Thursday, July 31, 2008

Cell changes may help Lou Gehrig's research

Cell changes may help Lou Gehrig's research

YouNewsTV™

Story Published: Jul 31, 2008 at 11:22 AM PDT


By Associated Press WASHINGTON (AP) - Using a new technique to reprogram cells, scientists are growing neurons from people with Lou Gehrig's disease, a possible first step in understanding how the deadly illness develops.Technically known as amyotrophic lateral sclerosis, the disease damages the nerve cells in the brain and spinal cord, eventually leading to death. The ALS Association estimates that as many as 30,000 Americans may have the disease at any given time."What we now have in the culture dish is cells that have the same genetic makeup as the ALS patient and they are the same cells that are affected by the disease," said Dr. Chris Henderson, co-director of the Center for Motor Neuron Biology and Disease at Columbia University.That means that, for the first time, scientists hope to be able to observe the development of the disease in the cells and, from that, possibly begin studies of treatments."There is no way we could go to an ALS patient and take these cells," Henderson pointed out.Instead, they used skin cells from two patients, aged 82 and 89, and were able to reprogram the cells into a type of adult stem cell, and from that into nerve cells, the researchers report in Friday's edition of the journal Science.Co-author Dr. Kevin Eggan of the Harvard Stem Cell Institute said what they hope to do next is study the cells in the lab and compare them with cells of someone who doesn't have that disease.ALS is a slowly developing disease and the test cells have not yet begun to show illness, they noted. But in similar studies in mouse cells the cultured neurons did develop the disease.Dr. Lucie Bruijn, science director and vice president of the ALS Association, called the work a first step."This is the beginning," she said in a telephone interview. "It's a most important approach.""Now we have to figure out whether these motor neurons are able to mature," she added. "For these to be useful for drug development we need mature motor neurons."The researchers worked with a form of ALS that is caused by a defect in a single gene, a rare form of the disease.But Henderson said that they even though the vast majority of cases are caused by different triggers, they hope to learn about the mechanism of the disease, how it develops after being triggered."Up until now, it's been impossible to get access to the neurons affected by ALS and, although everyone was excited by the potential of the new technology, it was uncertain that we would be able to obtain them from patients' skin cells," Henderson said. "Our paper now shows that we can generate hundreds of millions of motor neurons that are genetically identical to a patient's own neurons. This will be an immense help as we try to uncover the mechanisms behind this disease and screen for drugs that can prolong life."The research was supported by the Harvard Stem Cell Institute, Project ALS, the SMA Foundation, MDA Wings Over Wall Street, the Spina and Bowen families, the New York Stem Cell Foundation, the National Science Foundation and the John D. and Catherine T. McArthur Foundation

Wednesday, July 30, 2008

World Stem Cell Summit

There is a World Stem Cell Summit held in Madison by the Waisman Center on September 22 -24. There are several therapies under discussion for human trial in early 2009.
Here is a link to the program: http://www.worldstemcellsummit.com/

Thursday, July 24, 2008

these are some of the answers people gave to the question: What is your biggest ALS fear?

I'M SHARING SOME OF THE MIND SETS OF PEOPLE WHO ARE FACING THE FUTURE W/ THIS DISEASE. THIS DISEASE HAS DEPLETED OUR PHYSICAL ABILITIES. AND IT DOES NOT STOP.

  1. Total paralysis, I'm scared of it
  2. losing the ability to walk.
  3. I'm with Sheila on this one. Total paralysis. I nearly drowned when I was a kid, and I've had a fear of being helpless ever since. I've become claustrophobic because of this. The idea of being trapped in my body, not even able to move my head, scares the crap out of me. I believe this will drive me insane.
  4. my mother having to watch me die.
  5. No cure.
  6. I can't spend time fearing what is ahead for me...I'll go nuts. I only focus on today and what I can still do. Everyday I pray for 3 things...strength, courage, and inner peace.
  7. I fear being alive when the body bag is zipped!
  8. A long drawn-out diminishing until I actually die. I have a slow form of MND - that is great in the earlier stages as I have longer to enjoy doing the things I can still do but that benefit is amply balanced by the fact that the later stages when total paralysis kicks in will last much longer too. I have no fear of death itself but I certainly fear the stage before when I am unable to do anything except just be there.

Wednesday, July 23, 2008

Jul 22 What is your biggest ALS fear?

Jul 22
What is your biggest ALS fear?
Created by TipaCow on www.patientslikeme.com


my answer:
it is not DYING that scares-i'm okay w/ that. it's GETTING dead that keeps me awake at night....

Monday, July 21, 2008

World’s First Genome-Wide Spinal Cord Atlas Unveiled

July 21, 2008
World’s First Genome-Wide Spinal Cord Atlas Unveiled

Co-Funded by The ALS Association
The ALS Association has joined a funding consortium of non-profit and private organizations to fund the Allen Spinal Cord Atlas, which was unveiled as the world’s first genome-wide map of the mouse spinal cord, key to the study of amyotrophic lateral sclerosis and other diseases, disorders and traumatic injuries of the spinal cord.
Created by the Seattle, Wash.-based Allen Institute for Brain Science, the atlas enables researchers to access the free online data to advance their research surrounding these conditions.
“The atlas enables scientists to determine the location of genes and their expression patterns at the cellular level in the spinal cord,” said Lucie Bruijn, Ph.D., science director and vice president of The Association. “This will provide an important reference when trying to understand gene changes and how these are linked to disease in mouse models of ALS.”
From Lou Gehrig’s Disease (ALS) to Spinal Muscular Atrophy, spinal cord related diseases and disorders affect people of all ages. As many as 30,000 Americans, including military veterans, suffer from ALS at any given time; and multiple sclerosis affects 2.5 million people worldwide, to name a few. Nearly one-quarter of a million Americans—including several thousand troops who have served in Iraq—have suffered or suffer from a spinal cord injury.
The Institute’s unique funding model, designed to transform public, private and foundation funds into breakthrough scientific discoveries, supported the Spinal Cord Atlas’ dedicated consortium of public and private entities—including The Association, PVA Research Foundation, Wyeth Research, PEMCO Insurance, National Multiple Sclerosis Society, International Spinal Research Trust and philanthropist and Institute founder Paul G. Allen, as well as numerous anonymous donors.
“We were so thrilled to work with such a diverse array of funders with a shared goal of supporting this important project—which the Institute would never have completed without their support,” said Elaine Jones, chief operating officer at the Allen Institute. “The Allen Spinal Cord Atlas serves as a successful example of how major scientific projects can be funded, and we are eternally grateful to our partners.”
The atlas will be completed in a 12-month time frame. While inaugural data—approximately 2,000 genes—from the Allen Spinal Cord Atlas is now available (http://mousespinal.brain-map.org), the Institute will continue to follow its founding mission and upload additional information until the projected completion by the end of 2008. It is estimated that hundreds of users from universities, research institutes, pharmaceutical companies and government organizations will use the atlas.
When completed, the Allen Spinal Cord Atlas will detail approximately 20,000 genes including data from youth and adult developmental stages. It will also feature data across the full length of the spinal cord as well as anatomical reference sections.
The ALS Association is the only not-for-profit voluntary health organization dedicated solely to the fight against ALS through research, patient care, advocacy and public education. The mission of The Association is to lead the fight to cure and treat ALS through global, cutting-edge research, and to empower people with Lou Gehrig’s Disease and their families to live fuller lives by providing them with compassionate care and support.

Thursday, July 17, 2008

If everyone cared and nobody cried
If everyone loved and nobody lied
If everyone shared and swallowed their pride
Then we'd see the day when nobody died

When nobody died....We'd see the day,
we'd see the day
When nobody died
We'd see the day, we'd see the day
When nobody died
We'd see the day when nobody died

Wednesday, July 16, 2008

it's at the 9-12 month mark when will know if it works

Dear all,

You are receiving this message because you or your PALS are participating in or have participated in or requested information about the online worldwide ALS lithium study. We wanted to let you know that the preliminary three month study report is now available for download. Please go to http://alslithium.atspace.com/ and download the report from the latest "updates" link at the bottom of the page. Please note that this is a preliminary report which has not yet been edited or approved by PatientsLikeMe.We will continue to collected data through the 6 month point after which we will write up a final report. All data collection and analysis after that point will be done by PatientsLikeMe.Our basic results so far are, in summary:At the three month point:

Lithium does not affect ALS progression rates, at least for most PALS

Taking riluzole with lithium does not make a difference

Reaching a blood level of 0.4 does not make a difference

The ALSFRS-R score when lithium was started doesn't make a difference

Lithium may relieve cramps and fascics and spasticity for some at low doses (0.2 mmol/l blood concentration)Although not in the 3 month report, it seems that PALS who are taking an Omega 3 supplement are progressing a bit more slowly. There was also an interesting research report that came out yesterday that calcium supplements may be helpful (Medications and laboratory parameters as prognostic factors in amyotrophic lateral sclerosis. Qureshi M, Shui A, Dibernardo AB, Brown Jr RH, Schoenfeld DA, Cudkowicz ME.) The research abstract didn't give the dosage, but a quick search of PLM indicated that many PALS on calcium are taking ~1200 mg/day.

Thank you so, so much to everyone who has provided data for the lithium trial. So far our research results have been disappointing, but it is so much better to get results quickly so that we can move onto the next thing rather than to have to wait 2 to 3 years for the traditional research machinery to do its work. You have shown what a dedicated groups of PALS and CALS can do!Best wishes to everyone -- I'll be in touch,Karen

Hope is the Thing with Feathers
Posted: 15 Jul 2008 03:21 PM CDT
“Hope” is the thing with feathers
That perches in the soul
And sings the tune without the words
And never stops at all,
And sweetest in the gale is heard;
And sore must be the storm
That could abash the little bird
That kept so many warm.
I’ve heard it in the chillest land
And on the strangest sea,
Yet never, in extremity,
It asked a crumb of me.
By: Emily Dickinson
- Emily Dickinson

Monday, July 14, 2008

Life is not about waiting for the storm to clear, it's about learning to dance in the rain

Saturday, July 12, 2008

a great friend sent this to me

makes sense.....

