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 fee fees. Show all posts
Showing posts with label fee fees. Show all posts

Thursday, July 18, 2019

Researcher: Mental health issues often progress after brain injury

Well, I have zero humility and tons of arrogance after my stroke. I happen to think I know more about what needs to be done in stroke than any doctor in the world.  It is only arrogant if you don't know what you are talking about. I refer directly to research,  my opinions on that research may be disturbing but I'm not here to assuage doctor fee-fees.

Researcher: Mental health issues often progress after brain injury

Some people will shake off a mild concussion. They’ll take it lightly or even ignore it. But research being done among military patients, with a lead researcher from the University of Washington, is showing that those mild brain injuries can have a lasting effect on mental health.
UW researcher Christine MacDonald has worked since 2008 in a long-term study of brain injuries among military service members. That intense focus, along with advances in imaging technology, has helped researchers connect more dots between brain injury and mental health. It shows that a high number of military patients who experience even mild concussions can suffer psychologically years later, MacDonald said.
Service members often sustain head trauma during combat and in training. MacDonald, an associate professor in UW’s department of neurological surgery, is a lead investigator in a team following military patients soon after brain injuries and in follow-up intervals over about 10 years.
“The high-arching, one-sentence theme is evolution, not resolution, of you name it – of symptoms, of disability, of whatever the outcome,” MacDonald said. She will give a talk in Spokane at 6:30 p.m. Tuesday on “Brain Injury & Psychological Health Following Combat Deployment: The Invisible Wounds of War.”
By following individual military patients so long, researchers can monitor and ask individuals about whether they were worsening, recovering, staying the same and everything in between, she said.
“The study has found that when you follow the same patient over time, those with combat head injuries – and these are the mild concussions, the supposed to be shake-them-off-and-walk-away ones – that a disproportionate number of those individuals have worsening of symptoms that progresses even after one year.
“When we look at the one-year to five-year follow-ups, we actually see a disproportional number of those concussion patients getting worse.”
Separately, recent media attention has spotlighted concussions among U.S. athletes, including some who committed suicide and had Chronic Traumatic Encephalopathy (CTE), diagnosed postmortem. The Centers for Disease Control and Prevention says traumatic brain injury can be caused from a bump, blow, jolt to the head or penetrating head injury that disrupts normal brain function.
MacDonald said her speech is aimed at educating the public, rehab physicians, providers and students about patient outcomes following brain injuries, and the topic of suicide will come up. The increasing rate of suicide among veterans also has drawn wide attention.
“Unfortunately, some of those exposures do end in suicide, so in all fairness to the challenges faced by this patient population, yes the discussion will come up,” MacDonald said.
“I’ll touch on some of the work we’re doing to understand when these tragedies happen, that we learn as much we can and try to better inform next-generation treatment targets, from the examination of postmortem brain tissue in those who passed from suicide and other exposures.”
MacDonald said the study involved military members initially evacuated to the Landstuhl Regional Medical Center in Germany, the main U.S. triage point for casualties. Between 2008 and 2013, she lived in Germany on and off as a study lead. She also does follow-up evaluations.
She said it’s only been in the past five to 10 years that people have heard more about connections between brain injury and mental health. Earlier studies typically looked at brain injury patients at one point in time.
This study has shown different trajectories over that longer period of time, she added. “Some people get better and stay better; some people aren’t doing so hot and then get better later; some people look like they’re doing great and then get worse.”
Using MRI technology in new ways is pushing the study’s brain injury research to another level.
In the future, the method could become a universal diagnostic tool and marker for changes happening in the brain. The imaging approach has shown brain abnormalities, or changes in the brain, among study participants that are consistent with what is known about brain injury, she said.
“The conventional imaging did not identify these brain changes, but new imaging did, and that these brain injuries were consistent with what we know about brain injury pathology and brain injury lesions,” MacDonald said.
“The evidence to date supports, and it’s informed by imaging, the hypothesis that there are underlying brain changes that are happening at point of injury that are interacting with the post-injury mental health symptoms. For many patients, those symptoms seem to be more severe than patients without head injuries.”
Researchers are examining how brain changes might be affecting a patient’s recovery. If a brain network or “wiring” is cut or injured, traditional mental health treatments might fall short, she said. With medication, for example, if the drug is“trying to hit a receptor, but those receptors no longer exist, the treatment’s not going to work.”
Many of the military study participants sought mental health support and completed treatment, but only a small percentage have found any resolution, she said. Researchers are just beginning to understand why.
“We’re starting to appreciate that there might be alternations in the brain anatomy, the brain networks, that are causing those mental health symptoms to be worse or exasperated, or more severe, in somebody who has had a head injury,” MacDonald said.
“Unfortunately some of the networks in our brain that are important for mood regulation, emotional control and extinguishing fearful or stressful memories can be injured.”
But the hope is eventually to have more focused treatment plans, while better recognizing symptoms, “so we’re catching it earlier.”
Over the years, MacDonald has listened to multiple stories from family members, asking about a veteran’s unusual behaviors. They might include irritability, rapid mood changes, angry outbursts, confusion, being easily irritated or annoyed, headaches and changes in sleep patterns.
Sometimes, the veterans say they can’t concentrate as well or can’t remember a list of items. It’s tough both for the veterans and their families.
“A lot of patients are struggling every day, and their families too, because they look the same or close to the same as when they deployed, but they’re acting very differently.”
But sometimes, the veterans she works with are simply relieved to understand some brain changes happened.
“I tell the story often of young woman I worked with,” she said. “We did this new imaging and we did find changes consistent with brain injury, a disconnect in a network. She had tried really hard to have rehabilitative therapy work for her, but she was struggling immensely.”
MacDonald told her about the imaging discoveries, while apologizing that she didn’t yet know of a treatment or cure. As they headed out the door, the woman called out to MacDonald and asked if she could hug her.
“She had tears in her eyes and said, ‘Thank you for showing me I’m not crazy,’” she said. “It didn’t matter to her that we didn’t have the treatments figured out, that we didn’t have the cure, just the knowledge meant the world to her.”
A larger body of research could broaden understanding, whether the brain injury happened in the military, in sports or from intimate partner violence, she said. With spikes in veteran mental health issues, along with incidents among civilians, “the more you look, the more you find,” she said.
“I will say it’s not just the military who has an increased frequency and severity of mental health symptoms following these mild traumatic injuries.
“We have to do these studies to understand this entire complex condition and then try to track it back to a single patient sitting in front of you. No two patients are alike and no two brain injuries are alike.”
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Monday, November 19, 2018

