novel small molecule called VK28, developed by Prof. Emeritus Moussa Youdim and his colleagues at the Technion and the late Prof. Abraham Warshawsky at the Weizmann Institute of Science, found its way to an unexpected collaborative research program involving Clinical Research Management contract researchers at the Walter Reed Army Institute of Research (WRAIR) in Silver Spring, Maryland, and at Varinel, Inc., the company to which VK28 had been licensed for commercial development.

VK28 – also known as VAR10100 – was originally developed by Youdim, Varinel’s scientific founder, as a brain-selective and brain-permeable iron chelator, a chemical entity with the ability to bind up free iron. VK28 was designed to target treatment of neurodegenerative diseases such as Alzheimer’s, Parkinson’s and Huntington’s disease. An iron chelator penetrating the blood-brain barrier might be expected to bind up and remove free iron from brain cells, providing a neuroprotective effect by eliminating an important source of tissue-damaging free radicals that can be stimulated by the presence of iron. Free radicals are highly reactive and can severely damage and even kill the very cells we use to think. Indeed, Youdim and colleagues showed that, in two animal models of Parkinson’s disease, VK28 was not only neuroprotective, but also neurorestorative and lowered the toxic brain iron that accumulates.

“The emergence of MDR bacterial strains has become a significant challenge for clinicians and caregivers.” During the product development process aimed at advancing VK28 to clinical trials, Varinel also developed a VK28 derivative called VAR10103 with potential as a drug candidate.

As luck would have it, my son, Daniel Zurawski, is a principal investigator and contracted at WRAIR to develop new therapies and preventive medicines for wound infections, especially those involving multidrug-resistant (MDR) bacteria. The emergence of MDR bacterial strains has become a significant challenge for clinicians and caregivers of the U.S. military as wounded soldiers returning from Iraq and Afghanistan are often infected with bacteria that are resistant to most, if not all, current antibiotic treatment.

Because iron is an essential nutrient for all bacteria, including MDR bacteria, it was thought that treatment of wounds before or after a bacterial infection with an iron chelator alone or in conjunction with antibiotic therapy might provide the required antibacterial effect to keep infections in check. Sure enough, under the auspices of a Cooperative Research and Development Agreement (CRADA) between Varinel and the U.S. Army and Department of Defense, both VK28 and VAR10103 have proven effective, in the laboratory, at stopping bacteria in their tracks, and they have proven to be synergistic with certain antibiotics in targeting MDR-resistant organisms. These results were presented at the 2011 ICAAC Meeting in Chicago. At WRAIR, both compounds are now being tested in animal models of infection along with some other iron chelators that showed promise in vitro.

The same chemical entities with the potential to protect brain cells may also provide the means to deliver a knock-out punch to bacteria that would otherwise elude treatment. It all begins with the kind of solid scientific effort that is traditional at the Technion, and which has led to its world recognition.

Dr Vincent Zurawski is Founding President of Varinel and its Chief Scientific Officer.

Disclaimer: The findings and opinions expressed herein belong to the authors and do not necessarily reflect the official views of the WRAIR, the U.S. Army, or the Department of Defense.

An optical spin – the nanoscience of electrons

Prof. Erez Hasman, Technion.

The spin Hall effect – the impact of the intrinsic spin on the particle trajectory, which produces transverse deflection of the particle – is a central tenet in the field of spintronics regarding particles of electrons. Now, its optical equivalent has been observed.

The Magnus effect is seen in a wide range of systems. For example, it describes the sideways force applied to a spinning ball as it travels through the air explains Prof. Erez Hasman, head of the Micro- and Nanooptics Laboratory and an avid tennis player.

Light waves, comprising mass-less particles called photons, also demonstrate spin. Light’s spin is determined by its polarization: whether the wave vibration rotates in one direction or the opposite as it travels. Hasman, together with his PhD student Avi Niv, Dr Vladimir Kleiner – a senior scientist in the lab – and Ukrainian visiting scientist Dr Konstantin Bliokh, were the first to observe the effect of spin on the trajectories of polarized light beams.

The researchers launched a laser beam at a sliding angle to the internal surface of a glass cylinder. Once inside the cylinder the beam traveled in a helical trajectory along the glass-air interface, and was collected and analyzed at the far end using polarization optics and a camera. They observed a transverse spin-dependent deflection of the optical beam. These results have promising applications in nano-optics leading to much faster and more accurate computational data processing.

Physics Prof. Mordechai (Moti) Segev, a world leader in the area of Nonlinear Optics, comments, “Nanophotonics is a field where light is manipulated and controlled on a scale that is smaller than the optical wavelength. Erez Hasman has written a series of important papers in this area, leading to a new branch in optics – spinoptics. His discoveries offer an unprecedented ability to control light and its polarization state in nanometer-scale optical devices, thereby facilitating a variety of applications related to nanophotonics.”