I can see clearly now, the rain is gone,
I can see all obstacles in my way
Gone are the dark clouds that had me blind
It's gonna be a bright (bright), bright (bright)Sun-Shiny day. (I FUCKING HOPE SO!!)

Johnny Nash ~ I Can See Clearly Now

Friday, July 11, 2008

good news

Michigan stem cell research proposal advances
By TIM MARTIN,
Associated Press WriterTue Jul 8, 4:06 AM ET
Supporters of a ballot measure that would loosen Michigan's restrictions on embryonic stem cell research took a big step toward placing it on the November ballot.
The Stem Cell Research Ballot Question Committee said Monday it turned in more than 570,000 voter signatures backing the measure. More than 380,000 of them must be ruled valid for the proposal to reach voters.
Backers say embryonic stem cell research holds the potential to help treat or cure diseases such as Alzheimer's, Parkinson's, cancer, sickle cell anemia and diabetes.
The politically diverse group that helped launch the campaign Monday included former Republican U.S. Rep. Joe Schwarz and former Democratic gubernatorial hopeful Larry Owen.
"It is research that we know has a high chance of curing many diseases and saving many lives," said Owen, the campaign chairman.
Opponents raise ethical concerns because the research involves the use and destruction of human embryos. The Michigan Catholic Conference and Right to Life of Michigan oppose the proposal and an opposition group called Michigan Citizens Against Unrestricted Science and Experimentation is forming.
"The proposal is deliberately deceptive," group spokesman David Doyle said. "It's the confusing legalese that is the problem."
Ballot proposal supporters countered that their opponents are the ones misrepresenting the issues. Supporters are trying to make the ballot because their efforts to change state law have failed in the Legislature.
Some embryonic stem cell research is allowed in Michigan. But the state's laws related to the research are among the nation's most restrictive, allowing only the use of stem cell lines from California, Illinois or other states with less restrictive laws. Those lines sometimes are patented by other researchers.
Ballot proposal supporters say changing Michigan's law would help broaden the type of available stem cell lines, opening up new avenues for potential cures and eventually drawing more research money to the state.
The proposal would change Michigan law to allow research on donated embryos created during fertility treatments that otherwise would be discarded. It's now a state felony to use new embryonic stem cells for research.
Supporters of the proposal to amend the constitution say it protects and strengthens Michigan's ban on human cloning. The proposal says nothing in it "shall alter Michigan's current prohibition on human cloning."
Opponents say the proposal does not explicitly put a ban on human cloning in the state constitution, so cloning could be allowed if state law is ever changed to permit it.
Stem cells are rare cells in tissues that give rise to most other cells. While many scientists say embryonic stem cell research holds the most medical versatility and potential, critics are upset that stem cells are harvested from adults or umbilical cords.
___
On the Net:
Stem Cell Research Ballot Question Committee: http://www.curemichigan.com
Michigan Citizens Against Unrestricted Science and Experimentation: http://www.micause.com

Thursday, July 10, 2008

A POEM: — anon·y·mous·ly SENT TO ME


Three Little Letters
In Honor of Robert J Cram

A life altering change at a blink of an eye,
a debilitating disease can leave you wondering “Why”?

Weakness and Strength is the bodies constant fight,
no cure to the illness leaves a future un-bright.

Speaking with no words is a challenge to conquest,
faith and patience is what does it best.

Courage and Hope is your medication for pain,
time is the enemy with nothing to gain.

Day to day struggles makes it difficult to see,
that God has a plan and knows what’s best for me.

Education and awareness is priority no less,
with hopes to finding a cure and strike out ALS.



-Ashley Meadows
June 2008

Wednesday, July 9, 2008

Turning an adversity into opportunity is possible

ALS Association Wins Fight for Power Wheelchairs

ALS Association Wins Fight for Power Wheelchairs
Dear Drew,
Thanks to the outreach of ALS advocates in key states across the country, the U.S. Senate this afternoon passed legislation (HR 6331) that would exclude power wheelchairs from Medicare's new competitive bidding program. The bill, which passed by a 69-30 vote, also would delay implementation of the program for 18 months. This is a tremendous victory for people with ALS and their families and helps to ensure PALS will continue to have access to needed power wheelchairs!
For nearly two years, The ALS Association has worked with Congress to exclude high-end power chairs from the new program for fear that it would limit the types of chairs available to PALS, reduce services and force PALS to obtain chairs from suppliers who do not know the unique medical needs of people with ALS.
The Association held a breakout session on competitive bidding during our Advocacy Conference in May and worked closely with PALS and Chapters to educate Congress on the unique needs of people with ALS, making it clear that one-size-fits-all policies like competitive bidding are not appropriate when it comes to this disease. In fact, the participation of PALS at a press conference on competitive bidding last year helped to highlight the concerns of the ALS community and clearly demonstrated that the chairs needed by PALS are much different than those used by most Medicare beneficiaries.
With today's vote, we are one step closer to ensuring that competitive bidding will not limit the ability of PALS to access to the power chairs they need when they need them.
The House of Representatives already has passed HR 6331 with broad support so the bill now heads to the President for his signature. The President has signaled that he may veto the bill due to concerns about other unrelated provisions. However, both the Senate and House passed the bill with enough support to override a veto and enact HR 6331 into law.
We would like to thank all of the PALS, families and Chapters who have helped to reach out to Congress in support of this issue over the past two years. Your outreach has continued to make a difference!
If you have any questions about today's vote or would like additional information, please contact the Advocacy Department at advocacy@alsa-national.org or 1-877-444-ALSA.
Thank you!

Tuesday, July 8, 2008

Stem cells 'halt nerve disease'


Stem cells 'halt nerve disease'


The injection contained immature foetal glial cells
An injection of stem cells has been used to cure mice with a normally fatal nervous system condition.
The therapy which helped repair faulty nerve wiring raises hopes of treatments for children with rare and deadly nervous leukodystrophy disorders.
A UK expert said human treatments were still some way off - but potentially the technique could be used to treat conditions such as multiple sclerosis.
The US study features in the journal Cell: Stem Cell.
It's extremely exciting to think about not only treating but actually curing a disease, particularly an awful disease that affects children Professor Steven GoldmanUniversity of Rochester Medical Center
The scientists from the University of Rochester Medical Center believe it may be the first time that this type of "shiverer" mouse has been cured.
Its genetic makeup means that its nerve cells do not have enough myelin, a fatty coating which acts like the sheath on an electrical wire.
Without it, nerve signals do not travel properly from cell to cell, causing the trademark shaking and wobbling symptoms, and normally death within four months.
There are dozens of rare human disorders which involve genetic myelin-related faults in the nervous system, most of which are fatal in childhood or young adulthood.
One of the most well-known of these affected Lorenzo Odone, who died last week after decades battling adrenoleukodystrophy.
Surviving minority
The US team did not use "true" stem cells, which have the ability to turn into any cell in the body, but precursor stem cells, which can become one of a limited number of cell types.
The "glial cells" used here can become among other things, oligdendrocytes, the cells which produce the myelin sheath.
The cells were injected in different places in the central nervous system in a bid to see if this could make any difference to the overall symptoms.
For most, it made none, with three-quarters of the 26 mice injected dying around the same time as mice who had received no treatment.
However, for six mice, the difference was stark - in just two months, the cells had spread around, multiplying, and covering nerve cells in the brain and spinal cord, and producing myelin to coat them.
Two of the mice lived longer than usual, but the other four were still alive a year later, free from virtually all symptoms.
'Awful disease'
Professor Steven Goldman, who led the study, said: "We kept expecting them to die, but not only did they not die, they improved day by day.
"It's extremely exciting to think about not only treating but actually curing a disease, particularly an awful disease that affects children.
Professor David Attwell, from University College London, said the study represented an "important proof of principle" that transplantation of these "precursor" cells could help restore myelin not only within people with leukodystrophies, but in theory within those affected by other conditions involving loss of myelin, such as multiple sclerosis, cerebral palsy and spinal cord injury.
However, he said: "The work is still a long way from being applied in humans, and the paper raises several issues which could affect the chances of that happening.
"Only a small fraction of the mice were cured, and it is unclear why."
He said that other potential hurdles were whether within humans, defective myelin-producing cells would be as readily replaced by the new transplanted in versions, and whether, as in the mice, the immune system would have to be suppressed prior to treatment. http://news.bbc.co.uk/2/hi/health/7435137.stm
6 Mark this post as helpful