Health Service Utilization and State Costs Among Adults Aging With Early-Acquired Physical Disabilities in Medicaid Managed Care

And if you want to solve and prevent these massive costs from the leading cause of adult disability - namely stroke. Then you first stop the 5 causes of the neuronal cascade of death in the first week. After that you will have a much easier time getting stroke protocols to work to get you to 100% recovery. The answers are out there, we just need someone with enough brains and influence to create and follow a strategy for this solution. A Nobel Prize awaits. Isn't that enough incentive? Or is this all just too fucking hard for all these MDs and PhDs working on stroke? Not sorry about hurting your fee fees. Try recovering from a stroke with NO help from the medical establishment. 

Oops, I'm not playing by the polite rules of Dale Carnegie, 'How to Win Friends and Influence People'. 
Politeness will never solve anything in stroke.

 

Health Service Utilization and State Costs Among Adults Aging With Early-Acquired Physical Disabilities in Medicaid Managed Care

First Published November 15, 2018 Research Article
Objective: We evaluated the impact of Medicaid managed care (MMC) on health service use and state costs among adults with early-acquired physical disabilities.  
Method: Using claims data, we tracked utilization of the emergency department (ED), inpatient admissions, outpatient physician visits, and state expenditures on enrollees who transitioned to MMC (n = 881). The inverse propensity score weight and a difference-in-differences regression model were used to estimate the impact of MMC using their counterparts who remained in fee-for-service (n = 1,552) as the comparison group.  
Results: MMC reduced ED use by 3.2% points/month (p < .001). Relative to younger enrollees (age ⩽45 years), MMC reduced inpatient admissions of older enrollees (age ⩾46 years) by 3.3% points/month (p < .001), and state expenditures by US$839/month (p < .01).
Discussion: MMC could reduce the hospital service use of and state spending on enrollees with early-acquired physical disabilities. This impact may vary depending on the enrollees’ age.

Thursday, October 13, 2016

Democratizing Neurorehabilitation: How Accessible are Low-Cost Mobile-Gaming Technologies for Self-Rehabilitation of Arm Disability in Stroke?

Well shit, write up some protocols on use instead of articles in PLOSone. But that would be too difficult and hurt their fee-fees. 

Democratizing Neurorehabilitation: How Accessible are Low-Cost Mobile-Gaming Technologies for Self-Rehabilitation of Arm Disability in Stroke?


