Changing stroke rehab and research worldwide now.Time is Brain! trillions and trillions of neurons that DIE each day because there are NO effective hyperacute therapies besides tPA(only 12% effective). I have 523 posts on hyperacute therapy, enough for researchers to spend decades proving them out. These are my personal ideas and blog on stroke rehabilitation and stroke research. Do not attempt any of these without checking with your medical provider. Unless you join me in agitating, when you need these therapies they won't be there.

What this blog is for:

My blog is not to help survivors recover, it is to have the 10 million yearly stroke survivors light fires underneath their doctors, stroke hospitals and stroke researchers to get stroke solved. 100% recovery. The stroke medical world is completely failing at that goal, they don't even have it as a goal. Shortly after getting out of the hospital and getting NO information on the process or protocols of stroke rehabilitation and recovery I started searching on the internet and found that no other survivor received useful information. This is an attempt to cover all stroke rehabilitation information that should be readily available to survivors so they can talk with informed knowledge to their medical staff. It lays out what needs to be done to get stroke survivors closer to 100% recovery. It's quite disgusting that this information is not available from every stroke association and doctors group.

Sunday, March 4, 2012

Beer bottling stroke rehab


I brewed some Irish Draught Ale a couple of months ago and today decided to bottle it by myself(48 bottles). This was quite the challenge since I usually invite a friend over to cap the bottles in return for some of the beer. I have a two-handed capper like this. Keeping the cap in place while I pry my hand onto one of the levers involves picking the cap up several times. I can't get my wrist to unlock from spasticity so I could never get my upper body weight over the levers to properly crimp the cap. Luckily I only knocked over one bottle. I ended up putting the bottle in one of the slots in a wooden soda case and used my teeth/mouth on one of the levers to get about 15 bottles capped. Then my wife and daughter came home and I got them to finish the capping for me. I try to do this when they are out because both of them dislike the smell or taste of beer. If I continue this I'll have to get a single arm capper like this. I had a homebrewed coffee stout to celebrate this evening.

wooden soda case above, bench capper below

Saturday, March 3, 2012

Scalp Acupuncture Fights Dementia – New Research

Comparing scalp acupuncture to regular acupuncture is not any type of valid research. I would love to have scientifically explained why acupuncture works and not just as a placebo.
http://www.healthcmi.com/index.php/acupuncturist-news-online/502-scalpacupuncturefightsdementia

Researchers(where is the research paper?) conclude that acupuncture is beneficial for the treatment of vascular dementia. Vascular dementia is caused by brain damage due to impaired blood flow to the brain. This is common after a stroke or a series of mini-strokes. Any condition that damages blood vessels that feed oxygen and nutrients to the brain may cause vascular dementia.

The study compared scalp acupuncture with standard body acupuncture. In this multi-center randomized controlled clinical trial, 184 subjects with vascular dementia due to Liver and Kidney deficiency received either scalp acupuncture or body acupuncture. The scalp acupuncture group showed significantly greater improvements in cognition than the body style acupuncture group. Social behavior scores improved significantly in both hthe body style and scalp acupuncture groups. TCM (Traditional Chinese Medicine) differential diagnostic conditions improved significantly in both acupuncture groups as did the ADL (Activities of Daily Living) score. Overall, scalp acupuncture received higher improvement scores due to its ability to improve cognition. The researchers concluded that scalp acupuncture substantially improves the overall condition of patients with vascular dementia including cognition, activities of daily living, TCM signs and symptoms, mental state and social behavior.

Mirror neurons

Something we may be able to use to recover.
For a simple, entertaining explanation from the Nova science series, watch this brief video. Transcript provided if you don't want to watch.

