Tag Archives: Technion

Graduate students, partners, children, come home to Technion.

Moving into the Zielony Graduate Student village at Technion City.

“In order to remain vibrant and productive, we aim to increase the number of first-rate graduate students that are so critical to 
our future.” 


Technion President Prof. Peretz Lavie.





The Zielony Graduate Student Village – opening its doors to Technion’s graduate students and their families.


Graduate families are now moving in to the Zielony Graduate Student Village at Technion City. The village is on a sloping, tree-covered hillside, and covers an area of approximately four acres. All of the 216 the apartments are connected to the high-speed, campus-wide computer network, which is connected to the Internet. 

“The Technion has made great strides over the past few years in recruiting more top graduate students worldwide,” said Prof. Moshe Shpitalni, Dean of Graduate Studies. “Graduate students currently constitute one-third of the Technion’s student body. The long-term goal of the university is to raise that proportion to one-half.” 





 Being Part of a Community


The close-knit nature of the Graduate Student Village encourages graduate student families to foster close friendships. The families can get to know one another, help each other out, (especially with the kids!).
This concentration of graduate students in similar circumstances with similar concerns and responsibilities creates a supportive social framework where each person or family can contribute to the welfare of the community. 


Benefits of the Graduate Student Village

  • Safe and supportive environment
  • Affordable rent
  • Free utilities
  • Fully-furnished apartments (furniture and electrical appliances)
  • Connections to campus-wide computer network in each apartment
  • Easy and convenient access to diverse campus facilities: central and departmental libraries, computer centers, sports facilities (gym, swimming pool, fitness room, tennis courts), mini-markets
  • On-campus day care facilities
  • Quiet, peaceful environment

The Community Center of Tomorrow

The coming addition to the village – The Community Center – will support and enhance community life. Professional childcare will be provided in four kindergarten classrooms for different ages of children (aged 0 to 1-1/2 years, 1-1/2 to 2 years, 2-3 years, 3-4 years), enabling parents to immerse themselves in work, confident that their children are well looked after. A multipurpose room on the lower level will serve as a possible fifth kindergarten classroom as well as provide venues for a variety of other activities.




Technion Graduate from Japan Talks of “Nightmare”

Technion graduate of Physics Shumon Mori spent five “wonderful” years at Technion before returning to Japan. “I was 18 when I decided to study at Technion,” says Mori. “I learned about Technion for the first time over Internet and I noticed that Technion is one of the best institutes of technology in the world. Of course, I had fears of leaving my home country but my strong will to living in Israel enabled me to overcome these fears.”

In the aftermath of the terrible earthquake, tsunami and nuclear crisis unfolding in Japan this month, Technion reached out to find out how Mori, one of many graduates from Japan is doing.

“Thanks for your care,” said Mori, “Your consideration from Technion keeps us strong. Myself, my family and colleagues are fine. But the damage to the North of Japan is like a nightmare. It is unbelievable. We, and all Japanese are trying to be strong to overcome this crisis.”

“In Japan, nature has shown us how truly powerful it is, unfortunately, with devastating effects,” said Technion President Prof. Peretz Lavie, at the Technion’s Harvey Prize Ceremony. “I send my sincere hopes that recovery will come swiftly and as painlessly as possible.”

“When I studied at Technion, everyone asked me “Shumon, B’seder? Tzarich Ezra? (Are you O.K? Do you need help?) They constantly encouraged me. Without this kind of help, I wouldn’t have succeeded in graduating from Technion. I know that the Israeli people want to help somebody who is having difficulty.

 

A poem from Dr. Ada Aharoni, a retired Senior Lecturer from the Technion, and the Founder – President of IFLAC.

CHERRY BLOSSOMS WILL BLOOM AGAIN IN JAPAN

By Ada Aharoni (20 March 2010)

My dear Japanese friends
Cherry Blossoms will soon
Bloom again
In Japan
After the cruel horrific earthquake
Followed by the overwhelmingly
Savage tsunami
Pouncing on you with its deathly claws
In the midst of your lives –
Now comes the nightmare of
Creeping radiation
And horrendous deathly plutonium leaks
May it indeed only be a passing nightmare –
May the ultimate radiation red-light danger
Only be a fleeting dark nightmare –
May you wake up my friends to a bright
And healthy new day
Full of energy to rebuild
Your beautiful world again
Poor wounded Japan
I want to bandage your wounds
With Cherry Blossoms.

Technion Entrepreneur in Residence Program (EIR)

Reposted from T3 – the Technion Technology Transfer office


The Technion Entrepreneur in Residence (EIR) program introduces entrepreneurs into the Technion research environment, identifying promising technologies in order to launch start-up companies. By engaging experienced entrepreneurs to transfer technology to the global marketplace, the Technion enables researchers to concentrate on their academic endeavors, while ensuring commercialization of new technologies.

As a part of the program, each entrepreneur has up to six months to discover a business opportunity and launch a startup. While entrepreneurs are not paid for their participation in the EIR program, they receive equity in the newly formed startups. Preference is given to entrepreneurs that are willing to establish their operations in the Haifa area, near the Technion, thus facilitating close dialogue with faculty members, Technion laboratories, and the business unit.