PLOS

x


Abstract

Motor-training software on tablets or smartphones (Apps) offer a low-cost, widely-available solution to supplement arm physiotherapy after stroke. We assessed the proportions of hemiplegic stroke patients who, with their plegic hand, could meaningfully engage with mobile-gaming devices using a range of standard control-methods, as well as by using a novel wireless grip-controller, adapted for neurodisability. We screened all newly-diagnosed hemiplegic stroke patients presenting to a stroke centre over 6 months. Subjects were compared on their ability to control a tablet or smartphone cursor using: finger-swipe, tap, joystick, screen-tilt, and an adapted handgrip. Cursor control was graded as: no movement (0); less than full-range movement (1); full-range movement (2); directed movement (3). In total, we screened 345 patients, of which 87 satisfied recruitment criteria and completed testing. The commonest reason for exclusion was cognitive impairment. Using conventional controls, the proportion of patients able to direct cursor movement was 38–48%; and to move it full-range was 55–67% (controller comparison: p>0.1). By comparison, handgrip enabled directed control in 75%, and full-range movement in 93% (controller comparison: p<0.001). This difference between controllers was most apparent amongst severely-disabled subjects, with 0% achieving directed or full-range control with conventional controls, compared to 58% and 83% achieving these two levels of movement, respectively, with handgrip. In conclusion, hand, or arm, training Apps played on conventional mobile devices are likely to be accessible only to mildly-disabled stroke patients. Technological adaptations such as grip-control can enable more severely affected subjects to engage with self-training software.

Saturday, July 23, 2016

Cannabis use and blood pressure levels: United States National Health and Nutrition Examination Survey, 2005–2012

You won't have to worry about this since your doctor will never prescribe marijuana for your stroke rehab. I however will get some. It doesn't specify if cannabis was smoked or eaten so the conclusions are useless.

My 13 reasons for marijuana use post-stroke. 


And if you do just ask your doctor what simple foods you need to eat to counteract this increase in blood pressure.

The intersection of these three sets will give lots of posts on foods that lower blood pressure.

119 posts on blood pressure.  26 posts on high blood pressure.   186 posts on diet.

I refuse to do the work your doctor should be doing and correlate all these posts. 

Your doctor had better know about all of them. Your doctor not knowing anything about blood pressure lowering foods is cause for calling the president of the hospital and asking why they are allowing such incompetence in their hospital. We have to start somewhere and get rid of all the dead wood in stroke.


Oops. Once again not following Dale Carnegie; 'How to Win Friends and Influence People'.

But I'm more concerned about getting stroke survivors recovered than worrying about the fee fees of the stroke medical establishment.

Cannabis use and blood pressure levels: United States National Health and Nutrition Examination Survey, 2005–2012

Journal of Hypertension, 07/15/2016
Alshaarawy O, et al. – The authors conduct this study investigating on cannabis use and BP levels utilizing the US National Health and Nutrition Examination Surveys 2005–2012 (n=12426). They exhibit the association between SBP and cannabis use among US adults.

Methods

  • Cannabis use was evaluated by computer-assisted self-interviews.
  • They investigated blood pressure by an average of up to four measurements taken during a single examination.
  • They used regression modeling to evaluate cannabis use and BP association.

Results

  • Currently active cannabis use was associated with increase in SBP (β=1.6; 95% confidence interval: 0.6, 2.7) in the age–sex-adjusted model.
  • Additional covariate adjustment did not affect the positive association. No association between cannabis use and DBP was detected.
Go to PubMed Go to Abstract Print Article Summary Cat 2 CME Report

Wednesday, June 8, 2016

Stroke Rehab Education Coming to Chicago

And I bet the presenters will not discuss the efficacy of their interventions because the conference organizers don't want to hurt their fee fees by making them actually work to prove presentation results.
You are fucking screwed forever as a stroke survivor until we get rid of this lazy mindset.
http://www.stroke.org/news-release/stroke-rehab-education-coming-chicago
The 2016 American Congress of Rehabilitation Medicine (ACRM) Annual Conference, Progress in Rehabilitation Research (PIRR) is coming to Chicago, Oct. 30 to Nov. 4 with a jam-packed program of evidence-based, educational content for the entire stroke rehabilitation team. Other conferences feature some neuro-rehabilitation content, but PIRR is the only event to feature six days of non-stop content dedicated to stroke rehabilitation.
The conference will feature 20+ symposiums for stroke and dozens of additional cross-cutting rehab topics throughout the three-day core conference. Among the renowned researchers and clinicians participating are Pamela W. Duncan, PhD, PT from Wake Forest Baptist Health; Anna Barrett, MD from the Kessler Institute of Rehabilitation; Mark D'Esposito, MD from the University of California, Berkeley and many others. Continuing education credits are available for 15 disciplines.
Those seeking in-depth training may choose between half-day, full-day and two-day Instructional Courses, Cognitive Rehabilitation Training or the Academy of Certified Brain Injury Specialists (ACBIS) training during the three-day pre-conference. Register by June 30 to receive 50 percent off.
Register now