Nanotechnology to repair the brain

These people are after my heart. Better understanding of how the brain works before we can attempt to repair it and nanotechnology. It may be from 2008 but it needs more exposure so more researchers work on this stuff.
http://www.nanowerk.com/spotlight/spotid=8760.php
Neural engineering is an emerging discipline that uses engineering techniques to investigate the function and manipulate the behavior of the central or peripheral nervous systems. Neural engineering is highly interdisciplinary and relies on expertise from computational neuroscience, experimental neuroscience, clinical neurology, electrical engineering and signal processing of living neural tissue, and encompasses elements from robotics, computer engineering, neural tissue engineering, materials science, and nanotechnology.
In order for neural prostheses to augment or restore damaged or lost functions of the nervous system they need to be able to perform two main functions: stimulate the nervous system and record its activity. To do that, neural engineers have to gain a full understanding of the fundamental mechanisms and subtleties of cell-to-cell signaling via synaptic transmission, and then develop the technologies to replicate these mechanisms with artificial devices and interface them to the neural system at the cellular level. A group of European researchers has now shown that carbon nanotubes may become the ideal material for repairing damaged brain tissue.
"Our findings show that carbon nanotubes, which, like the nervous cells of our brain, are excellent electrical signal conductors and form intimate mechanical contacts with cellular membranes, thereby establishing a functional link to neuronal structures," Laura Ballerini, a professor of physiology, together with Maurizio Prato, professor of organic chemistry, both at the University of Trieste, Italy, explain to Nanowerk. "Such a functional and mechanical link might favor electrical shortcuts between the proximal and distal compartments of the neuron, therefore improving neuronal performance."
The study was conducted in Prato's and Ballerini's laboratories at the University of Trieste, Italy, in collaboration with Henry Markram's Laboratory of Neural Microcircuitry at Ecole Polytechnique Federale de Lausanne (EPFL) in Switzerland, and Michel Giugliano (now an assistant professor at the University of Antwerp). The team has published their findings in the December 21, 2008 online edition of Nature Nanotechnology ("Carbon nanotubes might improve neuronal performance by favouring electrical shortcuts").
These findings represent one of the earliest attempts at linking electrical phenomena in nanomaterials to neuronal excitability.
For their experiments, the team deposited single-wall or multi-wall carbon nanotubes on a glass substrate and subsequently defunctionalized them by thermal treatment to form glass slides covered with a purified and mechanically stable thin film of about 50-70 nm thickness. This dense network of nanotubes acts as a largely resistive network that permits long-range electrical connectivity.
The effect of nanotubes on neuronal integrative properties was then investigated by comparing the electrophysiology of rat hippocampal cells cultured on control substrates to those grown on a thin film of purified nanotubes for 8 to 12 days.
SEM micrograph of a cultured rat hippocampal neuron grown on a layer of purified carbon nanotubes
TSEM micrograph of a cultured rat hippocampal neuron grown on a layer of purified carbon nanotubes. (Image: Laura Ballerini, University of Trieste)
"In a sample of cultures grown on nanotubes we quantified – in terms of postsynaptic currents frequency – the presence of a significant increase in synaptic activity, compared to control cultures," says Ballerini. "This increased activity represents a typical feature of neurons grown on nanotube substrates."
During the last few years, several research groups supported the use of carbon nanotubes substrates as potential biocompatible materials that promote cell attachment, differentiation, growth and long term neuronal survival.
Ballerini and Giugliano, together with their colleagues at the University of Trieste and the Brain Mind Institute at EPFL, have been working on interfacing neurons with carbon nanotubes for a while now and we have reported on some of their earlier findings in a previous Nanowerk Spotlight ("Nanotechnology coming to a brain near you").
In this previous work, they reported, for the first time, the effects of carbon nanotubes substrates on the electrical behavior of neuronal networks in vitro.
Ballerini notes that the growth of functional brain circuits on a conductive carbon nanotubes meshwork was always accompanied by powerful physiological changes, in the form of a significant enhancement in the efficacy of neural signal transmission, suggesting that the electrical conductivity of the carbon nanotube-substrate might be underlying these physiological effects. "Yet, the specific functional mechanisms leading to carbon nanotubes-driven neuronal potentiation were largely unexplored," she says.
This new work now considerably widens the perspectives of employing conductive nanomaterials for neuroengineering applications. It proposes carbon nanotubes not only as ideal probes for bidirectional interfaces in neuroprosthetics but also as nanotools to endogenously (re)engineer single-neuron excitability and network connectivity.
"Our results are extremely relevant for the emerging field of neuro-engineering and neuroprosthetics," explains Giugliano, who hypothesizes that the nanotubes could be used as a new building block of novel "electrical bypass" systems for treating traumatic injury of the central nervous system. "Carbon nanotube electrodes could also be used to replace metal parts in clinical applications such as deep brain stimulation for the treatment of Parkinson's disease or severe depression. And they show promise as a whole new class of smart materials for use in a wide range of potential neuroprosthetic applications."
Markram, who heads of the Laboratory of Neural Microcircuitry and an author on the paper, adds: "There are three fundamental obstacles to developing reliable neuroprosthetics: 1) stable interfacing of electromechanical devices with neural tissue, 2) understanding how to stimulate the neural tissue, and 3) understanding what signals to record from the neurons in order for the device to make an automatic and appropriate decision to stimulate. The new carbon nanotube-based interface technology discovered together with state of the art simulations of brain-machine interfaces is the key to developing all types of neuroprosthetics – sight, sound, smell, motion, vetoing epileptic attacks, spinal bypasses, as well as repairing and even enhancing cognitive functions."

Friday, March 2, 2012

AtriCure gets FDA nod for stroke safety and feasibility trial

I think this is for afib but they didn't show a device or explain it in laymans terms. 

AtriCure gets FDA nod for stroke safety and feasibility trial



This might be it.

Cardiology medical device company AtriCure (NASDAQ:ATRC) has received U.S. Food and Drug Administration approval for a stroke safety and feasibility trial of its AtriClip device.

The trial will enroll up to 30 patients at six sites and begin enrollment in the second half of 2012, CEO Dave Drachman said earlier this week in a conference call with analysts.The Cincinnati-area company is hoping to obtain a label from the FDA for the AtriClip to be used in standalone procedures that involve exclusion of the left atrial appendage, a thumb-sized pouch on top of the left side of the heart from which blood clots that cause strokes often originate.

The feasibility study is part of the beginning of the process, however. AtriCure doesn’t expect to receive the new label for the AtriClip for several years, chief financial officer Julie Piton said in December.

Here’s how Drachman described the push to obtain the label during the call:

The aim of this project is to start the process of demonstrating that the AtriClip system reduces the risk of stroke and systemic embolism in patients with nonvalvular atrial fibrillation for whom long-term oral coagulation — anticoagulation therapy — is currently indicated.

AtriCure is also working on a new version of the AtriClip device that could be used in standalone thoracoscopic procedures, which involve inserting a a narrow tube with a camera through a small incision in the chest wall. The existing version of the device is cleared in the U.S. only for use in conjunction with other open-cardiac surgical procedures in which the physician has direct visualization.