Saturday, July 5, 2008

ALS toxic assault

ALS toxic assault
Date: 07/04/2008
Align Center
Leaky blood vessels that lose their ability to protect the spinal cord from toxins may play a role in the development of amyotrophic lateral sclerosis, better known as ALS or Lou Gehrig's disease, according to research published in the April issue of Nature Neuroscience.
The results mark the first time that scientists have witnessed molecular changes occurring long before key nerve cells start dying. The unexpected finding opens up a new front in studies of ALS, a disease in which motor neurons in the spinal cord die off for unknown reasons, resulting in dramatically weakened muscles. Patients lose their strength, their ability to move or swallow, and eventually lose their ability even to breathe. Most patients live only a few years after diagnosis.
"We believe these changes contribute to or possibly initiate the onset of ALS," said lead author Berislav Zlokovic, M.D., Ph.D., of the University of Rochester Medical Center. "It's clear that these changes occur before the loss of neurons, and it's well known that the types of changes we are seeing certainly injure or kill these types of cells, which are extremely sensitive to their biochemical environment."
The results, discovered by studying mutant mice that have an inherited form of the disease, were made by a collaboration of neuroscientists from the University of Rochester Medical Center working together with a team of ALS experts from the University of California at San Diego. Zlokovic, a pioneer in learning how the body's vascular system plays a role in neurodegenerative diseases like Alzheimer's disease and ALS, led the team, and the first author is post-doctoral researcher Zhihui Zhong, Ph.D.
While it's unlikely the new findings will help ALS patients immediately, the results open up a new and unexpected way to think about the disease. Zlokovic's team is currently testing in the laboratory a compound that may help seal up leaky vessels and protect the neurons targeted by ALS.
The team studied mice with a mutation in a gene for superoxide dismutase 1 (SOD-1), which in healthy people and mice plays an important role keeping cells safe from damaging molecules known as free radicals. Scientists estimate that SOD-1 mutations play a role in a small number of cases of ALS overall in people, about one-quarter of the 10 percent or so of cases that are inherited. But those cases provide a unique window to study the disease's initial steps.
In the Nature Neuroscience paper, the group from Rochester's Center for Neurodegenerative and Vascular Brain Disorders and UCSD showed that a breakdown in the natural barrier between the blood and the spinal cord breaks down early on in mice destined to get ALS, long before nerve cells appear sick or die.
In this work, the team showed that the barrier between the blood and the spinal cord weakens in all three types of genetically based ALS cases that involve SOD-1 mutations, allowing toxic substances to flood into the spinal cord and directly affect neurons.
That barrier is crucial for the health of our central nervous system, which is treated like the inner sanctum of the body. Like a high-performance race car that demands a choice fuel, our neurons work well only if the chemical environment in the brain and spinal cord is precisely maintained within a strict, narrow set of conditions.
To maintain that select environment, the body has strict barriers or gateways for substances entering or exiting the central nervous system. Blood vessels run through our brain and spinal cord and supply oxygen and other nutrients, and the lining of those blood vessels constitutes a biochemical barrier to protect the central nervous system from toxins, inflammatory cells, red blood cells, blood products, and a variety of other potential toxic insults.
The barrier between the blood and the spinal cord isn't some stand-alone structure that keeps all substances away from the spinal cord. Rather, the word "barrier" describes an elaborate molecular lattice that lines the insides of the blood vessels that weave throughout the spinal cord. The lattice controls which molecules can cross from the blood to the neurons in the spinal cord, and which cannot. It's a bit like netting with very small openings that line the inside of blood vessels.
Oxygen and many nutrients get the OK to pass through the barrier in measured amounts. And the barrier readily accepts waste products from the spinal cord, transporting them away from the central nervous system and eventually out of the body. But the "netting" should be taut and should bar substances in the blood that have no business being near neurons.
The team found that a SOD-1 mutation disrupted key building blocks in the barrier. Essentially, the mutations loosened the lattice, creating bigger holes in the barrier that allowed molecular interlopers to pass from the blood to the spinal cord.
Mice with the mutation had lower levels of three types of "tight junction proteins" that are key components of the barrier: ZO-1, occludin and claudin-5. In mice just two months old, the numbers of those important tight junction proteins in the linings of blood vessels were reduced by about half, by 40 to 60 percent, allowing the lattice to loosen abnormally.
The weakened barrier brought about several problems. Neurons were exposed directly to biochemical byproducts of haemoglobin, which forms reactive oxygen molecules that injure neurons. Where the barrier had weakened, tiny hemorrhages dotted the spinal column. The smallest blood vessels crucial to nerve health shrunk: Mice with the mutation had total capillary length in the spinal cord 10 to 15 percent less than healthy mice, and their blood flow in the spinal cord was reduced by 30 to 45 percent.
Scientists must investigate whether the same processes happen in forms of ALS that are not inherited. Zlokovic notes that from what is known so far, the disease progresses exactly in inherited forms and forms that are not inherited.
"The vascular system is crucial to health - it's how oxygen and other nutrients are delivered to cells, and how toxins are removed," said Zlokovic, who is professor of Neurosurgery and Neurology and director of the Center for Neurodegenerative and Vascular Brain Disorders. "Any damage to the vascular system is a serious threat to the organism. It's clear now that the vascular system is certainly involved in the development of ALS."
Zlokovic first began doing research on the disease in 2004, when a former classmate from medical school who had been diagnosed with ALS and was looking for new treatments contacted him. By the time his friend died two years later, Zlokovic was well underway in studies investigating the possible role of the vascular system.
During the last 15 years, Zlokovic has pioneered the view that the vascular system plays a central role in many neurodegenerative diseases. He has found that a breakdown in the barriers between the blood and the central nervous system may be at the root of diseases like Alzheimer's. In January, Zlokovic reviewed the evidence for involvement of the barrier in diseases like Alzheimer's, ALS, and multiple sclerosis in a 24-page review in Neuron.

Thursday, July 3, 2008

A SONG.....

It used to seem to me
That my life ran on too fast
And I had to take it slowly
Just to make the good parts last

But when youre born to run
Its so hard to just slow down
So dont be surprised to see me
Back in that bright part of town

Ill be back in the high life again
All the doors I closed one time will open up again
Ill be back in the high life again

All the eyes that watched me once will smile and take me in

appropriate for my challenge

There are really only two ways to approach life - as victim or as gallant fighter - and you must decide if you want to act or react, deal your own cards or play with a stacked deck. And if you don't decide which way to play with life, it always plays with you.--Merle Shain

Wednesday, July 2, 2008

If you're never scared or embarrassed or hurt, it means you never take any chances.--Julia Soul

If you're never scared or embarrassed or hurt, it means you never take any chances.--Julia Soul

Tuesday, July 1, 2008

Devices known as brain-machine interfaces could someday be used routinely to help paralyzed patients and amputees control prosthetic limbs with just t

Devices known as brain-machine interfaces could someday be used routinely to help paralyzed patients and amputees control prosthetic limbs with just their thoughts.

--Now, University of Florida researchers have taken the concept a step further, devising a way for computerized devices not only to translate brain signals into movement but also to evolve with the brain as it learns.
Instead of simply interpreting brain signals and routing them to a robotic hand or leg, this type of brain-machine interface would adapt to a person's behavior over time and use the knowledge to help complete a task more efficiently, sort of like an assistant, say UF College of Medicine and College of Engineering researchers who developed a model system and tested it in rats.
Until now, brain-machine interfaces have been designed as one-way conversations between the brain and a computer, with the brain doing all the talking and the computer following commands. The system UF engineers created actually allows the computer to have a say in that conversation, too, according to findings published this month online in the Institute of Electrical and Electronics Engineers journal IEEE Transactions on Biomedical Engineering.
"In the grand scheme of brain-machine interfaces, this is a complete paradigm change," said Justin C. Sanchez, Ph.D., a UF assistant professor of pediatric neurology and the study's lead author. "This idea opens up all kinds of possibilities for how we interact with devices. It's not just about giving instructions but about those devices assisting us in a common goal. You know the goal, the computer knows the goal and you work together to solve the task."
Scientists at UF and other institutions have been studying and refining brain-machine interfaces for years, developing and testing numerous variations of the technology with the goal of creating implantable, computer-chip-sized devices capable of controlling limbs or treating diseases.
The devices are programmed with complex algorithms that interpret thoughts. But the algorithms, or code, used in current brain-machine interfaces don't adapt to change, Sanchez said.
"The status quo of brain-machine interfaces that are out there have static and fixed decoding algorithms, which assume a person thinks one way for all time," he said. "We learn throughout our lives and come into different scenarios, so you need to develop a paradigm that allows interaction and growth."
To create this type of brain-machine interface, Sanchez and his colleagues developed a system based on setting goals and giving rewards.
Fitted with tiny electrodes in their brains to capture signals for the computer to unravel, three rats were taught to move a robotic arm toward a target with just their thoughts. Each time they succeeded, the rats were rewarded with a drop of water.
The computer's goal, on the other hand, was to earn as many points as possible, Sanchez said. The closer a rat moved the arm to the target, the more points the computer received, giving it incentive to determine which brain signals lead to the most rewards, making the process more efficient for the rat. The researchers conducted several tests with the rats, requiring them to hit targets that were farther and farther away. Despite this increasing difficulty, the rats completed the tasks more efficiently over time and did so at a significantly higher rate than if they had just aimed correctly by chance, Sanchez said.
"We think this dialogue with a goal is how we can make these systems evolve over time," Sanchez said. "We want these devices to grow with the user. (Also) we want users to be able to experience new scenarios and be able to control the device."
Dawn Taylor, Ph.D., an assistant professor of biomedical engineering at Case Western Reserve University, said the results of the study add a new dimension to brain-machine interface research. That UF researchers were able to train rats to use the robotic arm and then obtain significant results from animals lacking the mental prowess of primates or humans is also impressive, she said.
"It's a clear demonstration of a methodology that will work in situations when other implementations would fall apart," Taylor said.
Source : University of Florida

Monday, June 30, 2008

Nerve Cells Derived From Stem Cells And Transplanted Into Mice May Lead To Improved Brain Treatments

Nerve Cells Derived From Stem Cells And Transplanted Into Mice May Lead To Improved Brain Treatments
ScienceDaily (June 26, 2008)

