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 cerebral perfusion. Show all posts
Showing posts with label cerebral perfusion. Show all posts

Thursday, July 25, 2024

Cerebral hemodynamic response to upright position in acute ischemic stroke

 Didn't your competent? doctor start working on cerebral perfusion/head of bed positioning a long time ago? NO? So you DON'T HAVE A FUNCTIONING STROKE DOCTOR, do you?

Cerebral hemodynamic response to upright position in acute ischemic stroke

  • 1Stroke Theme, Florey Institute of Neuroscience and Mental Health, University of Melbourne, Heidelberg, VIC, Australia
  • 2Neurology Department, Austin Health, Melbourne, VIC, Australia
  • 3Allied Health, St Vincent's Hospital, Melbourne, VIC, Australia
  • 4John Hunter Hospital, University of Newcastle, Newcastle, NSW, Australia
  • 5Department of Medicine (Austin Health) and Melbourne Brain Centre at Royal Melbourne Hospital, Melbourne Medical School, University of Melbourne, Melbourne, VIC, Australia

Introduction: Concerns exist that a potential mechanism for harm from upright activity (sitting, standing, and walking) early after an acute ischaemic stroke could be the reduction of cerebral perfusion during this critical phase. We aimed to estimate the effects of upright positions (sitting and standing) on cerebral hemodynamics within 48 h and later, 3–7 days post-stroke, in patients with strokes with and without occlusive disease and in controls.

Methods: We investigated MCAv using transcranial Doppler in 0° head position, then at 30°, 70°, 90° sitting, and 90° standing, at <48 h post-stroke, and later at 3–7 days post-stroke. Mixed-effect linear regression modeling was used to estimate differences in MCAv between the 0° and other positions and to compare MCAv changes across groups.

Results: A total of 42 stroke participants (anterior and posterior circulation) (13 with occlusive disease, 29 without) and 22 controls were recruited. Affected hemisphere MCAv decreased in strokes with occlusive disease (<48 h post-stroke): from 0° to 90° sitting (−9.9 cm/s, 95% CI[−16.4, −3.4]) and from 0° to 90° standing (−7.1 cm/s, 95%CI[−14.3, −0.01]). Affected hemisphere MCAv also decreased in strokes without occlusive disease: from 0° to 90° sitting (−3.3 cm/s, 95%CI[−5.6, −1.1]) and from 0° to 90° standing (−3.6 cm/s, 95%CI [−5.9, −1.3]) (p-value interaction stroke with vs. without occlusive disease = 0.07). A decrease in MCAv when upright was also observed in controls: from 0° to 90° sitting (−3.8 cm/s, 95%CI[−6.0, −1.63]) and from 0° to 90° standing (−3 cm/s, 95%CI[−5.2, −0.81]) (p-value interaction stroke vs. controls = 0.85). Subgroup analysis of anterior circulation stroke showed similar patterns of change in MCAv in the affected hemisphere, with a significant interaction between those with occlusive disease (n = 11) and those without (n = 26) (p = 0.02). Changes in MCAv from 0° to upright at <48 h post-stroke were similar to 3–7 days. No association between changes in MCAv at <48 h and the 30-day modified Rankin Scale was found.

Discussion: Moving to more upright positions <2 days post-stroke does reduce MCAv in the affected hemisphere; however, these changes were not significantly different for stroke participants (anterior and posterior circulation) with and without occlusive disease, nor for controls. The decrease in MCAv in anterior circulation stroke with occlusive disease significantly differed from without occlusive disease. However, the sample size was small, and more research is warranted to confirm these findings.

1 Introduction

The effects of upright positions (sitting and standing) on cerebral hemodynamics in acute ischemic stroke are not well understood. In theory, lying flat could increase cerebral perfusion, and upright activities could worsen perfusion, further damaging viable tissue. However, there is not enough evidence to support these statements and, therefore, to inform the development of head positioning protocols early post-stroke (1). In our recent systematic review of head positioning in ischemic stroke, which incorporated varied imaging techniques, cerebral blood flow (CBF) parameters were greater when lying flat compared to elevated head positions in most studies (2). However, most studies were underpowered, the reported changes were insignificant, and they did not assess longer-term outcomes. Our review also highlighted the lack of studies that examined changes in CBF parameters in upright positions in acute stroke. Sitting was assessed in only three studies: two within a week of stroke (3, 4) and one many years post-stroke (5). Standing was only assessed years post-stroke (5). To date, no studies have included all the postural changes from lying flat, head-up tilt, sitting, and standing to examine changes in CBF parameters in people with stroke compared to controls.