The EIR’s Board of Directors guides entrepreneurs through the commercialization process. During an up-to-three-month ‘opportunity discovery’ period, the entrepreneurs work within a designated Technion department. They have access to other departments to identify and stimulate multi-disciplinary opportunities. While entrepreneurs are expected to point out several opportunities, they ultimately focus on a single option.

Having identified their startup opportunity, entrepreneurs work with the Technion Entrepreneurship and Innovation Center for an additional three months to develop a detailed business strategy. These plans are then submitted to the EIR Board of Directors, for final acceptance or rejection.

Upon a ‘thumbs up’ decision by the Board, a newly minted startup company is formed. Entrepreneurs are responsible for implementing the business plan, raising capital, achieving milestones, and reporting progress to the EIR Board on a quarterly basis. The startup receives broad Technion support, which includes access to Institute laboratories for ongoing research, as well as administrative and legal services.

For further information contact: t3info@technion.ac.il


Technion Book of Faces

A Technion Book of Faces

In 2012, Technion celebrates 100 years since the laying of its 1st cornerstone.

This century has seen many miracles – the miraculous birth of Israel as a nation; the awesome transformation of our world into a global village where technology and science bring the keys to the future of health, communication, the environment, energy, security and global communion.

From 1912, until today, Technion – Israel Institute of Technology, has been part of this miracle.

Within every nation, there are citizens that have lived the story of its suffering and its success. Behind every scientific and high-tech innovation there is a scientist with a story. Within the mind of each scientist there are sparks of curiosity and inspiration – the inspiration behind the Start-up Nation.

Here are just some of the living stories of innovation, human integrity and achievement from Technion ~ Israel Institute of Technology.

Technion founding father Prof. Albert Einstein at Technion.


The Brainstormer

“What is important are the many e-mails I receive from grateful patients helped by Rasagiline.” Prof. Moussa Youdim


It was his father’s struggle with deep depression over business troubles in 1957 that changed the course of Prof. Moussa Youdim’s life, from studying medicine to going into pharmacology. He sought a more refined, and merciful understanding of brain chemistry that would help bring treatment and relief to millions.
Prof. Youdim is today internationally renowned for his brain research and drug development in depressive illness and Parkinson’s and Alzheimer’s diseases. He has established the importance of monoamine oxidase and brain iron metabolism for brain function that can lead to cognitive impairments and neurodegenerative diseases.



Where internet began.

“They unequivocally bear the stamp of the present century.” BBVA Foundation President, Francisco Gonzále, at the Frontiers of Knowledge Awards, 2009.

The Lempel-Ziv algorithm – the mathematical formula for compressing vast amounts of information – is the thought power that enabled the high-tech communications revolution of our generation.
From the birth of the internet, through to the global broadcasting of live images from Mars, we are indebted to the science behind compression and decompression made possible by the legendary Technion algorithm in 1983.
Tiberius-born Prof. Jacob Ziv and Poland-born Prof. Abraham Lempel changed the direction of mankind by bringing the best compression ratio ever. This became the standard utility in unix systems, the gif image format, tiff, pdf and adobe acrobat software.
Generations of Technion graduates mentored by the two pioneering professors, adopted not only the knowledge, but also the spirit of innovation, empowering the high-tech revolution, in Israel and across the globe.



Light Man 2020

“Technion is the place I chose to do this research.” Distinguished Prof. Moti Segev

What is light? How is it composed? How to unravel the secrets of a soliton – a single wave packet of light? What wonders of technology and science can be achieved when we master its power?
Distinguished Prof.Mordechai (Moti) Segev was raised in Haifa to a poor immigrant family of shoemakers. But little Moti had a secret – the secret of what happens when you excel beyond all frontiers.
Years later – as the first Israeli to be offered a tenured position in Princeton in 1998 – Segev chose to return to Technion and to create there a focus of optics research alluring excellent students and faculty from across the world. Some proofs of his global success include  the world’s first observation of 2D lattice solitons, and the first experimental demonstration of Anderson localization in a disordered periodic system.


A Matter of Class

“If you believe in your research then fight for it. Fight for the truth.” Distinguished Prof. Dan Shechtman.

Since 1912, matter – the miracle of everything in our world – was defined by scientists with a strict paradigm: crystals are ordered and periodic  – with no exception. That was before Israeli-born Distinguished Prof. Dan Shechtman reached for the electron microsope in 1982 – the year humanity’s perception of matter was changed forever.
Shechtman broke all the rules when he revealed a new class of matter – “Shechtmanite” – crystals with 5-fold rotation symmetry. “I was alone. I was ridiculed by my colleagues and my peers,” tells Shechtman, who stood by his revolutionary research into quasi-periodic crystals despite the disgrace it brought him among international scientists.
The new strength of material made available through quasi-periodic crystals has today converted the world,  opening a range of applications in super-strong steel – especially where it contacts the human body, such as in surgical equipment.



Multi-tasking Stem Cells

“Everyone knows about the Technion…” Prof. Shulamit Levenberg

One of seven sisters in a religious family, no-one could foresee that Prof. Shulamit Levenberg would change the course of global science. Yet, when she revealed a breakthrough process to create living human tissue in the lab – she opened a new dimension of promise in medical research – that could eventually culminate in a medical ability to cultivate and replace damaged organs in the body.