- Scientists at the Burnham Institute for Medical Research have, for the first time, genetically programmed embryonic stem (ES) cells to become nerve cells when transplanted into the brain, according to a new study published in The Journal of Neuroscience.
See also:
Health & Medicine
Stem Cells
Brain Tumor
Nervous System
Mind & Brain
Brain Injury
Dementia
Neuroscience
Reference
Embryonic stem cell
Stem cell treatments
Astrocyte
Peripheral vision
The research, an important step toward developing new treatments for stroke, Alzheimer's, Parkinson's and other neurological conditions showed that mice afflicted by stroke showed tangible therapeutic improvement following transplantation of these cells. None of the mice formed tumors, which had been a major setback in prior attempts at stem cell transplantation.
The team was led by Stuart A. Lipton, M.D., Ph.D., professor and director of the Del E. Webb Neuroscience, Aging, and Stem Cell Research Center at Burnham. Dr. Lipton is also a clinical neurologist who treats patients with these disorders. Collaborators included investigators from The Scripps Research Institute.
"We found that we could create new nerve cells from stem cells, transplant them effectively and make a positive difference in the behavior of the mice," said Dr. Lipton. "These findings could potentially lead to new treatments for stroke and neurodegenerative diseases such as Parkinson's disease."
Conditions such as stroke, Alzheimer's, Parkinson's and Huntington's disease destroy brain cells, causing speech and memory loss and other debilitating consequences. In theory, transplanting neuronal brain cells could restore at least some brain function, just as heart transplants restore blood flow.
Prior to this research, creating pure neuronal cells from ES cells had been problematic as the cells did not always differentiate into neurons. Sometimes they became glial cells, which lack many of the neurons' desirable properties. Even when the neuronal cells were created successfully, they often died in the brain following transplant--a process called programmed cell death or apoptosis. In addition, the cells would sometimes become tumors.
Dr. Lipton solved these problems by inducing ES cells to express a protein, discovered in his laboratory called myocyte enhancer factor 2C (MEF2C). MEF2C is a transcription factor that turns on specific genes which then drive stem cells to become nerve cells. Using MEF2C, the researchers created colonies of pure neuronal progenitor cells, a stage of development that occurs before becoming a nerve cell, with no tumors. These cells were then transplanted into the brain and later became adult nerve cells. MEF2C also protected the cells from apoptosis once inside the brain.
"To move forward with stem cell-based therapies, we need to have a reliable source of nerve cells that can be easily grown, differentiate in the way that we want them to and remain viable after transplantation," said Dr. Lipton. "MEF2C helps this process first by turning on the genes that, when expressed, make stem cells into nerve cells. It then turns on other genes that keep those new nerve cells from dying. As a result, we were able to produce neuronal progenitor cells that differentiate into a virtually pure population of neurons and survive inside the brain."
The next step was to determine whether the transplanted neural progenitor cells became nerve cells that integrated into the existing network of nerve cells in the brain. Performing intricate electrical studies, Dr. Lipton's investigative team showed that the new nerve cells, derived from the stem cells, could send and receive proper electrical signals to the rest of the brain.
They then determined if the new cells could provide cognitive benefits to the stroke-afflicted mice. The team executed a battery of neurobehavioral tests and found that the mice that received the transplants showed significant behavioral improvements, although their performance did not reach that of the non-stroke control mice. These results suggest that MEF2C expression in the transplanted cells was a significant factor in reducing the stroke-induced deficits.
The work was supported in part by National Institutes of Health (NIH) grants and a Senior Scholar Award in Aging Research from the Ellison Medical Foundation.
The ultimate measure of a man is not where he stands in moments of comfort and convenience, but where he stands at times of challenge and controversy.
Martin Luther King, Jr.

Friday, June 27, 2008

me doing aqua therapy......

A HAM FOR THE CAM
LIKE ALWAYS...



I RECIEVED EMAILS FROM FRIENDS YESTERDAY LIVING IN ITALY, MALDOVA (boris' DAUGHTER ALINA), CANADA, KENTUCKY, STAMFORD, NORWALK, BOCA ROTON-FLA., WILTON, HANGZHOU-CHINA AND AUSTIN-TEXAS. AND IT MADE MY DAY WHEN I REALLY NEEDED IT!!!!!!!!!!!!!
THANK YOU-THANK YOU-THANK YOU
LOVE,
DREW

Wednesday, June 25, 2008

love

Love doesn't demand; love compromises. It doesn't possess; it frees. Love doesn't gloat; it praises. Love makes friends of strangers. It softens our rough edges and strengthens our assets. Knowing we're loved inspires us and invites forth our best effort. Offering our love humbles us and cultivates an inner joy.

Monday, June 23, 2008

pics from gaylord rehab

i'm really taking a poop.........

taking a nap
that is tony-my OT

In life, the difficult periods are the best periods to gain experience and shore up determination. As a result, my mental status is much improved because of them.--The Dalai Lama


Sunday, June 22, 2008

Lou Gehrig’s Disease Protein Found Throughout Brain, Suggesting Effects Beyond Motor Neurons, Find Penn Researchers

New research findings - new Hope !!!The link:http://www.uphs.upenn.edu/news/News_Releases/2008/06/als-tdp43-throughout-brain.htmlThe article:NEWS RELEASE --------------------------------------------------------------------------------JUNE 16 , 2008
Lou Gehrig’s Disease Protein Found Throughout Brain, Suggesting Effects Beyond Motor Neurons, Find Penn Researchers
PHILADELPHIA –Two years ago researchers at the University of Pennsylvania School of Medicine discovered that misfolded proteins called TDP-43 accumulated in the motor areas of the brains of patients with amyotropic lateral sclerosis (ALS), or Lou Gehrig's disease. Now, the same group has shown that TDP-43 accumulates throughout the brain, suggesting ALS has broader neurological effects than previously appreciated and treatments need to take into account more than motor neuron areas. Their article appeared in last month’s issue of the Archives of Neurology.Image of TDP-43 distribution. Red, orange, and yellow depict areas of highest density of TDP-43 pathology.Click on thumbnailto view full-size image (the image is awesome)“The primary implication for ALS patients is that we have identified a molecular target for new therapies," says co-author John Q. Trojanowski, MD, PhD, Director of Penn’s Institute on Aging. "The other implication is that new therapies for ALS now need to go beyond treating only motor neurons.”Traditionally, ALS has been diagnosed based on muscle weakness and neurodegeneration of the upper and lower motor neurons that extend from the motor cortex to the spinal cord and brainstem motor neurons, which directly innervate voluntary muscles. For example, if you want to wiggle your big toe, the signal travels from the motor neuron in the cortex at the top of your head to a synapse on the lower spinal cord motor neurons in the lower back, which, in turn transmit the “wiggle” command by sending a signal to the muscles that move your big toe. Patients with ALS cannot wiggle their big toe or complete other voluntary muscle movements, including those carried out by their other extremities and eventually, by the diaphragm that moves air in and of their lungs.The study was conducted by examining post-mortem brain tissue of 31 ALS patients. The accumulation of TDP-43 was imaged by detecting TDP-43 with an antibody specific for this protein. TDP-43 pathology was observed not only in the areas of the brain and spinal cord that control voluntary movements, as expected, but also in regions of the brain that involve cognition, executive functioning, memory, and involuntary muscle control. TDP-43 pathology was not observed in any of the controls that did not have ALS.The pathological TDP-43 observed in ALS brains is different in two ways from normal TDP-43 that is found in most cells. The ALS-associated TDP-43 includes fragments of normal TDP-43 as well as other abnormally modified forms of TDP-43, and it is located in the cytoplasm of neurons; whereas, normal TDP-43 is found almost exclusively in the cell nucleus. In ALS, the pathological TDP-43 accumulates in large “globs,” mainly in cell bodies.“Our observation of TDP-43 in the brains of ALS patients suggests that ALS and two other neurodegenerative diseases called ALS- PLUS [ALS with cognitive impairments] and FTLD [frontotemporal lobar disease] may all have the same underlying molecular pathology involving abnormal TDP-43,” says Trojanowski. “This constitutes a paradigm shift in the way we think about these diseases.”Current research is focused on understanding the basic biology of TDP-43 in cell culture systems. The research team is now trying to find out whether pathological TDP-43 causes nerve cells to lose their normal function or if they take on a toxic function. “The over-riding goal that drives our work is helping ALS patients,” says Trojanowski.Felix Geser, of Penn, was lead author on this study. Linda Wong, Maria Martinez-Lage, Lauren Elman, Leo McCluskey, Sharon Xie, and Virginia Lee, all of Penn, and Nicholas Brandmeir, of Albany Medical College, Albany, NY were co-authors. This research was supported by grants from the National Institute on Aging.### Posted by Anonymous to The Journey at June 22, 2008 10:16 AM

Tuesday, June 17, 2008

Bishops condemn stem cell research

what a joke..............if they were in my FUCKING shoes, I guarantee they would reconsider

Bishops condemn stem cell research

By Barbara ListonFri Jun 13, 2:45 PM ET

Catholic bishops on Friday condemned the destruction of human embryos for stem cell research as a "gravely immoral act" in the organization's first formal statement on the issue. The U.S. Conference of Catholic Bishops voted 191-1 to adopt the statement, without debate or discussion. "Harvesting these 'embryonic stem cells' involves the deliberate killing of innocent human beings, a gravely immoral act," the organization said. The identity of the one dissenter or the reason for his dissent was not made public at the gathering in Orlando. Archbishop Joseph Naumann of Kansas City, Kansas, said ballots are signed but are destroyed after they are counted. Naumann said the reason for the 'no' vote could be as simple as a disagreement with the phrasing in the document. "I'm assuming the person isn't going against the pope's teaching," Naumann said. The bishops' vote to adopt the statement, which will be distributed to Catholics in a brochure, came without debate. Hot button issues like abortion and stem cell research mobilized the Republican Party's conservative Christian base to help keep President George W. Bush in the White House in 2004. They may not have the same impact in the November election, as Republican candidate John McCain is viewed by many religious conservatives as soft on core issues like gay marriage and stem cell research. Individual bishops and conference officials have spoken out regularly over the years on embryonic stem cell research. But Bishop Arthur Seratelli of Paterson, New Jersey, said Catholics and the public generally remained confused about the moral and ethical implications of the research, and on the church's position. "U.S. Catholics and the general public deserve a clear, concise and unambiguous statement," Seratelli said. The formal statement on embryonic stem cell research is planned as the first of two related documents to be brought forward from the bishops' Committee on Pro-Life Activities, according to Archbishop John Myers of Newark. Myers said a forthcoming longer, more pastoral statement directed especially toward married Catholics and those dealing with infertility will tackle the issues of in vitro fertilization and the adoption of embryos by couples. The spare embryos eyed by scientists for research are a byproduct of in vitro fertilization. Myers said the Holy See is studying the issue of embryo adoption. The bishops cautioned that stem cell harvesting from spare embryos will spur the creation of additional embryos for scientific purposes and cloning, which the bishops said "reduces human procreation to a mere manufacturing process." "It now seems undeniable that once we cross the fundamental moral line that prevents us from treating any fellow human being as a mere object of research, there is no stopping point," the statement said. "We therefore urge Catholics and all people of good will to join us in reaffirming, precisely in this context of embryonic stem cell research, that 'the killing of innocent human creatures, even if carried out to help others, constitutes an absolutely unacceptable act,"' it added, quoting Pope John Paul II in "The Gospel of Life." (Editing by Michael Christie)