The international AVERT trial, which showed that stroke patients (ischemic and hemorrhagic) treated with very early, intensive, upright mobilization started < 24 h (VEM) after stroke had worse 3-month outcomes, raised concerns about the possible harms of early upright activity (6). A potential mechanism for harm in those with ischemic stroke is that VEM-associated upright activity (sitting, standing, and walking) worsens cerebral perfusion within penumbral tissue. A number of potential mechanisms may contribute to reduced cerebral perfusion during early upright activity. First, gravitational forces may act and lead to orthostatic reductions in cerebral perfusion as the head rises above the heart. While these changes are immediately controlled by cerebral autoregulation in healthy individuals, (7, 8) cerebral autoregulation is commonly impaired in acute stroke (911) and in people with occlusive disease (12, 13). Therefore, in upright postures, a defective cerebral autoregulation system may be unable to maintain sufficient blood flow to the ischaemic tissue, potentially promoting further damage. Second, occlusive disease, e.g., large vessel occlusion or severe arterial stenosis, often present in people with acute ischemic stroke, could hinder CBF downstream and further reduce CBF to the ischaemic penumbra. This could happen due to a reduction in the arterial lumen caused by the presence of a thrombus or atherosclerotic plaque in a large vessel supplying the affected ischaemic area. Moreover, cerebral autoregulation is known to be more affected in people with these conditions (1214). Unfortunately, occlusive disease status was not recorded in AVERT, nor were there studies in our review examining CBF in upright positions in this population (2). Therefore, the specific effects of early upright activity on those with and without occlusive disease are unknown.

We aimed to investigate the effects of changes in head position from lying flat (0°) to 30°, 70°, 90° sitting, and 90° standing on middle cerebral artery mean velocity (MCAv) using transcranial Doppler (TCD) in people with ischemic stroke < 48 h of onset, with or without occlusive disease, and in controls. Our primary hypothesis was that a reduction in MCAv from lying flat (0°) to upright positions (sitting or standing) on the affected hemisphere would be greater in stroke participants with occlusive disease than those without. The secondary aim was to investigate whether changes in MCAv from lying flat (0°) to upright positions in the affected hemisphere in patients with ischaemic stroke would differ from those in the unaffected hemisphere and controls. We hypothesized that there would be a greater reduction in MCAv at upright positions in the affected hemisphere compared to the unaffected hemisphere in patients with stroke, and these changes would also be greater compared to controls. We also aimed to investigate whether changes in MCAv from 0° to upright observed < 48 h of stroke modified over time (comparing to 3–7 days post-stroke). Given the limited data on the relationship between early response to upright positions and later functional outcome, we also explored the association between changes in MCAv from lying flat (0°) to upright in stroke participants < 48 h and 30-day functional outcome (modified Rankin Scale, mRS). Finally, we described how physiological measures [systolic blood pressure (BP), diastolic BP, heart rate (HR), and oxygen saturation] changed with head positions.

More at link.

Tuesday, October 12, 2021

Automated CT perfusion imaging for acute ischemic stroke Pearls and pitfalls for real-world use

You'll want your ER doctors to have an understanding of this.

Automated CT perfusion imaging for acute ischemic stroke: Pearls and pitfalls for real-world use

Achala Vagal, Max Wintermark, Kambiz Nael, Andrew Bivard, Mark Parsons, Aaron W. Grossman, Pooja Khatri

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Abstract

Recent positive trials have thrust acute cerebral perfusion imaging into the routine evaluation of acute ischemic stroke. Updated guidelines state that in patients with anterior circulation large vessel occlusions presenting beyond 6 hours from time last known well, advanced imaging selection including perfusion-based selection is necessary. Centers that receive patients with acute stroke must now have the capability to perform and interpret CT or magnetic resonance perfusion imaging or provide rapid transfer to centers with the capability of selecting patients for a highly impactful endovascular therapy, particularly in delayed time windows. Many stroke centers are quickly incorporating the use of automated perfusion processing software to interpret perfusion raw data. As CT perfusion (CTP) is being assimilated in real-world clinical practice, it is essential to understand the basics of perfusion acquisition, quantification, and interpretation. It is equally important to recognize the common technical and clinical diagnostic challenges of automated CTP including ischemic core and penumbral misclassifications that could result in underestimation or overestimation of the core and penumbra volumes. This review highlights the pitfalls of automated CTP along with practical pearls to address the common challenges. This is particularly tailored to aid the acute stroke clinician who must interpret automated perfusion studies in an emergency setting to make time-dependent treatment decisions for patients with acute ischemic stroke.


 

 

Sunday, July 18, 2021

Dose Escalation and Safety of Capsaicin for Cerebral Perfusion Augmentation

 I think this means you're getting higher blood velocity in your brain. Sounds like a winner to get more oxygen to your brain and maybe save a few neurons from dying. But since this was tested in healthy volunteers your doctor and hospital have the responsibility to initiate research in this on stroke subjects with the objective being to see how many neurons can be saved. 