Prof. Levenberg conducts interdisciplinary research in the subjects of tissue engineering from human embryonic stem cells using biodegradable polymers. She is recognized as a world leader in the field. Her research proved that it is possible to create complex muscle tissue including blood vessels (as well as beating heart muscle) in a laboratory. She has been named among the world’s top 50 science leaders by the prestigious magazine Scientific American.



The Imagineer

“Technion is a holistic experience.” Technion Alum Shai Agassi

Proud Technion alum Shai Agassi wants to put you behind the wheel of an electric car — but he doesn’t want you to sacrifice convenience (or cash) to do it.
When horrific climate-change scenarios elicit little but endless chatter from governments and entrenched special interests, the difference between talk and action represent an embarrassing gulf. Meet exemplary Technion alum Shai Agassi, who has stepped fearlessly into that gap. His approach to solving the puzzle of electric automobiles could spark nothing short of an automotive revolution.
Agassi stunned the software industry in 2007 by resigning from SAP to focus on his vision for breaking the world’s fossil-fuel habit, through his global start-up Project Better Place. Recently he signed up to make San Francisco the EV capital of the US – with a revolutionary switchable battery electric taxi program.



The Kiss of Life

“Mentorship is as important as science.” Nobel Laureate Avram Hershko


Ubiquitin: so called, because it is a protein present in all living cells. No-one knew why it was there, and no-one dared to wonder: it was just boring – “ubiquitous”.
But no living secrets are untouched by Technion scientists. Throughout the ‘70s and ‘80s, Distinguished Professors Avram Hershko and Aaron Ciechanover unveiled the mysteries of  the ubiquitin system, revealing the masterkeys of human health. The ubiquitous protein ubiquitin, they showed, is the key factor in deciding when and how a cell should regenerate. Imbalance in ubiquitin reveals itself in some of the world’s most incurable afflictions – such as cancer and neuro-degenerative disorders.
By 2004, the Technion research was already revolutionizing medical understanding and opening the way to innovative cures and treatments. No wonder that, in that year, the two Technion Professors became Israel’s first Nobel Laureates in science.


Sniffing Out Cancer

“I am where I feel that I contribute the most.” Dr. Hossam Haick


When Dr. Hossam Haick was studying for his doctorate, a friend of his was diagnosed with leukemia. “It was very painful for me. I saw his suffering. That was the first time I began to think about diagnosing cancer by means of oxygenating substances that are excreted in a photocatalytic procedure (accelerated by light ) and come into contact with cancer cells. Nazareth-born Haick has since amazed the world with an ingenious system for detecting cancer via breath tests.
Haick’s patented “electronic nose” promises to detect several types of cancer in their early stages. His goal is to detect cancer early enough  to give the human body a better chance of beating the disease.



9/11 Never again

“At critical moments in an emergency, there is no time.” Security expert Prof. Avi Kirschenbaum.

A decate later and the trauma is fresh. And the global threat is still there. Post 9/11, everyone wants to know they are safe on a plane.  
High-tech security innovation has always been quietly high on the scientific agenda of Israel’s top institute of technology, but recently world headlines showed another aspect of Technion expertise – people management in a crisis.
“At critical moments in an emergency, there is no time to consult a supervisor or read the manual,” says Prof. Avi Kirschenbaum, whose decades of expertise in home-front security recently won his team a $5 million grant by the European Union to ensure airport against hostile threats. “In order to prevent disasters and deal with them properly, we have to ensure that all the teams, and not just security teams, will be trained and highly motivated.”



Upwardly Motile

“For interdisciplinary science, Technion is an excellent place.”  Prof. Kinneret Keren

Named one of the 100 top young innovators by MIT’s Technology Review Magazine, Dr. Kinneret Keren is researching nature’s genius in self-assembly. On one hand this can be used  in the creation of nano-scale electronics; on the other, it brings a  wealth of understanding to  medical science – understanding  a cell’s motility – or how it  moves through space and time can provide the master-keys for healing such diseases as cancer or heart disease.
Keren integrates physics and cell biology in her research, moving between real and artificial cells. “The biophysical aspects of cell biology have been neglected in many areas,” she explains: “Basic cellular processes are highly relevant to understanding normal processes and diseases, for example, understanding how and why cells move faster brings a chance to better understand how cancer spreads.”


Think Global
Think Technion

“Israel can win the battle for survival only by developing expert knowledge in technology.”
Prof. Albert Einstein (President of the first Technion Society)

“Technion has a great contribution to make to Israel’s future prosperity, and Israel’s prosperity cannot but be of great benefit to other countries, as well.”
Winston Churchill (The late Prime Minister of Great Britain)

“You – the people of the Technion – have led the way in technology, science and engineering.”
Yitzhak Rabin (The late Prime Minister of Israel)

“The Technion has been a beacon of learning in our region.”
The late King Hussein of Jordan

And no-one should ignore the most amazing part of Technion….

THE STUDENTS!