Sunday, June 15, 2008

This is an article I was asked to be a part of--More patients seek experimental stem cell therapy-the boston globe

More patients seek experimental stem cell therapy
Boston Globe
US physicians warn of dangers
By Neil Munshi
Globe Correspondent / June 13, 2008
http://www.boston.com/news/local/massachusetts/articles/2008/06/13/more_patients_seek_experimental_stem_cell_therapy/


Drew Schemera's blog, "The Journey," begins, appropriately enough, with a post detailing preflight jitters.
"I have been tossing and turning all night wondering where I get my strength, but I dig deep and find the answer, always, somewhere in my mind's abyss," he wrote just about a year ago. "A friend told me yesterday that this will be my calling when I get better to breathe life back into people and talk about my experience with this illness and my journey to get better."

Schemera, 35, was on his way to Beike Biotechnology in China for experimental stem cell therapy six months after being diagnosed with amyotrophic lateral sclerosis, commonly known as ALS, and given a life expectancy of 2 1/2 years. His seven injections cost $42,500, including travel and food expenses, and he wrote that he noticed his breathing and swallowing improved afterward.
The Connecticut resident is part of a growing - and potentially dangerous - trend that has seen Americans traveling abroad for experimental stem cell treatments not allowed in the United States.
Leading stem cell researchers say the centers that offer these treatments are exploiting desperate patients. Research, they say, has not yet yielded treatments for diseases such as Parkinson's, ALS, or spinal cord injuries.
Yesterday, members of the International Society for Stem Cell Research began the process of setting professional standards for stem cell research. The guidelines, which will be finalized by year's end, advocate peer review for research, the informed consent of all patients involved in research, and scientific justification for the work. When finalized, the guidelines may help patients decide whether the treatment they seek meets professional standards.
"Because of the spotlight on stem cells, there's been a misconception by some patients that the cure is already here," said Dr. George Q. Daley, president of the research society and head of the stem cell program at Children's Hospital Boston. "We need to be clear that the path to cures is a long and arduous one."
Eden Laboratories, which runs a clinic in Belize, would not meet the stem cell society's proposed guidelines, but still supports them.
"These standards are being put out there to help patients and help the doctors become more educated when they are helping patients," decide whether to get stem cell treatment, said William Bodley, the company's chief operating officer. "The guidelines are absolutely critical and necessary to help in this process."
The clinic has not submitted research for peer review because it hasn't seen enough patients, Bodley said. Eden's website offers patient testimonials for its treatment of ALS, multiple sclerosis, Parkinson's, and skin cancer that has spread, among other ailments.
Still, Daley cautions against any expensive, experimental treatments that offer only anecdotal evidence.
"Patients should be highly suspicious if they are being asked to fly off to far-off places that don't operate under the jurisdiction of any regulatory agency," Daley said, given that only blood stem cell transplants have demonstrated any proven treatment benefits for diseases, including leukemia.
"When we move outside that realm, everything becomes highly experimental," Daley said.
Schemera feels he did the right thing by getting treatment, he wrote in an e-mail (because speaking is difficult for him).
There were "no clinical trials in the USA of any significance and no cure on the horizon," he wrote. "I made a choice to come to China and work my butt off in therapy and change my diet, and I'm slowing it (ALS) down. I'm realistic [enough] to know that I probably will die from ALS, but I'll be damned if I'm not going down swinging! What do I have to lose?"
Daley said the task force that issued the guidelines struggled with the notion that if patients are terminally ill, they should be allowed to choose experimental treatments. Ultimately, the task force had to decide whether the risk of taking such experimental therapy outweighed the benefits - and decided it was important to emphasize how dangerous such treatment can be.
Which is exactly what Dr. Jang-Ho Cha, a neurologist at Massachusetts General Hospital, does when dealing with his terminally ill patients, many of whom suffer from Parkinson's and Huntington's disease. He has never had a patient make the trip overseas for treatment after seeking his advice, but he can understand the mindset of those who do.
"I can't completely blame people because I think it's reasonable and normal to feel very frustrated at the pace of advancement," he said. "I really believe [stem cell therapy] is going to be very powerful one day, but there are a lot of people out there who feel like they don't have time to wait."
© Copyright 2008 Globe Newspaper Company.
more stories like this

Stem cell field grows despite controversy: experts

Stem cell field grows despite controversy: experts
By Maggie Fox, Health and Science Editor Sat Jun 14, 4:13 PM ET
Political controversy may have slowed the pace of stem cell science, but the field is still promising enough to attract many talented researchers, stem cell experts said on Saturday.
A meeting of the International Society for Stem Cell Research in Philadelphia this week attracted 2,500 delegates, something ISSCR president Dr. George Daley finds encouraging.
"Despite the political opposition to parts of stem cell therapy, the entire field has grown in a healthy way," Daley said in a telephone interview.
Stem cells are the body's master cells, giving rise to tissues, organs and blood. Scientists hope to harness their power to create a new field of regenerative medicine, offering cures for diseases of the brain, cancer and serious injuries.
Stem cells from bone marrow can reconstitute the immune systems of patients with leukaemia and rare diseases, but other uses of the cells are experimental.
The only controversial stem cells are those taken from human embryos. Most stem cells have partially differentiated -- started down a clear developmental pathway to becoming a blood cell or a muscle cell, for instance.
Stem cells taken from balls of cells that develop days after conception are far more powerful, giving rise to all tissues in the body. President George W. Bush and some religious conservatives oppose their use because they involve destruction of the human embryo.
The issue has led to annual battles in Congress, with Bush vetoing legislation to require more federal funding of such research. Many experts feared the field would wither, or that expertise would flee to places such as Britain or Singapore that actively encourage embryonic stem cell research.
Instead, it is flourishing, Daley said.
PENT-UP DESIRE
"There obviously has been a pent-up desire to do this work," Daley said.
The discovery last year of induced pluripotent stem cells -- ordinary skin cells that can be transformed into something that looks very much like an embryonic stem cell -- has energized the field, Daley said.
"Now that the technology is easy and free of any political complications, you have got hundreds of new scientists jumping in and calling themselves stem cell biologists," Daley said.
However, experts speaking at the conference agreed that work needs to continue on stem cells from all sources, including embryonic stem cells.
Researchers learned how to make induced pluripotent stem cells or iPS cells by studying which genes were turned on and off as embryonic stem cells developed.
One big hurdle with iPS cells is that they can only be transformed by using viruses to carry in new genes. Applications for adult stem cells are limited because they do not live for long in the body.
"This will require serious work over quite a long time before we can take it to the clinic," said Olle Lindvall of the University of Lund in Sweden.
"Most of the experience we have in treating patients with cells has involved short-term successes," added Ira Fox of the University of Nebraska.
Researchers reported on progress in regenerating pancreatic cells to treat diabetes, using stem cells in gene therapy and in creating new nerve cells.
Others are studying the role of cancer stem cells in a range of tumours. Los Angeles-based ImmunoCellular Therapeutics, Ltd. reported on an experimental a cancer stem cell vaccine aimed at treating deadly brain tumours called glioblastomas.
(Editing by Xavier Briand)

Saturday, June 14, 2008

Tuesday, June 10, 2008

sorry..........

hail the wings


sorry i haven't written!


i'm away till thursday and i will have quite the update on myself.......



Tuesday, June 3, 2008

Genetics Behind Lou Gehrig's Disease Progression Uncovered

http://www.medindia.net/news/Genetics-Behind-Lou-Gehrigs-Disease-Progression-Uncovered-37520-1.htm


Genetics Behind Lou Gehrig's Disease Progression Uncovered


The genetics behind Amyotrophic lateral sclerosis (ALS) or Lou Gehrig's disease has been identified by University of Tokyo researchers.
Lead researchers Dr. Hidenori Ichijo and Dr. Hideki Nishitoh describe ALS as a rapidly progressive, fatal neurological disease involving the degeneration and death of motor neuron cells. In their study paper, the researchers have highlighted how mutations in the superoxide dismutase 1 (SOD1) enzyme lead to motor neuron cell death and the progression of ALS. The researchers say that they have characterized a molecular pathway by which mutated SOD1 contributes to the accumulation of malformed proteins inside the endoplasmic reticulum (ER) compartment of motor neuron cells. They point out that beyond a certain threshold, the ER stress induces cell death. Dr. Ichijo says that the study has revealed that the inactivation of certain key factors in the pathway could mitigate neurodegeneration, and prolong survival in a mouse model of inherited ALS. The researchers admit that all familial ALS cases are not due to the SOD1 mutation, and that all persons with a mutated form of SOD1 do not develop ALS. They, however, insist that further insights into the mechanism of the disease could aid in the development of an effective treatment for the disease.Source-ANIRAS/L

Friday, May 30, 2008

THANKS ROBYN............