AtriCure plans later this year to submit a 510(k) application for the new AtriClip platform, Drachman said.

Duration of Diabetes Raises Stroke Risk

One thing I don't have to worry about.
http://www.medpagetoday.com/Cardiology/Strokes/31445?utm_source=cardiodaily&utm_medium=email&utm_content=aha&utm_campaign=03-02-12&eun=gd3r&userid=424561&email=oc1dean@yahoo.com&mu_id=

The risk of ischemic stroke increased by 3% for each additional year a patient had diabetes, researchers found.

Compared with nondiabetics in the longitudinal study, those who had the disease for at least 10 years had a threefold higher stroke risk (HR 3.2, 95% CI 2.4 to 4.5), Mitchell Elkind, MD, of Columbia University in New York City, and colleagues reported online in Stroke: Journal of the American Heart Association.

Although stroke rates have been dropping among diabetics, more people are developing the disease -- and at younger ages -- because of the obesity epidemic. That means that the stroke burden is growing heavier, particularly as the population ages and people live longer.

"It is thus important to better understand the dynamics between diabetes, time, and stroke, and to emphasize the importance of interventions to prevent early diabetes," the authors wrote. "Minimizing the number of years a patient has diabetes would help combat the increase in stroke risk with each year of the disease."

Elkind and colleagues examined data from 3,298 individuals participating in the Northern Manhattan Study who had never been diagnosed with a stroke. The average age was 69. Half of the participants were Hispanic, 21% were white, and 24% were black.

About one-fifth (22%) had diabetes at baseline and another 10% reported new-onset diabetes during an average follow-up of nine years.

There were 244 ischemic strokes recorded during the study.

After adjustment for demographics and cardiovascular risk factors, ischemic stroke was predicted by the presence of baseline diabetes (HR 2.5, 95% CI 1.9 to 3.3) and diabetes as a time-dependent variable (HR 2.4, 95% CI 1.8 to 3.2), which takes into account the development of diabetes during follow-up.

The researchers had hypothesized that incorporating incident diabetes would change the magnitude of the association, but it did not, possibly because these older individuals already had a high cardiovascular risk burden at baseline that did not change much with the development of diabetes.

Other possible reasons incident diabetes did not improve risk prediction included greater compliance with therapy among those newly diagnosed, a shorter duration of diabetes among the incident cases, which might not be long enough to translate into a higher stroke risk, and the potential for missing cases during follow-up because of the use of self-report.

Compared with nondiabetics, the risk of ischemic stroke was similar for those who had diabetes for up to five years (HR 1.7) and those who had the disease for five to 10 years (HR 1.8). The risk was greater for those who had diabetes for a decade or more (HR 3.2).

The growing stroke risk that accompanies a longer duration of diabetes could be mediated through several mechanisms, according to the researchers:

  • Greater carotid plaque thickness
  • Accelerated microvascular and macrovascular complications from long-term hypertension
  • Greater risk of microalbuminuria, which has been shown to be a risk factor for stroke in patients with diabetes
  • Endothelial dysfunction
  • Abnormalities in fibrinogen and clotting mechanisms

The finding "warrants steps to institute long-standing and sustainable lifestyle changes for primary prevention and appropriate long-term management after diagnosis," the authors wrote.

They acknowledged some limitations of the study, including the lack of information on fasting blood glucose and glycated hemoglobin during follow-up and possible confounding of the association between diabetes duration and stroke risk by age.

Plan experiments, track progress, get results.

No excuses for anyone that they can't do research.
ER doctors, physiatrists, neurologists, nurses, OTs, PTs, STs, patients,caregivers, stroke associations
http://www.labguru.com/

STROKE IS NOT INCREASED BY CHIROPRACTIC

You'll have to decide for yourself if you can believe this.
The chiropractor one here:
http://www.ronhayter.com/health-and-fitness/stroke-is-not-increased-by-chiropractic/
I'm a false mind I guess.
Other scientific results here:
http://oc1dean.blogspot.com/2011/12/chiropractic-stroke.html
My opinion only, I will never get my neck adjusted.

New high definition fiber tracking reveals damage caused by traumatic brain injury, Pitt team finds

So lets start using this for strokes, anything to actually get a real damage diagnosis.
http://www.eurekalert.org/pub_releases/2012-03/uops-nhd030112.php
A powerful new imaging technique called High Definition Fiber Tracking (HDFT) will allow doctors to clearly see for the first time neural connections broken by traumatic brain injury (TBI) and other disorders, much like X-rays show a fractured bone, according to researchers from the University of Pittsburgh in a report published online today in the Journal of Neurosurgery.

In the report, the researchers describe the case of a 32-year-old man who wasn't wearing a helmet when his all-terrain vehicle crashed. Initially, his CT scans showed bleeding and swelling on the right side of the brain, which controls left-sided body movement. A week later, while the man was still in a coma, a conventional MRI scan showed brain bruising and swelling in the same area. When he awoke three weeks later, the man couldn't move his left leg, arm and hand.

"There are about 1.7 million cases of TBI in the country each year, and all too often conventional scans show no injury or show improvement over time even though the patient continues to struggle," said co-senior author and UPMC neurosurgeon David O. Okonkwo, M.D., Ph.D., associate professor, Department of Neurological Surgery, Pitt School of Medicine. "Until now, we have had no objective way of identifying how the injury damaged the patient's brain tissue, predicting how the patient would fare, or planning rehabilitation to maximize the recovery."

