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.

Showing posts with label spinal. Show all posts
Showing posts with label spinal. Show all posts

Friday, January 6, 2017

A potential new way for physical therapists to treat stroke survivors

Estim to the spine would be a novel way to help walking. With this I could see possibly using it to block the spinal signals for spasticity.
http://news.usc.edu/114345/a-potential-new-way-for-physical-therapists-to-treat-stroke-survivors/



Therapist positing TENS electrodes
USC researchers are studying the effect of external electrical stimulation on stroke patients. (Photo/iStock)
Could electricity help stroke survivors regain control of their legs and return to mobility?
It’s a question Assistant Professor James Finley and Professor Carolee Winstein, both from the USC Division of Biokinesiology and Physical Therapy, hope to answer with a new study that could transform the way physical therapists help stroke survivors get back on their feet.
Finley and Winstein were recently awarded an Innovative Research Grant by the American Heart Association/American Stroke Association (AHA/ASA) to study the use of non-invasive electrical stimulation to improve stroke survivors’ walking ability.
The study builds on neuromodulation, a promising treatment during which electrical or magnetic stimulation is applied outside the body to treat problems ranging from spinal cord injury to depression.
Finley’s research uses the treatment in a completely different way to treat stroke survivors, applying external non-invasive electrical stimulation directly to the spine, instead of the brain where it is most often used.
“What we’re saying is, ‘Sure the brain is important, but we don’t want to ignore the role of the spinal cord, particularly as it pertains to walking,’” Finley said.
If his proof-of-concept study is successful, it could offer physical therapists a new treatment to get stroke survivors back on their feet.
According to the Centers for Disease Control, more than 795,000 people have a stroke in the United States each year — one every 40 seconds — with more than 600,000 surviving. Stroke is also the leading cause of serious long-term disability.

Crosstown collaborators

Finley’s study pairs the stroke rehabilitation expertise of the USC Division of Biokinesiology and Physical Therapy with spinal cord physiology expertise from the Edgerton Neuromuscular Research Laboratory at UCLA. The lab is led by V. Reggie Edgerton, who has been studying spinal cord physiology for more than 40 years.
Edgerton and his team have used electrical stimulation to treat patients with spinal cord injury. The researchers have published a number of studies that demonstrate significant changes in lower extremity function as a result of spinal cord electrical stimulation, Finley said.
We hope to be able to use electrical stimulation to actually show some short-term improvements in walking function or even control of the legs.
James Finley
“We hope to be able to use electrical stimulation the same way in stroke survivors to actually show some short-term improvements in walking function or even control of the legs,” he added.
The study will be conducted in two phases. First, researchers will focus on asymmetry, determining which segments of the spinal cord, when stimulated, impact which muscle activity patterns in each leg.
Secondly, Finley’s team hopes to find optimal stimulation locations and combinations to help improve lower extremity function.
“If we could, for some subset of stroke survivors, actually improve their walking function beyond what is currently possible with standard techniques, we could imagine this becoming an actual intervention,” Finley explained.

High risk, high reward

Finley joined the USC division in 2013. He is the director of the Locomotor Control Laboratory and has devoted himself to better understand how locomotion is controlled and adapted in both healthy and injured neuromuscular systems.
The junior faculty member has two active grants and three completed grants totaling nearly $900,000.
Winstein has been a professor at the USC division since 1990. She runs the Motor Behavior and Neurorehabilitation Lab, which is focused on motor control and learning.
The AHA/ASA grant aims to support high-risk, high-reward research that could ultimately lead to critical discoveries or major advancements in the field of cardiovascular and stroke research.

Friday, February 10, 2012

Spinal Stroke

I had not heard of this kind.
http://www.empowher.com/stroke/content/spinal-stroke

Spinal cord infarction, also known as spinal stroke, is a stroke that occurs either within the arteries that supply the spinal cord or the cord itself. The leading cause is arteriosclerosis, a closing or thickening of arteries which are major suppliers to the spinal cord.

More specifically, the type of arteriosclerosis is called atheromatosis. In these cases, an accumulation of lipid-containing matter forms within the arteries. The symptoms of spinal stroke may include paralysis, loss of deep tendon reflexes, and intermittent back pain which either feels sharp or burning or both. Other possible symptoms are loss of pain and temperature sensation, incontinence, aching pain down through the legs, and weakness in the legs.

Spinal stroke can can also be accompanied by initially limp, floppy muscles that become spastic or “tight” over the next brief span of time (sometimes several days), reflexes which may go from being unresponsive to becoming overactive, or a loss of the sense of temperature and pain.

Depending on the mechanism underlying the spinal cord infarction, the symptoms may begin abruptly and acutely or slowly and gradually. Specific symptoms depend on where in the spinal cord the infarction occurs.

The following are some conditions which may result in occlusion of the spinal arteries and spinal cord infarction:

* atherosclerosis of the aorta
* a dissecting aoric aneurysm
* an abscess or tumor impinging on an artery
* severe low blood pressure
* blockages in blood vessels which are smaller

The following types of blockages may be due to polyarteritis nodosa, diabetes, systemic lupus erythematosus, neurosyphilis, tuberculous meningitis or pneumococcal meningitis:

* vasculitis
* blood clots

In very rare cases, incidents of spinal cord infarction have been caused by situations in which there is pressure placed on the spine. These situations can include back injury, exercise and pregnancy.

In these cases, the nucleus pulposus or core of a spinal disc extrudes out of the disc. This enters into a spinal artery, and can result in a blood flow blockage
2 more pages at the url.