Monday, April 25, 2016

A bi-articular model for scapular-humeral rhythm reconstruction through data from wearable sensors

With just the TINIEST BIT OF INITIATIVE any stroke clinician could run this same research using these sensors to come up with objective measurements on stroke muscular problems. And then create stroke protocols to fix those problems. This is so damned fucking easy, Why does it take a stroke addled survivor to even think of this ridiculously hard and difficult to implement research project? Do we have NO ONE in stroke that can rub two neurons together?  I should quit insulting our stroke medical professionals, it might hurt their fee fees. Oh well, I'm not running a popularity contest, I'm trying to solve stroke problems even if no one else is.
http://jneuroengrehab.biomedcentral.com/articles/10.1186/s12984-016-0149-2

  • Federico LorussiEmail author,
  • Nicola Carbonaro,
  • Danilo De Rossi and
  • Alessandro Tognetti
Journal of NeuroEngineering and Rehabilitation201613:40
DOI: 10.1186/s12984-016-0149-2
Received: 16 December 2015
Accepted: 14 April 2016
Published: 23 April 2016

Abstract

Background

Patient-specific performance assessment of arm movements in daily life activities is fundamental for neurological rehabilitation therapy. In most applications, the shoulder movement is simplified through a socket-ball joint, neglecting the movement of the scapular-thoracic complex. This may lead to significant errors. We propose an innovative bi-articular model of the human shoulder for estimating the position of the hand in relation to the sternum. The model takes into account both the scapular-toracic and gleno-humeral movements and their ratio governed by the scapular-humeral rhythm, fusing the information of inertial and textile-based strain sensors.

Method

To feed the reconstruction algorithm based on the bi-articular model, an ad-hoc sensing shirt was developed. The shirt was equipped with two inertial measurement units (IMUs) and an integrated textile strain sensor. We built the bi-articular model starting from the data obtained in two planar movements (arm abduction and flexion in the sagittal plane) and analysing the error between the reference data - measured through an optical reference system - and the socket-ball approximation of the shoulder. The 3D model was developed by extending the behaviour of the kinematic chain revealed in the planar trajectories through a parameter identification that takes into account the body structure of the subject.

Result

The bi-articular model was evaluated in five subjects in comparison with the optical reference system. The errors were computed in terms of distance between the reference position of the trochlea (end-effector) and the correspondent model estimation. The introduced method remarkably improved the estimation of the position of the trochlea (and consequently the estimation of the hand position during reaching activities) reducing position errors from 11.5 cm to 1.8 cm.

Conclusion

Thanks to the developed bi-articular model, we demonstrated a reliable estimation of the upper arm kinematics with a minimal sensing system suitable for daily life monitoring of recovery.

Wednesday, January 27, 2016

Mechanisms and Functional Significance of Stroke-Induced Neurogenesis

No point in you reading this because your doctor will already have applied everything in here to your stroke protocols.
Pages and pages of references supporting this that your doctor will also be conversant in. Don't bother asking any questions about points in here, that would be questioning your doctors' competence. You would hate to hurt their fee fees. 
 http://journal.frontiersin.org/article/10.3389/fnins.2015.00458/full?

  • GIGA-Neurosciences, University of Liege, C.H.U. Sart Tilman, Liege, Belgium
Stroke affects one in every six people worldwide, and is the leading cause of adult disability. After stroke, some limited spontaneous recovery occurs, the mechanisms of which remain largely unknown. Multiple, parallel approaches are being investigated to develop neuroprotective, reparative and regenerative strategies for the treatment of stroke. For years, clinical studies have tried to use exogenous cell therapy as a means of brain repair, with varying success. Since the rediscovery of adult neurogenesis and the identification of adult neural stem cells in the late nineties, one promising field of investigation is focused upon triggering and stimulating this self-repair system to replace the neurons lost following brain injury. For instance, it is has been demonstrated that the adult brain has the capacity to produce large numbers of new neurons in response to stroke. The purpose of this review is to provide an updated overview of stroke-induced adult neurogenesis, from a cellular and molecular perspective, to its impact on brain repair and functional recovery.