HDFT might be able to provide those answers, said co-senior author Walter Schneider, Ph.D., professor of psychology at Pitt's Learning Research and Development Center (LRDC), who led the team that developed the technology. Data from sophisticated MRI scanners is processed through computer algorithms to reveal the wiring of the brain in vivid detail and to pinpoint breaks in the cables, called fiber tracts. Each tract contains millions of neuronal connections.

"In our experiments, HDFT has been able to identify disruptions in neural pathways with a clarity that no other method can see," Dr. Schneider said. "With it, we can virtually dissect 40 major fiber tracts in the brain to find damaged areas and quantify the proportion of fibers lost relative to the uninjured side of the brain or to the brains of healthy individuals. Now, we can clearly see breaks and identify which parts of the brain have lost connections."

HDFT scans of the study patient's brain were performed four and 10 months after he was injured; he also had another scan performed with current state-of the-art diffusion tensor imaging (DTI), an imaging modality that collects data points from 51 directions, while HDFT is based on data from 257 directions. For the latter, the injury site was compared to the healthy side of his brain, as well as to HDFT brain scans from six healthy individuals.

Only the HDFT scan identified a lesion in a motor fiber pathway of the brain that correlated with the patient's symptoms of left-sided weakness, including mostly intact fibers in the region controlling his left leg and extensive breaks in the region controlling his left hand. The patient eventually recovered movement in his left leg and arm by six months after the accident, but still could not use his wrist and fingers effectively 10 months later.

Memory loss, language problems, personality changes and other brain changes occur with TBI, which the researchers are exploring with HDFT in other research protocols.

UPMC neurosurgeons also have used the technology to supplement conventional imaging, noted Robert Friedlander, M.D., professor and chair, Department of Neurological Surgery, Pitt School of Medicine, and UPMC Endowed Professor of Neurosurgery and Neurobiology. He is not a member of this research study.

"I have used HDFT scans to map my approach to removing certain tumors and vascular abnormalities that lie in areas of the brain that cannot be reached without going through normal tissue," he said. "It shows me where significant functional pathways are relative to the lesion, so that I can make better decisions about which fiber tracts must be avoided and what might be an acceptable sacrifice to maintain the patient's best quality of life after surgery."

Dr. Okonkwo noted that the patient and his family were relieved to learn that there was evidence of brain damage to explain his ongoing difficulties. The team continues to evaluate and validate HDFT's utility as a brain imaging tool, so it is not yet routinely available.

"We have been wowed by the detailed, meaningful images we can get with this technology," Dr. Okonkwo said. "HDFT has the potential to be a game-changer in the way we handle TBI and other brain disorders."

Thursday, March 1, 2012

LSUSHC research identifies new experimental drug for stroke

Too bad its patented.
http://www.lsusystem.edu/index.php/2012/03/01/lsushc-research-identifies-new-experimental-drug-for-stroke/
Research led by Nicolas Bazan, MD, PhD, Boyd Professor and Director of the Neuroscience Center of Excellence at LSU Health Sciences Center New Orleans, has found that a synthetic molecule protected the brain in a model of experimental stroke. Dr. Bazan was issued a patent on the molecule called LAU-0901, a low molecular weight drug that crosses the blood-brain barrier. The findings are published in the March 2012 issue of Translational Stroke Research.

During an ischemic stroke, the most common kind, the body releases signals that cause neuroinflammation which leads to a buildup of chemicals that harm the brain. Platelet-activating factor (PAF) accumulates, and inhibition of this process plays a critical role in neuronal survival.

“LAU-0901 is able to reduce this incorrect signaling and inhibit the PAF receptor, which reduces multiple neuroinflammatory signals and greatly lessens the severity of damage in experimental stroke,” notes Dr. Bazan.

The research team used magnetic resonance imaging in conjunction with behavior and immunohistopathology to further study this novel therapeutic approach. The researchers report that LAU-0901, given two hours after the onset of experimental stroke, lessened the severity of brain damage, significantly reduced lesions in the brain, and improved coordination and movement. LAU-0901 produced no discernible side effects. These findings suggest LAU-0901 is a promising neuroprotectant that provides the basis for future therapeutics in patients suffering ischemic stroke.

Stroke is a leading cause of death and disability worldwide. Conventional therapies for ischemic stroke include thrombolytic therapy, prevention of inappropriate coagulation and thrombosis, and surgery to repair vascular abnormalities.Only one FDA-approved therapy exists for treatment of acute ischemic stroke, the thrombolytic tissue plasminogen activator (tPA), but only 5% of all ischemic stroke patients are eligible for treatment with tPA.

The research team also included Professor Ludmila Belayev and MD/PhD student Tiffany Niemoller Eady at LSU Health Sciences Center New Orleans, as well as Dr. Julio Alvarez Builla and other scientists from the University of Alcala, Spain, and Dr. Andre Obenaus at the University of Loma Linda.