~~ When we choose to place our lives on hold until we think we are good enough or attractive enough or thin enough or rich enough or wise enough, we quite often discover, to our dismay, that life simply isn’t long enough. You did not come here to wait. You came to live. Start living today! ~~

How Stem Cells Could Fight Lou Gehrig's Disease

How Stem Cells Could Fight Lou Gehrig's Disease

Kerry A. Dolan and Robert Langreth
Used with permission from Forbes.com
Patients with Lou Gehrig's disease face a dismal prognosis. The only approved drug, Sanofi-Aventis's Rilutek, slows the fatal muscle-wasting disease by just a few months. Numerous experimental drugs have flopped in trials.
Can stem cells break the logjam?
That's the hope behind a path-breaking new collaboration between California Stem Cell, a biotech company in Irvine, Calif.; the charitable ALS Association; and a small Belgian drug discovery company. The concept is to use motor neuron cells the biotech firm has generated from embryonic stem cells to hunt for new drugs to treat amyotrophic lateral sclerosis, more commonly called ALS, or Lou Gehrig's disease.
The ALS Association, a patient advocacy group based in Calabasas Hills, Calif., will fund the research as part of its initiative to speed up the discovery of new drugs and therapies for ALS. Funding could amount to several million dollars if the research proceeds as planned, says Dr. Lucie Brujin, science director for the ALS Association.
"We're very excited about what this can do for us," says Brujin. "Before, we were using motor neurons from mice or rats."
Even then, adds Brujin, it was difficult to get a large enough quantity of the cells to use for research purposes. California Stem Cell's ability to deliver large quantities of human motor neuron cells is "a valuable new tool to use in the drug discovery process," says Brujin.
Embryonic stem cells offer the hope of providing an unlimited supply of living human cells for use in drug discovery and cell transplant therapy. The hard part is coaxing stem cells to turn into the various types of cells that are needed for research--muscle, bone, neuron, liver cell pancreas and so on.
"The hope of stem cells is just a hope and nothing more" without an efficient method of turning them into different types of adult cells, says Hans Keirstead, a stem cell researcher at University of California, Irvine, and a member of California Stem Cell's scientific advisory board.
He says the premise behind California Stem Cell is to create an efficient process for generating large, pure batches of various types of brain cells and other cells from embryonic stem cells. So far, his company has created motor neurons, heart muscle cells, neuronal progenitors and heart pacemaker cells.
Under the deal, California Stem Cell will ship batches of its motor neuron cells to BioFocus DPI, a U.K. company that provides research services to pharmaceutical and biotech companies. (BioFocus is a unit of Belgian drug discovery company Galapagos.) BioFocus will develop a test to screen the motor neurons against some 11,000 different gene-silencing fragments that will shut off a gene in the motor neuron cells.
"The aim is to rescue the cells from cell death, since ALS is a disease of cell death," says Katherine Hilyard, vice president for biological sciences at BioFocus DPI.
This process, which should take about a year, should allow BioFocus DPI to come up with a handful of drug targets. The next steps would be to determine if they translate into good drugs and, if so, develop a drug aimed at one or more targets.
Hilyard says BioFocus DPI previously worked with another company attempting to produce human motor neurons, but that company couldn't successfully turn the embryonic stem cells into motor neuron cells. "It would be impossible to do this research" without these motor neuron cells, she says. "We're all very pleased with this development."
Separately, the New York-based charity Project ALS is independently working on a similar project with researchers at Columbia University and the Harvard Stem Cell Institute. The Columbia and Harvard researchers it sponsors have already made billions of motor neurons from embryonic stem cells and hope to begin using them in drug screens this year, says Project ALS Research Director Valerie Estess.
With Kevin Eggan, a cellular biologist at Harvard, Project ALS is also making progress in taking skin biopsies from ALS patients and reprogramming those to become motor neurons. This will create cells in the lab dish that are genetically identical to those in the spines of ALS patients.
Until now, Estess notes, researchers have had to test their experimental ALS drugs on mice that have been genetically engineered to get the disease. Too often, the drugs work great in the mice and then "failed miserably in people," she says. "What stem cells will provide us in the very short term is much better disease models. They will allow us to screen drugs more effectively … and will represent human disease more accurately."
Patients with ALS typically live for a mere three to five years after the disease is diagnosed. The disease attacks and kills motor neurons, the nerve cells responsible for movement. As motor neurons die, muscles grow weaker, and ALS patients have trouble speaking, chewing, swallowing and breathing. In its devastating last stages, people can become "locked in"--alive and conscious but unable to move an eyelash or communicate with the outside world in any way. ALS affects an estimated 30,000 people in the U.S.
There are several drugs now being tested to treat ALS, but all of them were first approved for some other disease. With any sort of luck, this new initiative could eventually lead to the first drug developed specifically to treat ALS.
In addition to its work in ALS, California Stem Cell is working with another charity, Families of Spinal Muscular Atrophy, to use motor neuron progenitor cells made from embryonic stem cells to treat this disease. SMA is a genetic disease that strikes children and causes muscles to waste away because they cannot make a crucial protein needed for motor neurons to survive. A trial for this therapy could begin next year.

Brazil's top court approves stem cell research

Brazil's top court approves stem cell research
By MARCO SIBAJA, Associated Press WriterThu May 29, 10:31 PM ET

Brazil's Supreme Court ruled Thursday that scientists can conduct embryonic stem cell research, which holds the promise of curing Parkinson's disease and diabetes but raises ethical concerns about the limits on human life.
Six of the court's 11 justices upheld a 2005 law allowing embryonic stem cell research and turned down a petition filed that same year by then-Attorney General Claudio Fontelles, who argued the law was unconstitutional because it violates the right to life.
The remaining five judges argued that while the 2005 law is constitutional, research should only be carried out "with restrictions" such as not allowing the embryo to be destroyed and submitting each case for the approval of an ethics commission.
The ruling drew immediate fire from church officials in the world's largest Roman Catholic country.
The National Conference of Brazilian Bishops issued a statement saying it "regretted" the ruling, comparing it to a death sentence. The bishops' conference said its position "is not a matter of religion, but of the defense of human life, beginning with conception."
The law opens the way for research with embryos resulting from in-vitro fertilization that have been frozen for at least three years.
Advocates have said that a favorable Supreme Court ruling could make Brazil Latin America's leader in stem cell research.
They praise Brazilian scientists for their work with adult stem cells for the treatment of cardiovascular diseases and Type 1 diabetes, and have said that similar breakthroughs could be achieved with embryonic stem cells.

Wednesday, May 28, 2008

ALS breakthrough holds hope

ALS breakthrough holds hope
Canwest News ServicePublished: Tuesday, May 27, 2008

VANCOUVER -- Researchers say it might be possible to slow, maybe treat, amyotrophic lateral sclerosis -- a fatal neurodegenerative disease known as ALS -- by stimulating the body's own stem cells.
A team, led by neurologist Dr. Neil Cashman at the University of British Columbia, announced yesterday that it has found a "safe pathway" for activating bone-marrow stem cells in ALS patients.
The idea is to use a growth-factor stimulant to increase the number of stem cells in the body, in the hope they will travel to the site of motor-neuron injury and slow down the disease's progression, says Cashman.
His team recently completed a small trial involving eight patients that showed a growth stimulant is well tolerated and can be safely used in people with ALS. Cashman says he's working to build support for a much larger trial involving ALS treatment centres across Canada to see whether there is a therapeutic benefit.
If it works, Cashman says the treatment could sidestep the use of stem cells made from human embryos, which is fraught with ethical problems.
But much research is needed to find out if stimulating the body's own stem cells will work.
ALS is a progressive neurodegenerative disease that kills one in 1,000 adult Canadians. Most die within five years of their first symptom.
There is no cure for ALS, and Cashman says finding one is "a very tall order."
© Times Colonist (Victoria) 2008