Technion & Intel’s ‘Sandy Bridge’ Chip Revolution.


“The Haifa development center would not exist without the excellent human capital provided by Technion.”


“Sandy Bridge is revolutionary – it is the biggest step change in Intel . . . it will be a cornerstone of computer revolution…”


Sandy Bridge, formerly Gesher, (Insiders clue: “Gesher” is Hebrew for “Bridge”) is the codename for the processor microarchitecture developed by Intel as the successor to Nehalem. Based on the 32 nm process, development began in 2005 at Intel’s Israel Development Center (IDC) in Haifa.

Processors based on this architecture are marketed as the second generation of Core i processors and were announced on January 3, 2011. Mainstream processors became available on January 9, 2011.

Intel’s revolutionary ‘Sandy Bridge’ microprocessor recently generated great excitement in the digital world following its release at the Consumer Electronics Show (CES) in January in Las Vegas, reports Israel21C. The new chip is also a source of pride for Israeli engineers as it was developed at Intel’s R&D facility in Haifa, by Technion graduates.
 .
“Sandy Bridge is revolutionary – it is the biggest step change in Intel . . . it will be a cornerstone of computer revolution,” said Shmuel “Mooly” Eden, vice president and general manager of the PC Client Group at Intel. “The new Second Generation Intel Core processors represent the biggest advance in computing performance and capabilities over any other previous generation.”

Speaking to reporters in Las Vegas, Eden, who is one of the leaders of Intel’s Israeli operation, said that ‘Sandy Bridge’ is 69 percent faster than older Intel chips. Intel chief executive officer Paul Otellini told reporters that the new processor is the first 32 nanometer-based chip in the industry. The microprocessor also features 3-D graphics and media engine capabilities. Otellini said that translates to higher performance, reduced power consumption for better battery life, and lower manufacturing costs.

Intel was established in Santa Clara, California, in 1968 by semiconductor pioneers Gordon Moore and Robert Noyce. In 1971, they released the microprocessor that would change the world. Intel set up its Israel center in 1974 – the multinational’s first outside the United States. Established by Technion graduate Dov Frohman, the center pioneered VLSI in Israel. Very-large-scale integration is the process of creating integrated circuits by combining thousands of transistor-based circuits into a single chip.

Yossi Schenkler, General Manager, Intel Israel Design Center, who holds two degrees from the Technion’s Faculty of Electrical Engineering, sees Technion as “Home.” He stated that the Haifa location was chosen due to the Technion, and that Technion is the primary source for Intel’s success here. “We are the leading center in microprocessor design in the world,” says Schenkler. “The Haifa development center would not exist without the excellent human capital provided by Technion. Here in Haifa, with Technion recruits, we have designed the most complex chip available.”

Prof. Uri Weiser spent 18-plus years at Intel, reaching the prestigious rank of Intel Fellow. Back at the Faculty of Electrical Engineering where he is now a Visiting Scientist, he discussed the symbiotic relationship between Technion and Intel. Technion trains engineers for Intel worldwide, and Intel creates a research environment at Technion, as well as providing grants, labs and directions for research into new technologies.

(l-r) Technion alumnus Yossi Schenkler, General
Manager, Intel Israel Design Center, presents then
Technion President, Prof. Yitzhak Apeloig, with
the Intel Emblem



http://www.israel21c.org/201101068703/briefs/israeli-made-intel-sandy-bridge-chip-all-the-hype
http://www.focus.technion.ac.il/Feb10/innovationStory3.htm

World-Class Hydrology: Jacob Bear Honored by American Geophysical Union

Jacob Bear Receives 2010 Robert E. Horton Medal

Jacob Bear was awarded the 2010 Robert E. Horton Medal at the AGU Fall Meeting Honors Ceremony, held on 15 December 2010 in San Francisco, Calif. The medal is for “outstanding contributions to hydrology.”

“Jacob lists a lifetime of unique accomplishments, and his influence on the field is unparalleled”