New drug could protect brain from stroke damage

Get going on more testing.
New drug could protect brain from stroke damage

A new drug appears to protect the brain against damage from stroke, even if administered hours after the stroke occurs, according to a new study in monkeys.
Monkeys given the drug had less dead brain tissue and showed more improvements on tests of brain function after a stroke, compared with monkeys that did not take the drug.
Testing on primates was important because, over the last half-century, there have been more than 1,000 drugs (So what are they?)aimed at preventing brain damage that have failed to work in people, even though they worked well in mice or rats, said study researcher Dr. Michael Tymianski, of the Toronto Western Hospital Research Institute in Canada.
The new findings show it is possible to protect a complex brain, similar to that of a human, against damage after stroke, Tymianski said.
In fact, Tymianski and colleagues have already tested the drug, which belongs to a group called PSD-95 inhibitors, in a small number of people. Their early studies suggest the drug is safe and effective in people as well, Tymianski said, and he hopes the drug will be available for people in three to four years.
Simulating strokes
The researchers induced strokes in cynomolgus macaques. Ten monkeys received the drug, delivered intravenously, while ten received a placebo. To increase their study's validity, the researchers stimulated strokes were likely larger than what would occur in people, Tymianski said.
The monkeys' brains were scanned using magnetic resonance imaging (MRI) one day and 30 days after their strokes, and the animals completed tests over the month to measure their brain function.
The drug reduced the amount of brain tissue at risk for damage by 55 percent after one day, and by 70 percent after one month, the researchers said.
Monkeys given the drug improved on the brain function tests over the study, while monkeys given the placebo did not.
Similar findings were seen even when the drug was administered three hours after stroke, Tymianski said.
Promising drug?
"It looks really promising," Dr. S. Thomas Carmichael, a neurologist at the University of California, Los Angeles, said of the findings. "They addressed a lot of past failings that have plagued this area of research," said Carmichael, who was not involved in the study.
PSD-95 inhibitors are thought to work by protecting brain cells from the destructive events that occur when cells are deprived of oxygen, as is the case with stroke. Several other research groups are also investigating their use as stroke treatments.
Some are concerned the drugs may be toxic in people because they inhibit the interactions of a brain protein required for normal brain function, said Dave Schubert, a professor and at the Salk Institute in La Jolla, Calif. And drug toxicity is usually revealed in late-stage clinical trials, because those patients receive the drug for much longer, Schubert said.
The study in monkeys was published Wednesday in the journal Nature. The researchers presented the findings from their studies in people this year at the International Stroke Conference.
Tymianski is president and CEO of NoNO Inc., a biotechnology company that makes NA-1, the drug used in the study.
Pass it on: Drugs known as PSD-95 inhibitors can protect monkey brains from damage after stroke, and the researchers hope the findings will be true in people too.

Trans Fats Linked to Stroke in Older Women

Be careful out there. I hate these when they don't define older.
http://www.medpagetoday.com/Cardiology/Strokes/31434?utm_source=cardiodaily&utm_medium=email&utm_content=aha&utm_campaign=03-01-12&eun=gd3r&userid=424561&email=oc1dean@yahoo.com&mu_id=

High trans fat intake may boost stroke risk for postmenopausal women, but aspirin appears to bring it back down, according to an observational study.

Women who ate the most trans fats were 39% more likely to have an ischemic stroke compared with those who had the least in their diet (P=0.048 for trend) Ka He, MD, ScD, MPH, of the University of North Carolina at Chapel Hill's School of Global Public Health, and colleagues found.

Aspirin use altered the link, though, with no effect of trans fat intake for women taking it (P=0.43 for trend) but a 66% elevated ischemic stroke risk for non-aspirin users with the highest trans fat consumption (P<0.01 for trend), they reported online in the Annals of Neurology.

"Our results highlight the importance of limiting the amount of dietary trans fat intake and using aspirin for primary ischemic stroke prevention among women, specifically postmenopausal women who have elevated risk of ischemic stroke," the group wrote.

Trans fats, which are typically found in processed food from partial hydrogenation of vegetable oils, are thought to raise heart disease risk by boosting cholesterol, inflammation, and endothelial dysfunction.

But the link between fats and stroke has been less straightforward, and two large studies of healthcare professionals found no association of trans fats with ischemic stroke.

Because those studies included relatively few strokes, He's group analyzed the more than 1,000 incident ischemic strokes in the prospective Women's Health Initiative Observational Study according to food frequency questionnaires filled out by the 87,025 generally healthy postmenopausal women who participated.

Total fat intake, cholesterol consumption, and other types of fats aside from trans fat showed no association with ischemic stroke.

For trans fat, the hazard ratios for ischemic stroke adjusted for age and ethnicity rose with trans fat intake compared with the lowest intake quintile that averaged 2.2 g per day (P=0.0002 for trend):

  • 1.22 for the quintile that consumed an average 2.3 g per day (95% CI 0.99 to 1.51)
  • 1.37 for the quintile that got an average 2.6 g per day (95% CI 1.11 to 1.68)
  • 1.33 for the quintile that averaged 3.4 g per day (95% CI 1.09 to 1.64)
  • 1.49 for the highest intake group who averaged 6.1 g per day (95% CI 1.22 to 1.82)

The association attenuated slightly but remained significant with further adjustment for factors such as fruit and vegetable and fiber in the diet, as well as socioeconomic factors, use of hormone replacement therapy, smoking and medical history, and use of medications including aspirin.

The impact of dietary trans fat was modified by aspirin use, which was consistent across all three types of trans fat isomers (P=0.04 to 0.002 for interaction), though not by use of statin medication or menopausal hormone therapy or alcohol intake.