Monday, May 26, 2008

Stem Cell Research Goes Beyond Biology

Stem Cell Research Goes Beyond Biology
Todd McDevitt

The Georgia Institute of TechnologyLiveScience.comSat May 24, 10:41 AM ET
This Behind the Scenes article was provided to LiveScience in partnership with the National Science Foundation.
Why is an engineer studying stem cells? This is a question I have routinely been asked during my first three and a half years as an assistant professor in the Wallace H. Coulter Department of Biomedical Engineering at Georgia Tech and Emory University. The answer: the field of stem cell research needs engineers to translate the potential of stem cells into regenerative therapies and novel diagnostic technologies for biological sensing and pharmaceutical screening.Today, donated organs and tissues are used to replace ailing or injured tissues, but the need for transplantable tissues and organs far exceeds the available supply. Stem cells, directed to differentiate into specific cell types, offer the possibility of a renewable source of replacement cells to treat many chronic and degenerative diseases including Parkinson's and Alzheimer's diseases, spinal cord injury, stroke, heart disease, diabetes, osteoarthritis, rheumatoid arthritis, muscular dystrophy and ALS (Lou Gehrig's disease).The potential of stem cells is endless - which is why I became increasingly interested in the role of stem cells within regenerative medicine and tissue engineering as I neared the completion of my Ph.D. in bioengineering from the University of Washington. As a result of my curiosity, I immersed myself in stem cell biology research during my postdoctoral fellowship in a cardiac pathology laboratory that focused on cell replacement therapies for myocardial repair.During my postdoctoral fellowship, I would often find that the outcomes of my experiments varied dramatically from week to week even though I followed the same procedures for growing and differentiating the cells. Sometimes my cultures contained many spontaneously and rhythmically beating foci of differentiating cells (evidence of primitive heart muscle formation in a dish), but other times I strained to find a single area of contracting cells and I was left pondering, "What was different this time?"
As an engineer, I was accustomed to controlled systems. The lack of consistency I frequently encountered in my experimental studies while working in this cell and molecular biology laboratory caused me a lot of frustration. General trends and significant differences were clear, but the more subtle changes that frequently seemed to occur went undetected. At the time, I accepted the limitations of the systems we were working with in order to complete my studies and publish the data, but those experiences shaped my views and vision for the future.I began to view stem cell differentiation studies differently. While most investigators studying stem cells were choosing a target cell population a priori and focusing their outcome assessments solely on their ability to obtain a specific cell type of interest, I wasn't. Any instance of failure to differentiate stem cells to a specific cell type represented a potential success in deriving other cell types. This "glass-half-full" perspective suggested to me that global analysis methods are required to truly comprehend how any one stem cell differentiates. Also, if a population of stem cells starts at the same initial point, how do they simultaneously diverge into a broad array of different cell types and what can be done to improve the homogeneity of differentiation?Now that I am an independent investigator with my own laboratory, I try to address these questions through various research projects. I want to better understand the extracellular environmental cues that regulate stem cell fate and develop engineering approaches to exploit these mechanisms to better control stem cell differentiation. For one project, we are studying how different mixing conditions modulate early embryonic stem cell commitment and subsequent downstream differentiation. To do this, we shake a petri dish of embryonic stem cells in suspension culture at different speeds while they are differentiating. We examine how different speeds modify the size, internal morphology and gene expression in "embryoid bodies" - the three-dimensional clumps of embryonic stem cells undergoing differentiation. The results suggest that designing bioreactors to shake at the optimal speed could generate increased yields of desired cell types from embryonic stem cells. In another project, we've developed a method of controlling the presentation of molecules within aggregates of embryonic stem cells to enhance the efficiency and purity of differentiation. Using biodegradable microspheres to release the molecules allows us to control when and where these factors are presented to the stem cells. Engineering the amounts and sequences of certain molecules released from the microspheres may direct differentiation to a specific cell type.We are also examining the molecules that embryonic stem cells spontaneously synthesize during differentiation to see if they can promote tissue regeneration in adult organisms. To do this, we are developing acellular matrices containing these unique factors and assessing their ability to promote tissue regeneration in a variety of wound-healing environments. These studies represent a new application for stem cells that could have broad implications.All of these projects help us better understand the mechanisms regulating stem cell fate and suggest new applications for stem cells to stimulate tissue regeneration. Although we still experience unexplained inconsistencies during the course of our studies because many unknowns remain, the future is bright for stem cell research and particularly for engineers to contribute to translating the potential of stem cells into viable regenerative therapies. (McDevitt presented his stem cell research on April 9 at the 235th American Chemical Society National Meeting. More details about his presentation are available here.) Video: Organ Repair Top 10 Mysterious Diseases What is a Stem Cell?
Editor's Note: This research was supported by the National Science Foundation (NSF), the federal agency charged with funding basic research and education across all fields of science and engineering. See the Behind the Scenes Archive. Original Story: Stem Cell Research Goes Beyond Biology
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Saturday, May 24, 2008

The past has flown away. The coming month and year do not exist; ours only is the present's tiny point.
--Shabestari

Friday, May 23, 2008

MY FRIEND .......Today at 4.20 pm Boris passed away.











From:
"âÏÒÉÓ ôÒÏÐÁÎÅÃ" Add Mobile Alert
To:
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Re: Re: Fwd: Life.........
Date:
Thu, 22 May 2008 18:54:13 +0400


Today at 4.20 pm Boris passed away.






I received an email from his daughter, Alina, yesterday. `Just a great guy. He would help me. Cutting my food. He would tie my shoes for me, etc.... BORIS, WOULD JUST DO IT, LIKE IT WAS IN HIS DNA. A RARE FIND IN A PERSON.........BORIS YOU WILL BE MISSED.



His passing is the harsh reality of this evil challenge.








California Stem Cell and Biofocus DPI to Collaborate in ALS Association-Funded Research Using Human Motor Neurons

California Stem Cell and Biofocus DPI to Collaborate in ALS Association-Funded Research Using Human Motor Neurons
Through its TREAT ALS™ drug discovery and clinical trials program, The ALS Association announces that California Stem Cell (CSC) has signed a contract to supply international drug discovery organization BioFocus DPI, the service division of Galapagos, with its MOTORPLATE™ 96 assay-ready well plates, containing motor neuron progenitors derived from human embryonic stem cells. BioFocus DPI will use the high purity, clinical grade human motor neurons to perform assay development and screening for amyotrophic lateral sclerosis (ALS or “Lou Gehrig’s Disease”).
The Association’s TREAT ALS (Translational Research Advancing Therapy for ALS) program is funding this collaborative research project as part of its global initiative to speed the discovery of new drugs and therapies for ALS.
“The ALS Association is focused on accelerating new and promising developments from the laboratory bench into treatments for ALS,” said Lucie Bruijn, Ph.D., science director and vice president of The Association. “The unique ability of CSC to generate human motor neurons on a large scale, and the target discovery engine provided by BioFocus DPI, will contribute to the development of medicines that may significantly slow the progression of this disease and ultimately lead to a cure.” “BioFocus DPI chose to source human motor neurons from CSC because its multi-well plate format enables us to develop specialized high-throughput assays not previously possible,” said Katherine Hilyard, PhD, vice president of biological sciences, BioFocus DPI. “This the first source of high purity human motor neurons available for use in high-content screening assays. This significant advancement allows us to develop innovative human cell-based assays for the discovery of drugs for ALS and other neurological disorders.”
“CSC is delighted to help our lead customer BioFocus DPI to accelerate its drug discovery programs, and to begin to supply the marketplace with stem cell derived human motor neurons, produced using state of the art, proprietary and commercially scalable manufacturing processes. The potential market for this product in high-throughput and high-content screening analyses for predictive toxicology and drug discovery is very significant,” said Dr. Chris Airriess, CSC chief operating officer. “More importantly, CSC is proud to work toward the common mission of developing a treatment for ALS.”
BioFocus DPI aims to expand its partners’ drug pipelines by accelerating the gene-to-candidate discovery process. This is achieved through a comprehensive discovery platform, which includes target discovery in human primary cells, focused as well as diverse compound libraries, in vitro and cell-based screening, medicinal chemistry and ADME/PK services, supported by unique chemogenomic and informatics tools. As the service division of Galapagos, BioFocus DPI has over 300 employees in five countries worldwide.
California Stem Cell, Inc. is a privately held company focused on the manufacturing of high-purity human cells for therapeutic development and clinical application. Since its founding in 2005, CSC has developed and has intellectual property surrounding methods for scalable production of human motor neurons, neuronal progenitors, cardiac muscle and sino-atrial node cells at its Irvine, Calif. facility. CSC is currently in the pre-clinical development stage of stem cell based therapies for amyotrophic lateral sclerosis (ALS, or Lou Gehrig’s Disease), spinal muscular atrophy (SMA), spinal cord injury (SCI) and coronary heart disease.
The ALS Association is a leader in ALS research and the only national not-for-profit voluntary health organization dedicated solely to the fight against ALS. The mission of The ALS Association is to lead the fight to cure and treat ALS through global cutting-edge research, and to empower people with Lou Gehrig’s Disease and their families to live fuller lives by providing them with compassionate care and support.

Wednesday, May 21, 2008

I'M............................

"LIFE BREAKS ALL OF US, BUT SOME OF US GET STRONGER IN THE BROKEN PLACES"

Monday, May 19, 2008

The Ependyma As A Major Player in the Pathogenesis of Amyotrophic Lateral Sclerosis: A Hypothesis

The Ependyma As A Major Player in the Pathogenesis of Amyotrophic Lateral Sclerosis: A Hypothesis
By
Anthony G. Payne, Ph.D.

Amyotrophic lateral sclerosis (ALS) is an insidious, mercilessly devastating disorder in which motor neurons that control voluntary movement are progressively lost while those that are involved in cognition and sensation are spared. At this time ALS sufferers have no scientifically validated treatment options available to them. Fifty percent succumb within three years of symptom onset and between eighty and ninety percent within five years.

At this point-in-time ALS has a complex, incompletely understood etiology. Approximately 5- 10% of cases have a genetic basis (familial ALS or fALS), with the remainder having no clearly discernible cause. The best that can be said is that ALS is very likely a multifactorial disorder triggered by any number of exposures such as environmental toxicants, either alone or in combination with specific genetic factors). This is underscored by the fact that an approximately two-fold increase in the risk of developing ALS appeared among military personnel deployed to Southwest Asia during the Gulf War (Aug 1990-July 1991) compared to non-deployed personnel.

Once the ALS disease process is underway, there are a number of pathogenic mechanisms that are felt to bring about the cellular dysfunction and apoptosis in motor neurons that are characteristic of the disease:

(1) Mitochondrial dysfunction involving, in part, oxidative stress.
(2) Excitotoxicity due, in part, to a down regulation of motor neuron glutamate transporters.
(3) A loss of calcium homeostasis in motor neurons.
(4) Disrupted protein synthesis and processing.
(5) Altered neuronal cytoskeletal function and axonal transport.
(6) Dysfunction of astrocytes and glial cells that support the CNS in general, as well as motot neurons.


Current therapeutic intervention is aimed at modulating the various pathogenic processes. Research is ongoing and involves such things as use of intravenous (IV) Ceftriaxone to upregulate glutamate transporter genes and protein expression in motor neurons.

Hypothesis

It is proposed by the author that at least some cases of ALS arise due to defective specialized neuroglial cells called ependymal cells, especially modified ependymal cells called choroidal cells that are involved in the synthesis and circulation of cerebrospinal fluid and maintenance of the blood-CSF barrier. These cells may arise, at least in part, as the end result of deleterious mutations or possibly epigenetic influences. As a result of these cellular defects in the choroidal cells, cerebrospinal fluid is synthesized that is laden with compounds that are neurotoxic, especially with respect to motor neurons, as well as rich in inflammatory cytokines and such. It is the circulation of this aberrant CSF that brings some (and in some instances perhaps all) of the pathogenic features that characterize some cases of ALS.