Citation

It is a pleasure and an honor to introduce Jacob Bear, professor emeritus at the Technion–Israel Institute of Technology, as the 2010 Robert E. Horton medalist. Jacob has had a prime influence on the hydrological sciences and on virtually every scientist who has studied hydrogeology during the past 40 years.
Jacob lists a lifetime of unique accomplishments, and his influence on the field is unparalleled. Jacob has made pioneering, diverse contributions to basic and applied scientific aspects of groundwater hydrology. He began his career in the 1960s acutely concerned by the paucity of tools for quantitative modeling and by the huge gaps in fundamental understanding of the physics of flow and transport in porous media. Jacob has devoted his career to remedying this situation by working to combine basic physical principles, mathematical analysis, and practical applications to produce a coherent and systematic methodology for formulating and quantifying problems in subsurface hydrology. The impact of Jacob’s work has so significantly influenced the field, in so many ways, that it is difficult to enumerate them.
Jacob has had an immeasurable impact through his books, which remain key reference sources to this day. His first book, Physical Principles of Water Percolation and Seepage, in 1968 with S. Irmay and D. Zaslavsky, introduced a comprehensive approach based on mathematical modeling and included among many subjects both saturated and unsaturated (multiphase) flow and solute transport in porous media. This was the beginning of Jacob’s implementation of his concept of “transport phenomena in porous media” as opposed to “movement of water in aquifers.” Indeed, in 1967 and 1969 Jacob organized two international symposia that brought together scientists from many disciplines—hydrologists, soil physicists, reservoir engineers—who had not been communicating previously. As an outgrowth, Jacob’s later books, particularly the 1972 Dynamics of Fluids in Porous Media (which has since been reissued by Dover and has more than 8000 citations), have had a huge impact on the field, and virtually every student and researcher in hydrogeology has studied from Dynamics or referred to it on some occasion. This book changed both theory and practice on a global level. Jacob has also mentored a long list of outstanding young researchers and practicing engineers throughout North America, Europe, and Asia.
Jacob has made benchmark research contributions, notably, to the theory of volume averaging, to quantification of dispersion in solute transport, and to modeling of seawater intrusion (combined with management of coastal aquifers). The latter work dictated management of the coastal aquifer of Israel from the early 1960s and has led to practical improvements in exploitation of coastal aquifers around the world.
As a consequence, Jacob has fundamentally influenced the thinking of at least two generations of hydrologists. Jacob’s conceptual thinking and quantitative approaches have revolutionized the field of groundwater hydrology. Quite simply, Jacob Bear is a legend in his own time. Jacob Bear is a credit to AGU, richly deserving of this highest distinction for outstanding contributions to the geophysical aspects of hydrology.
—BRIAN BERKOWITZ, Weizmann Institute of Science, Rehovot, Israel

“I cannot close without thanking my many students who helped me, sometimes pushed me, to move ahead, eventually reaching this point.”

Response

I would like to begin by expressing my thanks to those who nominated me for this prestigious award, to those who supported the nomination, to those who selected me, and to Brian Berkowitz for his warm citation.
Many of you, who know me mainly from my books, have no doubt noticed that I am working in two, albeit interconnected, directions: groundwater hydrology and modeling phenomena of transport in porous media. Knowledge of the latter is essential for the former. In addition, this knowledge constitutes the basis for many other engineering disciplines, like geochemistry, petroleum reservoir engineering, chemical engineering, and biomedical engineering. Common to these disciplines is the fact that phenomena of transport of mass, momentum, and energy occur in the special multiphase domain called “porous medium.” The starting point is the use of a magnifying glass to observe and understand what happens at points within the phases and on interphase boundaries and then, by employing homogenization of one kind or another, obtain mathematical models that describe these phenomena in terms of measurable quantities in a domain regarded as a continuum.
An exciting aspect of this area is that it is interdisciplinary. It requires knowledge (and cooperation with experts) in physics, chemistry, continuum mechanics, thermodynamics, and more. All of this knowledge is used to solve societal problems of water resources, energy, and the environment.
Traditionally, groundwater hydrologists have been dealing with extracting groundwater from aquifers while ensuring good quality water and aquifer sustainability. Nowadays, geologists, geochemists, hydrologists, and reservoir engineers join forces to solve environmental problems. An example is carbon dioxide sequestration in deep geological formations, often saturated with brines. Currently, a lot of research and implementation activities are taking place on this exciting subject around the world.
Altogether, I feel lucky to work in the field of hydrology, in which I can combine theory and application, research, and teaching around the world and cooperate with colleagues of many disciplines in contributing to the solution of societal problems—ensuring a sufficient quantity of clean water to the population and ensuring a clean environment.
I cannot close without thanking my many students who helped me, sometimes pushed me, to move ahead, eventually reaching this point.
Finally, I would like to thank my wife, Siona, and my children and grandchildren for being patient when I have been spending with them much less time than they deserve.
Thank you.
—JACOB BEAR, Technion-­Israel Institute of Technology, Haifa

Solar Balloons ~ Technion Architecture + Aerospace = Energy Innovation



Technion graduate Dr. Joseph Cory is floating an intriguing idea: small lightweight balloons with a thin coating of photovoltaic cells. 


The balloons are tethered to the ground via one line to send helium up and another to pass the gathered solar power down. One or two of these floating disks might meet a household’s complete electric needs, while larger buildings or municipal facilities could float numerous vertical cables with balloons stacked every few feet. 

Cory and Technion aerospace engineering research partner Dr. Pini Gurfil of the Asher Space Research Institute (ASRI) also envision bringing much-needed power to impoverished regions far from power lines. 

“They have no negative effect on the environment at all,” says Cory, a professional architect. Prototypes of various sizes are now being tested.  Two models have been constructed – one in the city of Haifa and one in the desert. The balloons are expected to overcome surface area issues such as in cities and crowded countries where large solar cell panels are not feasible.

Satellite.jpg

Land of the TITAN

TITAN ~ The GIANT frontier of tiny research
Delivered: July 2006
Birthplace: The Netherlands
Citizenship: Technion City
Ancestry: FEI
Price tag: Over $3.2 million

“We will be able to see atoms and extract information about chemical bonds between atoms using this first-of-its-kind 4.5 meter high piece of equipment that weighs in at over 2000 kg…”


Technion RBNI’s Prof. Wayne Kaplan



The Titan moves in…










 

Making armor for the brain (The story of Moussa Youdim)

[Jerusalem Post: 11/13/2010]

Iranian-born Technion pharmacologist Moussa Youdim has worked for decades on drugs for Parkinson’s and Alzheimer’s disease and even ALS. Judy Siegel-Itzkovich interviews him.