"Increased platelet response to an agonist and inhibition after aspirin intake may at least in part explain the attenuated association between trans fat intake and ischemic stroke among aspirin users in this cohort," the researchers suggested.

Aspirin may make a difference in this population in particular because of the higher platelet reactivity among women and greater platelet aggregability with older age, they noted.

The group cautioned that they may have been underpowered to show an effect of statins in modifying the association with trans fat, but noted that fatty acid intake was a key measure in the food frequency questionnaires used.

Confounding was possible but unlikely, as the results remained consistent through several sensitivity analyses, they added.

Wednesday, February 29, 2012

GSK3 as a Sensor Determining Cell Fate in the Brain

More stuff to research on hyperacute therapies.
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC3275790/
Glycogen synthase kinase 3 (GSK3) is an unusual serine/threonine kinase that controls many neuronal functions, including neurite outgrowth, synapse formation, neurotransmission, and neurogenesis. It mediates these functions by phosphorylating a wide range of substrates involved in gene transcription, metabolism, apoptosis, cytoskeletal dynamics, signal transduction, lipid membrane dynamics, and trafficking, amongst others. This complicated list of diverse substrates generally follow a more simple pattern: substrates negatively regulated by GSK3-mediated phosphorylation favor a proliferative/survival state, while substrates positively regulated by GSK3 favor a more differentiated/functional state. Accordingly, GSK3 activity is higher in differentiated cells than undifferentiated cells and physiological (Wnt, growth factors) and pharmacological inhibitors of GSK3 promote the proliferative capacity of embryonic stem cells. In the brain, the level of GSK3 activity influences neural progenitor cell proliferation/differentiation in neuroplasticity and repair, as well as efficient neurotransmission in differentiated adult neurons. While defects in GSK3 activity are unlikely to be the primary cause of neurodegenerative diseases, therapeutic regulation of its activity to promote a proliferative/survival versus differentiated/mature functional environment in the brain could be a powerful strategy for treatment of neurodegenerative and other mental disorders.

Genetic Manipulation of Cell Death and Neuroplasticity Pathways in Traumatic Brain Injury

Something similar needs to be done for stroke.

http://scholar.google.com/scholar_url?hl=en&q=http://www.springerlink.com/index/NJUL186353100QW8.pdf&sa=X&scisig=AAGBfm34RZH6OQdFVEVqZN_qGKq9eVXxvQ&oi=scholaralrt

Abstract
Traumatic brain injury (TBI) initiates a complex cascade of secondary neurodegenerative mechanisms contributing to cell dysfunction and necrotic and apoptotic cell death. The injured brain responds by activating endogenous reparative processes to counter the neurodegeneration or remodel the brain to enhance functional recovery. A vast array of genetically altered mice provide a unique opportunity to target single genes or proteins to better understand their role in cell death and endogenous repair after TBI. Among the earliest targets for transgenic and knockout studies in TBI have been programmed cell death mediators, such as the Bcl-2 family of proteins, caspases, and caspase-independent pathways. In addition, the role of cell cycle regulatory elements in the posttraumatic cell death pathway has been explored in mouse models. As interest grows in neuroplasticity in TBI, the use of transgenic and knockout mice in studies focused on gliogenesis, neurogenesis, and the balance of growth-promoting and growth-inhibiting molecules has increased in recent years. With proper consideration of potential effects of constitutive gene alteration, traditional transgenic and knockout models can provide valuable insights into TBI pathobiology. Through increasing sophistication of conditional and cell-type specific genetic manipulations, TBI studies in genetically altered mice will be increasingly useful for identification and validation of novel therapeutic targets.

Mending the brain with a mechanical glove

Just think, students came up with this. 

Mending the brain with a mechanical glove



Northeastern University student-researchers have created a post-stroke rehabilitation glove designed to increase hand strength through finger extension and improve cognitive ability to complete everyday tasks such as picking up a glass, turning a doorknob or unscrewing a soda bottle.

The innovative device, dubbed “Excelsior,” was designed for a senior capstone project under the direction of Constantinos Mavroidis, Distinguished Professor of Engineering, and Richard Ranky, a mechanical engineering doctoral candidate. The undergraduate team members included Aaron Bickel, Abhishek Singhal, Craig Pacella and Nisha Parekh, whose work was supported by a three-year, $270,000 grant from the National Science Foundation.

According to the Centers for Disease Control and Prevention, some 800,000 stroke cases occur in the United States each year. Ranky said survivors require physical therapy and ongoing exercise to regain mobility and dexterity. As he put it, “A major goal for patients post-stroke is regaining their fine motor control.”

Excelsior – which was developed using 3-D additive manufacturing with embedded sensors and can be customized to fit a patient’s hand – was designed with that goal in mind.

To improve cognitive function, users match colored LEDs (light-emitting diodes) on the device’s fingertips with those on external objects fashioned into household shapes, such as cups or doorknobs.

In preparation for designing the prototype, students interviewed physical therapists at Spaulding Rehabilitation Hospital in Boston who shed light on patient needs.

Pacella, a senior mechanical engineering major, praised his group’s final design. “No other device assists with opening the hand and has cognitive exercises like this,” he said. “Most commercial hand motion rehab devices don’t use sensors to measure range of motion and control of the fingers.”

Mavroidis, who has filed a provisional patent on the glove, plans to license and commercialize the rehab device, which would cost patients approximately $200. But there’s work to be done. “It still needs to become more user-friendly, stronger and thinner,” Mavroidis explained.