No initiation of research you need to fire the board of directors, they are not setting correct goals for the hospital and staff.  But since this is not yet proven useful for stroke survivors don't start bringing in ghost peppers(Scoville of 855,000 to 1,041,427). I don't know how to translate Scoville units to μMol(A micromole is a unit of measure defined as 10-6 (one-millionth) of a mole. The symbol for micromole is commonly umol or μmol.)

Dose Escalation and Safety of Capsaicin for Cerebral Perfusion Augmentation

 
Originally publishedhttps://doi.org/10.1161/STROKEAHA.120.032773Stroke. 2021;52:2203–2209

Background and Purpose:

Sphenopalatine ganglion (SPG) electrical stimulation has been studied in the setting of acute ischemic stroke to enhance collateral flow. Capsaicin poses an alternative to chemically stimulate the sphenopalatine ganglion. Therefore, the objective of this study was to determine the safety and effect of increasing doses of capsaicin upon serial transcranial Doppler markers of cerebral blood flow.

Methods:

We performed serial transcranial Doppler testing in 30 healthy volunteers divided into 5 equal groups. Capsaicin doses ranged from 33 to 165 μMol. We recorded peak systolic and end-diastolic velocities in the middle cerebral artery, arterial pressure, and perceived pungency in 5-minute intervals up to 20 minutes. We then calculated the mean velocity, the pulsatility index, and the cerebral blood flow index.

Results:

The participants’ median age was 21 years (range, 5 years); all reported consumption of capsaicin in their diets. After and during the study, none reported side effects. Perceived pungency peaked at 5 minutes, and by the 20-minute mark, none perceived any pungency. All the tested doses produced the same pattern, consisting of augmentation of the middle cerebral artery mean velocity with the pulsatility index’s diminution. The effects peaked between the 5- and the 10-minute measurements and then returned to basal levels except for the 66-μMol doses, which produced a sustained effect. We found no correlation between perceived pungency and dose, but the middle cerebral artery mean velocity was strongly correlated with the dose administered.

Conclusions:

This study provides evidence supporting the safety and tolerability of oral capsaicin in a population of healthy volunteers. Capsaicin appears to produce effects similar to those of sphenopalatine ganglion electrical stimulation.

Registration:

URL: https://www.clinicaltrials.gov; Unique identifier: NCT04545892.

Sunday, April 18, 2021

Dynamics of cerebral perfusion and oxygenation parameters following endovascular treatment of acute ischemic stroke

But we still have NO PROTOCOL on how to deliver oxygen immediately post stroke to save neurons.

If your doctor is doing nothing about oxygen delivery to the brain s/he is letting more neurons die than should. ARE YOU OK WITH THAT?

I'm going to be demanding the following from my doctors but since I'm not medically trained you can't listen to me. But does your doctor have ANYTHING AT ALL? 

Possible solutions: Obviously not vetted coming from me. Don't do them.

You can look at the years these were reported on and tell how long your hospital has been incompetent.

 

How to Improve Your Brain Function with An Oxygen Concentrator April 2018 

Or is it more important to increase the loading ability of red blood cells to carry more oxygen? 

Like this?

University of Glasgow Study Demonstrates the Ability of Oxycyte® to Supply Oxygen to Critical Penumbral Tissue in Acute Ischemic Stroke  August 2012

Or like this?

chronic cannabis users have higher cerebral blood flow and extract more oxygen from brain blood flow than nonusers. August 2017   

Vinpocetine increases cerebral blood flow and oxygenation in stroke patients: a near infrared spectroscopy and transcranial Doppler study May 2015 

Or this? having red blood cells release more oxygen.

Methylene blue shows promise for improving short-term memory


HOW FUCKING LONG WILL YOU LET YOUR INCOMPETENT STROKE HOSPITAL STILL TREAT PATIENTS LIKE NOTHING NEW HAS OCCURRED IN THE PAST 50 YEARS?

The latest here:

 

Dynamics of cerebral perfusion and oxygenation parameters following endovascular treatment of acute ischemic stroke

  1. Gianluca Brugnara1,
  2. Christian Herweh1,
  3. Ulf Neuberger1,
  4. Mikkel Bo Hansen2,
  5. Christian Ulfert1,
  6. Mustafa Ahmed Mahmutoglu1,
  7. Martha Foltyn1,
  8. Simon Nagel3,
  9. Silvia Schönenberger3,
  10. Sabine Heiland1,
  11. Peter Arthur Ringleb3,
  12. Martin Bendszus1,
  13. Markus Möhlenbruch1,
  14. Johannes Alex Rolf Pfaff1,
  15. Philipp Vollmuth1
  1. Correspondence to Dr Philipp Vollmuth, Department of Neuroradiology, University Hospital Heidelberg, Heidelberg 69120, Baden-Württemberg, Germany; philipp.vollmuth@med.uni-heidelberg.de

Abstract

Background We studied the effects of endovascular treatment (EVT) and the impact of the extent of recanalization on cerebral perfusion and oxygenation parameters in patients with acute ischemic stroke (AIS) and large vessel occlusion (LVO).