  

PROF. MOUSSA YOUDIM and his wife Fruma. ‘The Nobel



His father’s struggle with deep depression over business troubles in 1957 changed the course of Moussa Youdim’s life, from studying in medical school to going into pharmacology and discovering a cure for that psychiatric disorder. Many patients with Parkinson’s and other diseases are grateful for that shift in the life of this 70-year-old Jew, who as a very active emeritus professor at the Technion-Israel Institute of Technology will next week share with seven others the $1 million EMET Prize for Art, Science and Culture.

The EMET Prize, awarded annually since 2002 for excellence in academic and professional achievements that have far-reaching influence, is sponsored by the A.M.N. Foundation for the Advancement of Science, Art and Culture in Israel, under the auspices of the prime minister. Youdim will receive his prize for brain science in the category of life sciences.

With a surname that comes from the Hebrew word yod’im (know) as his family for over 400 years in Persia were known for their intellectual pursuits, Youdim was given the name Moussa after an official in Teheran’s American Hospital who mistook her for Muslim and told his mother that she must call him Ali. When she protested that she was Jewish, he instructed her to name him Moussa. Since then, even though he is sometimes mistaken for being a Muslim (especially by airport security personnel), he has refused to change it to Moshe.

Warm, outgoing, polite and a man of the world, Youdim holds more than 100 international patents in neuropsychiatric drug development and cardiovascular drugs. He acts as a consultant for several major international pharmaceutical companies, and serves on many national and international scientific and grant-giving committees.

Not only have the contributions of the leading pharmacology researcher been included in many standard text books, but he has published a stupendous 800 scientific articles, edited 45 books, served on the editorial boards of 44 international scientific journals, lectured around the globe and received many national and international awards and several honorary doctorates – most recently the European College of Neuropsychopharmacology LifeTime Achievement Award and election to the Leopoldina Germany Academy of Sciences.

HE GOT used to traveling and managing on his own from a young age. Around his 12th birthday, he was sent to a boarding school in the English city of Brighton, and from there left for Canada to study medicine at McGill University – until his businessman father took sick – when there were no safe medications for depression, Youdim recalls in an interview with The Jerusalem Post. His father was given electroshock treatments in England and felt better, but he had recurrent attacks and was never the same.

Youdim’s mother became the family breadwinner.

In 1960, the only existing antidepressant medication, iproniazid, had been meant for treating tuberculosis, but it was found to make people who took it happier. Yet, it killed some people who took it along with cheese or wine, launching a race to find a safe antidepressant.

After taking courses in bio- and neuro-chemistry, he became enthralled with the idea of understanding how the brain works, and wondered how to fix it. Graduating with a BSc and MSc and then his doctoral degree in biochemistry at McGill’s Allan Memorial Psychiatry Institute, he returned to England for post-graduate work at the University of London and taught at Oxford and at the College de France in Paris.

YOUDIM RECALLED that nearly 40 years ago, he heard a lecture by Holocaust survivor Joseph Knoll about work on an antidepressant called deprenyl. Unfortunately, it wasn’t effective, but it also was not harmful to people who drank wine or ate cheese. A few years later, Youdim and Prof. Peter Reiderer of Austria thought and demonstrated that deprenyl was effective in treating Parkinson’s, the degenerative disorder of the central nervous system that impairs motor skills, cognitive processes and other functions, and whose symptoms include tremor, rigidity and unstable posture, along with cognitive and neurobehavioral problems, dementia and sensory and sleep difficulties.

Deprenyl, later named selegiline in the US, became the first monoamine oxidase B inhibitor for the treatment of Parkinson’s disease. But they found that deprenyl may indeed have side effects; Youdim searched for a deprenyl-like drug that would be more effective. He finally stumbled upon a candidate drug that was in his possession; he developed it into rasagiline (now patented as Azilect and sold by the Israeli company Teva Pharmaceuticals).

Margaret Thatcher’s anti-Socialist tenure as British prime minister annoyed Youdim and other scientists no end – “she was called a ‘milk snatcher’ when she took away free milk supplies for schoolchildren – and though he was happy at Oxford, he became alienated from England.

Simultaneously, Youdim visited Israel (although most of his family ended up in Los Angeles) and was invited to see the Technion’s new medical school, where the dean offered him a job to establish and head a pharmacology department; the only one in Israel then was at the Hebrew University in Jerusalem. “I liked Europe, but I thought Israel would be exciting – and indeed it has been.”

ALTHOUGH ACADEMIC pharmacology is necessary to build the pharmaceutical industry, Israel had few prominent people in the field, and the Weizmann Institute of Science in Rehovot never set up its own pharmacology department because it didn’t regard it as pure but rather applied science. It is ironical that many people at Weizmann now consider themselves drug developers, he adds.