Pacella said programming and developing circuit boards for the prototype forced him outside of his comfort zone, which, he said, would serve him well in his first professional job.

“There’s no such thing as a job in only mechanical engineering,” Pacella said. “In the real world, you need to understand other disciplines, which you can only learn through experience.”

Ranky agreed, highlighting the value of experiential learning. “Working on a capstone project is different from solving a problem in class where there is only one solution,” he said. “Capstone is as close as you can get to the real world.”

Technology To Prevent Stroke Demonstrated In JoVE

Practically anything would be better than rat poison. 

Technology To Prevent Stroke Demonstrated In JoVE


In the United States alone, approximately 6 million people suffer from an irregular heartbeat called atrial fibrillation (AF), and since the incidence increases with age, it is predicted that 15.9 million Americans will be affected by 2050. The most devastating side effect of AF is stroke, but a new device from Boston Scientific may prevent them from occurring.

Researchers from Atritech, now part of Boston Scientific, developed the WATCHMAN device, a small mesh umbrella that can be inserted into part of the heart cavity to prevent the formation of blood clots that cause strokes.

Currently, the anti-coagulant drug warfarin is used to prevent strokes, but the drug comes with other risks.

"Warfarin has a lot of side-effects. One major side-effect is the bleeding risk," said paper author Dr. Sven Mobius-Winkler. "Therefore, only 50 percent of the patients who should take Warfarin actually take it."

The WATCHMAN device gives patients another option. It has already been approved for use in the European Union and Australia, and secured investigational approval from the FDA in 2009.

To help train doctors how to use the device, doctors from the University of Leipzig Heart Center in Germany are publishing the full WATCHMAN placement procedure in the Journal of Visualized Experiments (JoVE), the world's first and only peer-reviewed, PubMed indexed, science and medicine video journal.

"Intervention and closure of the left atrial appendage is a complex procedure," said Dr. Mobius- Winkler. "For inexperienced physicians, it is hard to learn this procedure and therefore the video can help by doing step-by-step the implantation."

"The WATCHMAN device will give patients with atrial fibrillation another option rather than anti-coagulant drugs," said JoVE Editor Dr. Robert Dolan. "This article demonstrates the implantation of the device and will help clinicians gain expertise with the procedure, helping many of the patients who are unable or unwilling to take warfarin."

Study: Old flu drug speeds brain injury recovery

Lets start studying this for stroke.
http://www.lasvegassun.com/news/2012/feb/29/us-med-brain-injury-drug/

Researchers are reporting the first treatment to speed recovery from severe brain injuries caused by falls and car crashes: a cheap flu medicine whose side benefits were discovered by accident decades ago.

Severely injured patients who were given amantadine got better faster than those who received a dummy medicine. After four weeks, more people in the flu drug group could give reliable yes-and-no answers, follow commands or use a spoon or hairbrush _ things that few of them could do at the start. Far fewer patients who got amantadine remained in a vegetative state, 17 percent versus 32 percent.

"This drug moved the needle in terms of speeding patient recovery, and that's not been shown before," said neuropsychologist Joseph Giacino of Boston's Spaulding Rehabilitation Hospital, co-leader of the study. He added: "It really does provide hope for a population that is viewed in many places as hopeless."

Many doctors began using amantadine for brain injuries years ago, but until now there's never been a big study to show that it works. The results of the federally funded study appear in Thursday's New England Journal of Medicine.

A neurologist who wasn't involved in the research called it an important step. But many questions remain, including whether people less severely injured would benefit, and whether amantadine actually improves patients' long-term outcome or just speeds up their recovery.

Each year, an estimated 1.7 million Americans suffer a traumatic brain injury. Falls, car crashes, colliding with or getting hit by an object, and assaults are the leading causes. About three-quarters are concussions or other mild forms that heal over time. But about 52,000 people with brain injuries die each year and 275,000 are hospitalized, many with persistent, debilitating injuries, according to government figures.

With no proven remedies to rely on, doctors have used a variety of medicines approved for other ailments in the hopes that they would help brain injury patients. Those decisions are based on "hunches and logic rather than data," said Dr. John Whyte, of the Moss Rehabilitation Research Institute in suburban Philadelphia. He led the study along with Giacino.

Amantadine (uh-MAN'-tah-deen), an inexpensive generic, was approved for the flu in the mid-1960s. The first inkling that it might have other uses came a few years later when it appeared to improve Parkinson's symptoms in nursing home patients who got it. It was found to have an effect on the brain's dopamine system, whose many functions include movement and alertness, and it was later approved for Parkinson's.

It's now commonly used for brain injuries, and the researchers felt it was important to find out "whether we're treating patients with a useful drug, a harmful drug or a useless drug," Whyte said.

The study was done in the U.S., Denmark and Germany and involved 184 severely disabled patients, about 36 years old on average. About a third were in a vegetative state, meaning unconscious but with periods of wakefulness. The rest were minimally conscious, showing some signs of awareness. They were treated one to four months after getting injured, a period when a lot of patients get better on their own, Giacino noted.

They were randomly assigned to receive amantadine or a dummy drug daily for four weeks. Both groups made small but significant improvement, but the rate of recovery was faster in the group getting amantadine. When treatment stopped, recovery in the drug group slowed. Two weeks later, the level of recovery in the two groups was about the same.