Methods Forty-seven patients with anterior LVO underwent computed tomography perfusion (CTP) before and immediately after EVT. The entire ischemic region (Tmax >6 s) was segmented before intervention, and tissue perfusion (time-to-maximum (Tmax), time-to-peak (TTP), mean transit time (MTT), cerebral blood volume (CBV), cerebral blood flow (CBF)) and oxygenation (coefficientof variation (COV), capillary transit time heterogeneity (CTH), metabolic rate of oxygen (CMRO2), oxygen extraction fraction (OEF)) parameters were quantified from the segmented area at baseline and the corresponding area immediately after intervention, as well as within the ischemic core and penumbra. The impact of the extent of recanalization (modified Treatment in Cerebral Infarction (mTICI)) on CTP parameters was assessed with the Wilcoxon test and Pearson’s correlation coefficients.

Results The Tmax, MTT, OEF and CTH values immediately after EVT were lower in patients with complete (as compared with incomplete) recanalization, whereas CBF and COV values were higher (P<0.05) and no differences were found in other parameters. The ischemic penumbra immediately after EVT was lower in patients with complete recanalization as compared with those with incomplete recanalization (P=0.002), whereas no difference was found for the ischemic core (P=0.12). Specifically, higher mTICI scores were associated with a greater reduction of ischemic penumbra volumes (R²=−0.48 (95% CI –0.67 to –0.22), P=0.001) but not of ischemic core volumes (P=0.098).

Conclusions Our study demonstrates that the ischemic penumbra is the key target of successful EVT in patients with AIS and largely determines its efficacy on a tissue level. Furthermore, we confirm the validity of the mTICI score as a surrogate parameter of interventional success on a tissue perfusion level.

Wednesday, October 2, 2019

Study may lead to new approaches to treating reading deficits after stroke

A half-assed study since they did NOTHING  to determine the best way to increase cerebral perfusion.  Survivors don't care about biomarkers or trajectory, they are useless in creating recovery.

Study may lead to new approaches to treating reading deficits after stroke

A team of New Jersey stroke researchers has linked recovery of reading and language competence with cerebral blood flow in the left reading network. Their findings may contribute to new approaches to identifying and treating reading deficits after stroke. The open access article, "Cerebral perfusion of the left reading network predicts recovery of reading in subacute to chronic stroke" (doi: https://doi.org/10.1002/hbm.24773) was epublished on August 26, 2019 in Human Brain Mapping. The authors are Olga Boukrina, PhD, and A.M. Barrett, MD, of Kessler Foundation, and William Graves, PhD, of Rutgers, the State University of New Jersey.
Despite the fundamental role of reading ability in everyday living, little research has been conducted on patterns of reading recovery after stroke, or the development of interventions to improve reading outcomes. In this study of left-brain stroke, a team of New Jersey scientists examined patterns of cerebral perfusion bilaterally, including left and right networks of brain areas important for healthy reading, the area surrounding the stroke lesion, and the corresponding contralateral area.
They enrolled 31 participants during inpatient rehabilitation, within 5 weeks of left-sided stroke. All underwent functional magnetic resonance imaging, psychometric testing, neurological examination and tests for phonological, orthographic and semantic impairments. Fifteen participants had follow-up studies at 3 months post stroke. Analysis of data from the subacute and chronic phases showed that recovery of reading and language competence correlated with increases in cerebral blood flow in the left reading network.
Our findings support the utility of cerebral perfusion as a biomarker for recovery after stroke and indicate that early reperfusion of the left reading network is essential to reading performance. We also found that increased perfusion of the right reading network correlated with worse reading performance, which challenges the belief that this increased activity is a necessary transition in the recovery process.
Olga Boukrina, PhD, Research Scientist at the Center for Stroke Rehabilitation Research at Kessler Foundation
The team plans future studies of larger populations, with inclusion of additional time points in order to better define the trajectory of recovery after stroke. "Reading deficits hinder the ability to participate fully in rehabilitation, to return to work, and function effectively at home and in the community," Dr. Boukrina remarked. "Pursuing this avenue of research will help us discover ways to restore function and improve outcomes for individuals recovering from left-brain stroke."
Source:
Journal reference:
Boukrina, O. et al. (2019) Cerebral perfusion of the left reading network predicts recovery of reading in subacute to chronic stroke. Human Brain Mapping. doi.org/10.1002/hbm.24773