Although he had received enticing offers from the US and Iran, Youdim agreed to come to Haifa to live in 1977. “I had to recruit people for the department and was asked to go to ulpan to learn Hebrew, but I taught in English; I didn’t have the time to learn Hebrew. I was given five years, but I still don’t really speak it,” he admits with some amusement.

He and his first wife had three children – Shai, Tal and Avigail, none of whom went into science – and they later divorced. On a blind date 15 years ago, he met Fruma, a high-school English teacher and mother of two whose Holocaust-survivor parents moved from Austria to Israel when she was two years old. Moussa and Fruma married a decade ago, and – speaking Hebrew like a native and feeling “totally Israeli” – she makes up for his lack of fluency in the language. When not flying around the world together, they live in a penthouse on a hill in Haifa that overlooks much of the city and the sea. After chairing the pharmacology department at the Technion’s Rappaport Faculty of Medicine until 1994, he went on to direct the Technion’s Eve Topf and US National Parkinson Foundation Centers of Excellence for Neurodegenerative Diseases Research and Teaching.

ALTHOUGH HE says he has has never regretted becoming an Israeli, Youdim encountered roadblocks in the bureaucracy and the academic establishment.

“It’s a small country, with one pie, and everybody wants a piece of it. If you didn’t grow up here, you may have difficulty. Politics is important and intertwined with other things.” But, he says, all this can be overcome, and his own success story proves it.

Two years after his arrival, he suggested to Teva – then a small generic medicine producer – that they offer a deal for rasagiline, but officials turned him down. But in 1987, as Teva was beginning to develop original drugs such as Copaxone for multiple sclerosis, Youdim got a call, this time to invite him to establish a unit to work on his Parkinson’s drug along with Technion colleague Prof. John Finberg.

Today, approved by the US Food and Drug Administration, it offers hope to millions of Parkinson’s patients (1.5 million Americans and four million Chinese alone). With annual sales worth $400 million and royalties earned by the Technion and the scientists, Azilect is now being marketed worldwide; it is considered the first neuroprotectivedisease modifying drug for Parkinson’s.

Azilect does not cure the disease, says Youdim, but it has been shown to slow the degenerative process in the brain and has been found in lab studies to actually improve damaged neurons. “The jury is still out. I have nothing to do with clinical studies, but all reports show it helps and has no more side effects than a placebo. There are patients who have been taking it for six or seven years and still benefit from it.”

There are also signs, he says, that a derivative of rasagiline named Cardiamit would help patients suffering from cardiovascular disease, and this is about 20 times more common than Parkinson’s; he has conducted research in this with Technion physiologist Prof. Ofer Binah. This drug is being developed at the Technion’s Alfred Mann Institute.

Asked about implants of electrodes in the brain to alleviate tremors, Youdim says those are not the solution for the large numbers of Parkinson’s patients. A drug is their only hope, as you can’t perform such operations on everyone, he adds.

Youdim has an even bigger target – Alzheimer’s disease. Working with Hebrew University pharmacology Prof. Marta Weinstock-Rosin and Teva, he has developed a new type of drug called Ladostigil (TV 3326), which is now entering Phase II clinical trials in Europe. It integrates rasagiline’s anti-Parkinson benefits with the anti-Alzheimer effects of Weinstock- Rosin’s drug rivastigmine. This is natural, he says, as many Parkinson’s patients also suffer from this dementia disease. The exclusive commercial rights for Ladostigil, which is already the first multi-functional anti-Alzheimer’s drug to reach clinical trials, have been granted to Avraham Pharmaceuticals by the technology transfer arms of the Technion and HU. If everything works out, he believes that Ladostigil will be his second original drug to be put on the market.

Youdim has established the importance of monoamine oxidase and brain iron metabolism for brain function that can lead to cognitive impairments and neurodegenerative diseases. Excessive iron produces oxygen free radicals, which cause degeneration and aging, including brain damage.

Alzheimer’s, he notes, is a very complex, multifactorial disease. “It is not purely neurological; there are probably also some psychiatric aspects, as many patients also have a predisposition to depression.”

More recently he has developed with Prof. Mati Fridkin of Weizmann Institute novel multifunctional iron chelators with monoamine oxidase and cholinesterase inhibitory activity for treatment of amyotrophic lateral sclerosis (ALS or Lou Gehrig disease, a form of which afflicts British theoretical physicist Prof. Stephen Hawking and many others around the world) as well as Lewy Body disease and Type 2 diabetes. “We’ve already published a paper on it, and are working on Huntington’s as well – the familial [genetic] degenerative neurological disease that is even more terrible. I work harder than ever before, even though officially I am retired.” He has been invited twice to Beit Hanassi to see President Shimon Peres, who has asked a group of Israeli neuroscientists to advise him on the establishment of a virtual neuroscience institute linking via Internet a number of research institutions that would collaborate on developing novel approaches to treat neuropsychiatric disorders and benefit the Israeli economy.

As for his native country of Persia, Youdim recalls that in 1978, when he was in Israel, the Shah of Iran invited him to Teheran, decorated Youdim on the monarch’s birthday and gave him a royal medal. “The Soviet Union fell, so fundamentalist Iran could as well. If I were one day invited back, I would visit. It’s a beautiful country.”