Introduction

Stroke is the second leading cause of death, the most common cause of adult-acquired disability and affects one in every six people worldwide (Moskowitz et al., 2010). The number of people who survive a stroke is increasing, and with an aging population, the incidence and prevalence of stroke are predicted to rise even more (Sun et al., 2012). Despite years of research, effective treatments remain elusive. Currently, the only proven therapy for acute ischemic stroke is systemic thrombolysis with recombinant tissue plasminogen activator (rtPA). To be effective, rtPA must be administered within a maximum of 4.5 h after the symptoms first start. This short timeframe and potential adverse effects have limited the use of rtPA to 3–5% of stroke patients (Ruan et al., 2015). Grafting stem cells represents a compelling alternative and offers both a wide array and an unlimited supply of cells. Indeed, the transplantation of neural stem cells (NSCs), mesenchymal stem cells (MSCs), embryonic stem cells (ESCs), or induced pluripotent stem cells (iPSCs) could be used to replace neuronal loss after stroke (Kalladka and Muir, 2014). However, exogenous stem cell therapy has both technical and ethical issues. For instance, cell survival and migration rely heavily on the timing and mode of delivery (Li et al., 2010; Darsalia et al., 2011). Moreover, surgical procedure and toxicity (as cancer induction) increase the complexity of transplanted cell therapies (Kawai et al., 2010; Ben-David and Benvenisty, 2011). Finally, some ethical issues may arise from the use of fetal/embryonic cells.
Despite the fact that the central nervous system (CNS) has a limited repair capacity (Nakagomi et al., 2011), some degree of spontaneous recovery from brain ischemia invariably occurs (Yu et al., 2014). This repair process involves neurogenesis, angiogenesis, and axonal sprouting and synaptogenesis. Here we concentrate on the events that are associated with the production of new neurons and not the mechanisms that involve the reorganization of connectivity among surviving neurons, which is reviewed elsewhere (Jones and Adkins, 2015).
Recent experimental findings have raised the possibility that functional improvement after stroke may be induced through neuronal replacement by endogenous NSCs. Indeed, the original dogma that no new neurons are formed after birth has been definitively overturned during the past few decades. The discovery of the thymidine analog bromodeoxyuridine (BrdU)—that incorporates into DNA in S-phase and can be detected by immunohistochemistry—has allowed researchers to conclusively demonstrate the generation of new neurons in the brain of all adult mammals including humans (Eriksson et al., 1998; Gage, 2000). This production of new neurons in the adult brain—so-called adult neurogenesis—takes place in areas called neurogenic niches. The subventricular zone (SVZ) of the lateral ventricle and the subgranular zone (SGZ) of the dentate gyrus (DG) are the two main neurogenic niches containing adult NSCs that proliferate, divide and differentiate into mature neurons. Recently, new evidence have highlighted that adult neurogenesis could also takes place in other brain areas, along the ventricular system, mostly in pathological conditions (Lin and Iacovitti, 2015).
The capacity to produce new neurons in the adult brain and the ability of the ischemia-injured adult brain to partially recover suggest a possible relationship between adult neurogenesis and stroke recovery. Indeed, many studies have shown an increase in cell proliferation in the rodent SVZ following ischemic injury (Thored et al., 2006), and evidence for stroke-induced neurogenesis in the human brain has also been reported (Jin et al., 2006). In addition, endogenous brain repair is not limited to neurogenic niches. Recent studies have shown that glial cells surrounding the infarct core can be reactivated following ischemia. Indeed, pericytes, oligodendrocyte precursors, and astrocytes are all able to differentiate into neurons following brain injury (Robel et al., 2011; Heinrich et al., 2014; Nakagomi et al., 2015; Torper et al., 2015). Moreover, surviving neurons may reorganize their connections in a manner that supports some degree of spontaneous improvement. Therefore, a promising field of investigation is focused on triggering and stimulating this self-repair system to replace dead neurons following an ischemic attack.


Wednesday, December 2, 2015

At what point does one stop being diplomatic and adopt a rebellious stance?

I never even attempted a diplomatic stance since none of the major stroke orgs., ASA, NSA, WSO had ANY outreach to survivors. With absolutely no survivor welcome at all they need to be destroyed and rebuilt with survivor needs in mind. As a friend once told me this goes against the Dale Carnegie book, 'How to Win Friends and Influence People'. I don't give a shit about stroke medical leadership  fee fees. They have had decades to do something right for survivors and have completely failed. I look forward to the aggrieved wailings of stroke leaders, I will respond in kind.