Support for this hypothesis comes from two sources:

(1) Direct: Published studies that show that CSF taken from ALS patients induces neurodegeneration characteristic of ALS in lab animals.
(2) Indirect: Seeming retardation in disease progression in four (4) ALS patients who have been following a regimen that modulates neurodegenerative processes shown to result when CSF from ALS patients is administered to lab animals and used in cell cultures.


Hypothesis Support - Studies

A. In a lab study conducted in India , motor neurons and spinal cord neurons in culture were exposed to CSF from 20 ALS patients and 20 controls. The “Exposure of cells to ALS-CSF drastically decreased the survival rate of motor neurons to 32.26+/-2.06% whereas a moderate decrease was observed in case of other spinal neurons (67.90+/-2.04%). In cultures treated with disease control CSF, a small decrease was observed in the survival rate with 80.14+/-2.00% and 90.07+/-1.37% survival of motor neuron and other spinal neurons respectively.” The die-off of spinal cord cells exposed to CSF from ALS patients was linked to elevation of intracellular calcium, while that of motor neurons to “activation of glutamate receptors, the AMPA/kainate receptor playing the major role.”Sen I, Nalini A, Joshi NB, Joshi PG.
B. “CSF was injected intrathecally into three-day-old rat pups and subsequently the ultrastructural changes in the motor neurons were studied after 48 h, 1, 2 and 3 weeks. We observed that ALS-CSF causes fragmentation of the Golgi apparatus in a considerable number of motor neurons in the spinal cord. This was further confirmed when motor neurons were stained with an antibody against a medial Golgi protein (MG160). Thus, we suggest that the putative toxin(s) present in ALS-CSF may cause impairment in the protein processing leading to motor neuron death. “ Ramamohan PY, Gourie-Devi M, Nalini A, Shobha K, Ramamohan Y, Joshi P, Raju TR.
C. “... earlier studies have shown that cerebrospinal fluid (CSF) of amyotrophic lateral sclerosis (ALS) patients causes death of motor neurons, both in in-vitro as well as in-vivo. There was an aberrant phosphorylation of neurofilaments in cultured spinal cord neurons of chick and rats following exposure to CSF of ALS patients (ALS-CSF). Other features of neurodegeneration, such as swollen neuronal soma and beading of neurites were also observed. In neonatal rat pups exposed to ALS-CSF, we observed phosphorylated neurofilaments in the soma of spinal motor neurons in addition to the increased lactate dehydrogenase activity and reactive astrogliosis. The present study examines the effect of ALS-CSF on the expression of glial glutamate transporter (GLT-1) in embryonic rat spinal cord cultures as well as in spinal astrocytes of neonatal rats. Immunostaining suggested a decrease in the expression of GLT-1 by astrocytes both in culture and in-vivo following exposure to ALS-CSF. Our results provide evidence that toxic factor(s) present in ALS-CSF depletes GLT-1 expression. This could lead to an increased level of glutamate in the synaptic pool causing excitotoxicity to motor neurons, possibly by triggering the 'glutamate-mediated toxicity-pathway'. Shobha K, Vijayalakshmi K, Alladi PA, Nalini A, Sathyaprabha TN, Raju TR.
D. “In the present study we show that there is an increased number of astrocytes intensely immunoreactive for glial fibrillary acidic protein (GFAP) in the gray matter of the spinal cords of neonatal rats exposed to ALS CSF. There is also increased expression of GFAP in the astrocytes of the white matter of neonatal rat spinal cords exposed to ALS CSF. Western blot analysis also confirmed the increased expression of GFAP. Accordingly, our study provides for the first time a clear evidence for the pathological response of glia to the circulating toxic factor(s) in the CSF of ALS patients.” Shahani N, Nalini A, Gourie-Devi M, Raju TR.

There are other studies, most cell culture or animal, which directly or indirectly indicate that the CSF of ALS patients contains compounds that are neurotoxic, inflammatory and proinflammatory, and otherwise contributory to pathogenic mechanisms common to ALS.

The impact of these CSF compounds can be summarized briefly as follows:

(1) Intracellular calcium is elevated in spinal cord neurons.
(2) Glutamate levels rise and receptors are activated in motor neurons.
(3) Some appear to lower quinine reductase levels in motor neurons and possibly astrocytes, which results in increased glutamate influx.
(4) Mitochondrial dysfunction occurs and with this compromised motor neuron energetics.
(5) Neuroinflammation increases.
(6) Antioxidant defenses such as glutathione are increasingly at risk of depletion or depleted.

Some of these effects overlap those of other players, both genetic and non-genetic, in ALS. As such, it is likely that therapeutic intervention with respect to modulating synthesis of neurotoxic, etc. compounds in the CSF or their impact on spinal cord and motor neurons, moderates the impact of these other players.

This aside, it follows that if some or most nonfamilial ALS patients owe at least part of their condition to damage wrought by various neurotoxic, inflammatory and proinflammatory, etc. compounds in their CSF, dietary, pharmacologic and nutraceutical measures that lower or otherwise modulate the synthesis of these substances or attenuate their impact on motor neurons will slow disease progression and prolong lifespan.

With this in mind, the author tooled together just such a regimen (2005 with subsequent modifications) consisting of:

CoQ10 (Ubiquinone/ubiquinol): Rationale for use – CoQ10 appears compromised in ALS. Dose: 200 mgs. every 2 hours during the day (1200 mgs daily)

Noni juice or capsules – Rationale for use: Contains a potent quinone reductase inducer – QR reduces glutamate toxicity in cells. Dosage: Juice to be drunk liberally all day long. Capsules – 1 every 2 hours during the day and 1-2 capsules one hour to one-half hour before bedtime.
Tumeric Extract Tablets or Capsules – Rationale for use: Quinone reductase inducer in astrocytes (Lowers glutamate). Dose: 1 (.05 gram) tablet every two hours during the day and 1-2 tablets prior to bedtime.
DEPRENYL: According to a 1994 animal study, “CSF samples from ALS and non-ALS neurological patients were injected into the spinal subarachnoid space of 3-day-old rat pups, followed by a single dose (0.01 mg/kg body weight) of (-)-deprenyl, administered 24 h after CSF injection. After a further period of 24 h, the rats were sacrificed and the spinal cord sections were stained with antibodies against phosphorylated neurofilament (NF, SMI-31 antibody) and glial fibrillary acidic protein (GFAP). Activity of lactate dehydrogenase (LDH) was also measured. (-)-Deprenyl injection resulted in a significant (61%) decrease in the number of SMI-31 stained neuronal soma in the ventral horn of the spinal cord of ALS CSF exposed rats. This was accompanied by a reduction in the astrocytes immunoreactive for GFAP. There was also a significant (35%) decrease in the LDH activity following (-)-deprenyl treatment. These results suggest that (-)-deprenyl may confer neuroprotection against the toxic factor(s) present in ALS CSF.” Shahani N, Gourie-Devi M, Nalini A, Rammohan P, Shobha K, Harsha HN, Raju TR.
Dose: Discretionary with each patient’s physician. Use of patches or oral forms (Pills, tablets or liquid). The typical daily dose was 12 mgs/daily.
IV Glutathione: Rationale – depleted in many ALS patients or at risk of becoming so. The intravenous (IV) dose is determined by each patient’s physician. During 2007 a patented oral form of glutathione became available, one that is absorbed through the oral mucosa and resists breakdown until it reaches the CNS (Th-Queen from Italy ).
PREVAGEN (Aequorin) – Rationale for use: Prevents calcium influx and resultant toxicity in neurons. Dose: One twenty milligram (20 mg) capsules every 2 to 3 hours during waking hours and one to two (1-2) capsules 30-60 minutes before retiring for the night. Aequorin became available commercially during 2007 and was added to the regimen at that time.
Lithium – Rational for use: Glutamate modulation in neurons. Dose: 250 mgs. to 600 mgs Lithium carbonate daily (Dosage determined by each patient’s neurologist or primary care physician). Lithium was added to the regimen during 2007.
Diet: Medium Chain Triglycerides Diet. Rationale: There are many reasons the ketogenic or MCT diets might be of benefit to ALS patients, not the least of which is the fact they tend to increase glutamate transporter gene expression.
Ketogenic & MCT Diet (Epilepsy website)
MCT Diets
Hypothesis Support – Clinical Responses (n=4)

Four individuals diagnosed with nonfamilial ALS (3 male, 1 female, ages 35-52) adopted the regimen outlined above beginning during 2005, all with their primary care physician or neurologist’s participation (Note that Prevagen was introduced during 2007 when it became available. Lithium was likewise added during 2007). All four experienced disease progression, however when compared to age- and disease matched controls, the degree of progression is decidedly less. One (male) patient noted that “Every single ALS patient diagnosed at the same time I was (diagnosed) is now dead or on a respirator. I am still walking, talking, eating and living my life. I’ve lost some functioning in my hands and arms, but this is not so great as to rob me of doing things I need to do like driving my car”.

While the responses of these six is far from definitive and cannot be called rigorous in the scientific sense, it is suggestive and offers a very tentative confirmation of the hypothesis put forward.

A greater degree of confirmation will come when, for example, the choroidal cells in the brains of ALS are replaced in whole or part by healthy counterparts produced from stem cells. In accordance with this hypothesis, it is expected that synthesis and circulation of a healthy CSF will result in a significant degree of disease progression or even disease arrest.



See also this variation of the regimen cited in this paper: Retarding ALS Progression



© 2008 by Dr. Anthony G. Payne. All rights reserved. The information contained in this article is provided for informational purposes only and should not be construed as medical advice or instruction. Readers are advised to consult a licensed health care professional concerning all matters related to their health and well being.