Applied to other areas Hasman says, “There are a number of systems where the spin of a particle couples with its trajectory in high-energy and condensed matter physics. The math is the same in all cases, but experimentally it’s hard to understand what’s going on. Our experimental system offers a new way to get at some of these fundamental questions clearly and precisely.”

What is Photonics?

Photonics is the science of generating, controlling, and detecting photons. Photonics researchers investigate the emission, transmission, amplification, detection, and modulation of light. Applications include laser manufacturing, biological and chemical sensing, medical diagnostics and therapy, display technology, and optical computing.

Spinoptics: The Magnus effect for light, also called the optical spin Hall effect, causes the light to deflect due to the interaction between the intrinsic spin of the photons and the shape of the light’s trajectory.

An optical spin – the nanoscience of electrons

Prof. Erez Hasman, Technion.

The spin Hall effect – the impact of the intrinsic spin on the particle trajectory, which produces transverse deflection of the particle – is a central tenet in the field of spintronics regarding particles of electrons. Now, its optical equivalent has been observed.

The Magnus effect is seen in a wide range of systems. For example, it describes the sideways force applied to a spinning ball as it travels through the air explains Prof. Erez Hasman, head of the Micro- and Nanooptics Laboratory and an avid tennis player.

Light waves, comprising mass-less particles called photons, also demonstrate spin. Light’s spin is determined by its polarization: whether the wave vibration rotates in one direction or the opposite as it travels. Hasman, together with his PhD student Avi Niv, Dr Vladimir Kleiner – a senior scientist in the lab – and Ukrainian visiting scientist Dr Konstantin Bliokh, were the first to observe the effect of spin on the trajectories of polarized light beams.

The researchers launched a laser beam at a sliding angle to the internal surface of a glass cylinder. Once inside the cylinder the beam traveled in a helical trajectory along the glass-air interface, and was collected and analyzed at the far end using polarization optics and a camera. They observed a transverse spin-dependent deflection of the optical beam. These results have promising applications in nano-optics leading to much faster and more accurate computational data processing.

Physics Prof. Mordechai (Moti) Segev, a world leader in the area of Nonlinear Optics, comments, “Nanophotonics is a field where light is manipulated and controlled on a scale that is smaller than the optical wavelength. Erez Hasman has written a series of important papers in this area, leading to a new branch in optics – spinoptics. His discoveries offer an unprecedented ability to control light and its polarization state in nanometer-scale optical devices, thereby facilitating a variety of applications related to nanophotonics.”

Applied to other areas Hasman says, “There are a number of systems where the spin of a particle couples with its trajectory in high-energy and condensed matter physics. The math is the same in all cases, but experimentally it’s hard to understand what’s going on. Our experimental system offers a new way to get at some of these fundamental questions clearly and precisely.”

What is Photonics?

Photonics is the science of generating, controlling, and detecting photons. Photonics researchers investigate the emission, transmission, amplification, detection, and modulation of light. Applications include laser manufacturing, biological and chemical sensing, medical diagnostics and therapy, display technology, and optical computing.

Spinoptics: The Magnus effect for light, also called the optical spin Hall effect, causes the light to deflect due to the interaction between the intrinsic spin of the photons and the shape of the light’s trajectory.

Oracle: $7.5 million to Mazor robotic spine & brain surgery

Oracle Investment invests $7.5m in Mazor RoboticsMazor will seek to list ADRs on Nasdaq or the NYSE.

12 August 12 11:05, Extracted from Globes

Mazor Robotics Ltd. (TASE:MZOR), a maker of robotic navigation systems for spinal surgeries, has signed an agreement with two funds of Oracle Investment Managements Inc., which will invest an initial $7.5 million in the company and up to an additional $7.5 million over 36 months, subject to certain conditions.

Mazor will allot 7,053,529 shares to Oracle Investment, reflecting a price of NIS 4.25 per share. It will also give Oracle Investment warrants convertible into the same number of shares at the same price, exercisable for 36 months from the closing of the deal. The strike price will be either NIS 6 or Mazor’s average price over the ten days preceding the exercise of the option, whichever is lower, but not less than NIS 4.25 per share.

Mazor also undertakes to register Class 2 American Depository Receipt (ADR) on either Nasdaq or the New York Stock Exchange within 240 days of the closing. When the registration is completed, the shares and warrants allotted to Oracle Investments will immediately be converted into ADR’s at Mazor’s expense.
Larry Feinberg founded Oracle Investments in 1993 to invest in the global health care and bioscience industries.

Editor’s note: Mazor Robotics was founded out of patented innovations from the lab. of Technion Prof. Moshe Shoham.