There was no group difference in side effects, which included seizure, insomnia and rigid muscles.

The study was short, and the effect on long-term outcome is unknown. But Giacino said the drug still has value even if it only hastens recovery.

"What condition would we not jump for joy if we could have it over with faster?" he said.

The study didn't include those with penetrating head injuries, like the gunshot wound former Rep. Gabrielle Giffords suffered, but Giacino said the drug should have similar effects in those patients. Whether it would work in patients with brain injuries not caused by trauma, such as a stroke, isn't known.

Whyte said the researchers want to test the drug for longer periods.

Dr. Ramon Diaz-Arrastia said the results were welcome news in a field that has seen many failed efforts. He is director of clinical research at the government's Center for Neuroscience and Regenerative Medicine, which works with the military and government scientists on brain injury research.

"It's an important step toward developing better therapies," he said.

Since amantadine is so commonly used, he said U.S. troops with severe brain injuries in Iraq or Afghanistan probably get it, or should get it now. Since 2000, some 233,000 troops have suffered traumatic brain injuries, including about 6,100 serious cases, many of them from bomb blasts or shrapnel.

Laura Bacon said amantadine seems to be helping her brother recover from a car accident in Vermont last October. Nicholas Gnazzo, 47, of Rochester, N.H., was in a coma for weeks before he was taken for rehabilitation to Spaulding, where doctors put him on amantadine in January.

Since then he has been more alert, able to communicate with nods or gestures _ like pointing to his eyes when he wants his glasses, his sister said. Giacino agreed her brother has gotten better, but whether it is because of the drug can't be determined. Gnazzo wasn't part of the study.

"It's been four months now, and we know we still have a long way to go," Bacon said. "Anything that could be faster _ or feel faster to us _ is a positive."

Antibodies in Spinal Fluid Post-Stroke Puzzling

I think these researchers are looking at this wrong, they are assuming that these antibodies are the cause of the stroke rather than a result.
http://www.medpagetoday.com/Cardiology/Strokes/31410?utm_source=cardiodaily&utm_medium=email&utm_content=aha&utm_campaign=02-29-12&eun=gd3r&userid=424561&email=oc1dean@yahoo.com&mu_id=

Patients with acute stroke were more likely than those with other conditions to have antibodies in their cerebrospinal fluid, researchers found.

Of patients who received a lumbar puncture, nearly a quarter (24.8%) of those with acute stroke had intrathecal antibodies, compared with just 2.5% of patients with other conditions (P<0.001), according to Harald Prüss, MD, of the Charité University of Medicine Berlin, and colleagues.

"The strong association between cerebrospinal fluid-specific immunoglobulin synthesis and stroke suggests a role in the development of cerebral ischemia and might constitute an immunologically defined stroke subgroup," the researchers wrote online in Archives of Neurology.

The finding "demands a systematic prospective analysis of cerebrospinal fluid and serum samples to determine the time kinetics and pathogenicity of antibodies," they wrote.

Immune mechanisms have been considered to explain some ischemic strokes, but the role of intrathecal antibodies remains unclear because diagnostic tests are not routinely performed on cerebrospinal fluid in patients after cerebral ischemia.

In the current study, Prüss and colleagues examined data from 3,050 consecutive patients with ischemic stroke who were hospitalized at their center from 2005 to 2009.

Only 318 (10.4%) underwent a lumbar puncture within 96 hours after symptom onset. Indications included seizures, suspected central nervous system infection or vasculitis, pronounced agitation or disorientation, suspected leptomeningeal carcinomatosis, mitochondriopathy, vasculopathy, or diagnostic uncertainty.

The researchers matched those 318 patients with 79 control patients who did not have a stroke but received a lumbar puncture during a diagnostic workup for headache, diabetic oculomotor or abducens nerve palsy, idiopathic facial nerve palsy, or dizziness.

The patients with stroke were more likely to have cerebrospinal fluid-specific immunoglobulin synthesis than the controls, as measured by the presence of oligoclonal immunoglobulin bands.

The high, nearly 25% prevalence of antibodies in the cerebrospinal fluid of patients with stroke "may point to a direct association between cerebrospinal fluid-specific immunoglobulin synthesis and focal cerebral ischemia," the authors wrote.

Among the patients with stroke, one-third had blood-brain barrier dysfunction and 18.1% had pleocytosis, with no differences in the rates based on the presence or absence of the antibodies.

There were also no differences in the frequency of oligoclonal bands, pleocytosis, increased protein in the fluid, age, and sex based on whether the patients had had a prior stroke.

Of the patients with stroke who did not have intrathecal antibodies after the first lumbar puncture, 12 underwent a second puncture. Half had antibodies after the second puncture, which suggests that "the percentage of patients with oligoclonal band-positive stroke might increase further with longer follow-up," according to Prüss and colleagues.

They noted that stroke-associated intrathecal immunoglobulin synthesis could result from one of three options:

  • Unidentified inflammatory disease
  • Undetected previous ischemic degeneration of neuronal tissue with repeated presentation of central nervous system antigen to the immune system
  • Polyclonal nonspecific B-cell activation secondary to brain damage

"The second explanation might be relevant to the high proportion of patients with oligoclonal bands already present at the time of their first clinically detected stroke," the authors wrote. "The finding of oligoclonal bands in patients with transient ischemic attacks supports this notion and implies relevance for predisease stages."