Youdim says he hasn’t even asked how much money his share of the EMET Prize will be, but “I don’t care about money; we have enough. I have received so many honors in Israel and abroad that a Nobel Prize is not my goal. There are so many brilliant scientists who have not become Nobel laureates. What is important to me are the many e-mails and phone calls I receive from grateful patients who have been helped by rasagiline. One example was a woman who called at 4 a.m. from Dallas to thank me because her husband had responded to the drug.”

But he will be excited and moved at the EMET Prize ceremony, he concludes. “I will surely think of my father and mother, who meant so much to me. They would certainly be proud.”

Proofs of Progress, Prof. Yeshayahu Talmon, Russell Berrie Nanotechnology Institute

RBNI Director Prof. Yeshayahu Talmon
 
 
The Russell Berrie Nanotechnology Institute has become an exemplary paradigm for progress. By giving inspired, but grounded, structure to create and nurture research into nanotechnology and science at Technion, the Russell Berrie Nanotechnology Institute is at the global forefront of transforming teaching, science, technology and industry.

Active, ground-breaking research into the nano-dimension has been thriving in individual labs across the many faculties of the Technion for over a decade. The ingenuity, curiosity, expertise and global scientific direction was scattered in individual projects across campus long before the festive dedication ceremony of the Russell Berrie Nanotechnology Institute on June 7th 2005, held together with the visionary Russell Berrie Foundation trustees.

Yet the formation of the Russell Berrie Nanotechnology Institute as a unified multidisciplinary structure committed to nurturing nano research and cooperation, and bringing the expert infrastructure to campus to make that research possible had a local, national and international impact. Month by month we are witnessing a revolution and evolution of science, as Israel takes its place through a powerful, supportive structure at the pioneering frontier of future science and technology. Nano is not a dream or a fantasy, it is a global need – directed by the progress of science and technology in all fields, and thanks to the Russell Berrie Nanotechnology Institute, Technion scientists are in a position where they can answer that need, maintaining Israel’s position at the cutting edge of world-class research and innovation.

The Triangle Donation Matching (TDM) 5-year program to transform Nanoscience and Nanotechnology (NN) research in Israeli universities was set up in 2005 at the Technion. The rapid and evident success of the Russell Berrie Nanotechnology Institute (resulting partly from the great pool of excellent scientists already active in nanoresearch at Technion) inspired the birth of five other such nano centers at other universities in Israel in 2006, leading to a total investment of $220 million over five years in addition to tens of millions of dollars raised in research funds from Israeli and international funding agencies. The Russell Berrie Nanotechnology Institute has also had a dramatic impact on the development of Israeli nano industry.

The momentum of the Russell Berrie Nanotechnology Institute and the clarity of its vision and direction inspired other philanthropists to answer the call of scientific need and to invest in the future. Over five years, the Russell Berrie Nanotechnology Institute scientists tripled the amount of the funding from external grants.  The evidence of the clearly operating, highly productive structure of the Russell Berrie Nanotechnology Institute has formed a model for effective multidisciplinary research, exposing a national and international need for such structures. As a result, major donors have committed to investing in additional centers at Technion – Israel Institute of Technology.

Our first priority at the Russell Berrie Nanotechnology Institute is education, for on this, the security and future of the state of Israel depend. The future of scientific research in Israel and its high-tech success, is personified by its young people. the Russell Berrie Nanotechnology Institute’s Norman Seiden Multidisciplinary Graduate Program in Nanoscience and Nanotechnology was the first in Israel to award advanced degrees in the field. Following the success of this program, two similar initiatives were recently born at the Hebrew University and at the Tel Aviv University (towards an MSc degree). Graduates of the Norman Seiden Graduate Program, equipped with a unique multidisciplinary education, will have a dramatic impact on research in industry and academia.  

The Russell Berrie Nanotechnology Institute, a powerful Israeli nano center, is also an international magnet. The Institute hosts winter schools, which bring together world-renowned researchers with graduate students from Technion and other Israeli universities. In addition, the Nevet research program is actively supporting international collaboration between Technion and scientists from Israel, Germany, Singapore and others.

In response to a rising need, RBNI has taken a new initiative to develop the field of NanoMed. Major donors have already committed to invest in this scientifically fascinating center to nurture active collaborations between Technion’s nano scientists and its stellar researchers in life sciences. Breakthrough research focused on identifying and curing cancer and kidney-related diseases are already underway. Much of Technion research into NanoMed opens the promise of a revolution in new medical treatments and world health-care. Research projects such as the “Electronic Nose” – detecting cancer via breath analysis – give a glimpse of the miracles nanoscience can perform when combined with life sciences and applied to medical research.

The Russell Berrie Nanotechnology Institute is also nurturing other innovative multidisciplinary drives, such as the Technion’s courageous move into energy research, environmental research and security. Examples include the photovoltaic cells project; sensors for monitoring water quality; and research into the identification of toxic air-borne chemicals.

The combination of world-class Nano infrastructure with exclusive expertise, means Technion is a first port of call for industry. Approximately 120 research groups from industry have used this equipment over the past five years, in addition to dozens of academic groups.