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 hypothesis. Show all posts
Showing posts with label hypothesis. Show all posts

Wednesday, June 14, 2017

New trial method could be more efficient way to study stroke treatments

New trial method could be more efficient way to study stroke treatments


A sequential multiple assignment randomized (SMART) trial allows researchers to test two hypotheses at once.
The new trial method is being used in clinical trials across the industry.
"SMART trials allow you to get to two questions at once and can potentially be more efficient," says William Meurer, M.D., associate professor of emergency medicine and neurology at Michigan Medicine and a member of the Michigan Center for Integrative Research in Critical Care. "You may find answers you wouldn't normally find using a normal trial design."
Meurer is the lead author on a study published in the Journal of Stroke and Cerebrovascular Diseases that investigated if the trial design could be used specifically to study stroke treatment.
"In stroke, we are often treating the patient with a tissue plasminogen activator drug upfront to dissolve a blood clot in the brain," Meurer says. "Sometimes, that blood clot doesn't dissolve. What do you do next?"
This question led the research team to a SMART trial design, says Meurer, also a member of the U-M Institute for Healthcare Policy and Innovation.
Researchers wanted to know two things: "If there's a new treatment better than tPA, and if there's something new we can do at that second step, if tPA doesn't dissolve the clot," he says.
Designing the trial
Meurer and colleagues conducted a numerical simulation to evaluate the study design. The simulation included two initial reperfusion strategies, alteplase versus a new pharmacologic regimen, and two rescue therapies, the current best endovascular approach versus rescue pharmacotherapy.
"Because we were testing these multiple treatment options, we knew there could be a range of possible outcomes," Meurer says. "For example, we cite in the paper that rescue pharmacotherapy may only be effective if linked with the alteplase initial reperfusion treatment. Our main outcome of the simulated trial was to find the proportion of true-positive and false-positive trials given the scenario."
The research team analyzed, in sample sizes of 2,000, 1,500 and 700, the overall probabilities of success for individuals following each treatment pathway:
  • lytic A, respond
  • lytic A, no response, catheterization lab
  • lytic A, no response, new medication
  • lytic B, respond
  • lytic B, no response, catheterization lab
  • lytic B, no response, new medication.
In addition, they simulated probabilities for three trial phases. This assumed a new treatment would work 50 percent of the time, and the old treatment would work 40 percent of the time, with the goal to determine how many of the clinical trials actually got the right answer based on the above simulated truth. This determined how accurate that sort of clinical trial would be in detecting an important treatment effect, and how often the trial might give a false positive result.
After probing the results, the researchers say their simulation demonstrated that a SMART trial design was effective for testing sequential treatments for acute stroke.
"The SMART simulation allowed us to find differences in dynamic treatment regimens, and tailored sequences of treatments and treatment interactions, instead of just treatments at a single stage," Meurer says.
"Mainly, this new design allowed us to learn a couple of things at once: how well a treatment worked for the first phase of stroke, and how often an additional treatment worked in those who did not respond to the first treatment. Uniquely, some initial treatments might look the same, but may increase the number of patients who respond to the second stage treatment.
"Current clinical trial processes would not allow this result because we wouldn't change from one first stage treatment to another if they were working similarly, and thus we would never know that we would help people because the new first stage treatment would make the second stage treatment more effective."
SMART trials are not unusual in clinical trials overall, he adds, noting that they just have not been used specifically to study stroke treatments.
"We proved this type of consolidated approach to research in a randomized way is unique and a good way to learn more about what new treatments might work for stroke patients," he says.
It could also potentially save time and resources.
"Clinical trials are costly and it can be challenging to find participants," Meurer says. "A SMART trial could potentially be more efficient. In stroke care, most trials focus on the first decision made in treatment, whereas this type of trial allows treatment decisions to be made at two different times to see how they could benefit from each other."

Thursday, March 12, 2015

Involvement of calpains in adult neurogenesis: implications for stroke

What is your doctor doing with this to make a stroke protocol? Or is he/she one of the lazy ones? Waiting around for somebody else to solve the problem?
I don't give a shit that this is a hypothesis and theory article. That just means your doctor has to come up with a clinical research trial to test whatever theory they believe in.
I can almost guarantee that nothing will be done to follow up on this. We just do not have a great stroke association leading the strategy.
http://journal.frontiersin.org/article/10.3389/fncel.2015.00022/full?
Vanessa M. Machado1,2,3,4, Maria I. Morte4, Bruno P. Carreira4, Maria M. Azevedo4†, Jiro Takano5, Nobuhisa Iwata6, Takaomi C. Saido5, Hannelore Asmussen7, Alan R. Horwitz7, Caetana M. Carvalho4 and Inês M. Araújo1,2,3,4*
  • 1Regenerative Medicine Program, Department of Biomedical Sciences and Medicine, University of Algarve, Faro, Portugal
  • 2IBB-Institute for Biotechnology and Bioengineering, Center for Molecular and Structural Biomedicine, University of Algarve, Faro, Portugal
  • 3Center for Biomedical Research, CBMR, University of Algarve, Faro, Portugal
  • 4Center for Neuroscience and Cell Biology, University of Coimbra, Coimbra, Portugal
  • 5Laboratory for Proteolytic Neuroscience, RIKEN Brain Science Institute, Wako-shi, Saitama, Japan
  • 6Graduate School of Biomedical Sciences, Nagasaki University, Nagasaki, Japan
  • 7Department of Cell Biology, University of Virginia School of Medicine, Charlottesville, VA, USA
Calpains are ubiquitous proteases involved in cell proliferation, adhesion and motility. In the brain, calpains have been associated with neuronal damage in both acute and neurodegenerative disorders, but their physiological function in the nervous system remains elusive. During brain ischemia, there is a large increase in the levels of intracellular calcium, leading to the activation of calpains. Inhibition of these proteases has been shown to reduce neuronal death in a variety of stroke models. On the other hand, after stroke, neural stem cells (NSC) increase their proliferation and newly formed neuroblasts migrate towards the site of injury. However, the process of forming new neurons after injury is not efficient and finding ways to improve it may help with recovery after lesion. Understanding the role of calpains in the process of neurogenesis may therefore open a new window for the treatment of stroke. We investigated the involvement of calpains in NSC proliferation and neuroblast migration in two highly neurogenic regions in the mouse brain, the dentate gyrus (DG) and the subventricular zone (SVZ). We used mice that lack calpastatin, the endogenous calpain inhibitor, and calpains were also modulated directly, using calpeptin, a pharmacological calpain inhibitor. Calpastatin deletion impaired both NSC proliferation and neuroblast migration. Calpain inhibition increased NSC proliferation, migration speed and migration distance in cells from the SVZ. Overall, our work suggests that calpains are important for neurogenesis and encourages further research on their neurogenic role. Prospective therapies targeting calpain activity may improve the formation of new neurons following stroke, in addition to affording neuroprotection.