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 positioning. Show all posts
Showing posts with label positioning. Show all posts

Thursday, October 16, 2025

Best Evidence Summary on Positioning Management in Stroke Patients

Useless! You didn't even write a protocol on this! 

Other much earlier research here:
  • positioning (2 posts to November 2011)
  •  Best Evidence Summary on Positioning Management in Stroke Patients


    Yuanfang  XiongYuanfang Xiong1,2Mingxia  PanMingxia Pan1Wenting  ChaiWenting Chai1Huijuan  LeiHuijuan Lei3Huan  PengHuan Peng1Ziping  HuZiping Hu4Na  LiNa Li1Yongqi  LiangYongqi Liang2*Lingyu  KuangLingyu Kuang2*Hanjiao  LiuHanjiao Liu1,2*
    • 1Fujian University of Traditional Chinese Medicine, Fuzhou, China
    • 2Shenzhen Hospital of Integrated Traditional Chinese and Western Medicine, Shenzhen, China
    • 3Guangdong Pharmaceutical University, Guangzhou, China
    • 4Guangzhou University of Chinese Medicine School of Nursing, Guangzhou, China

    • Background: 

    • Stroke is the third leading cause of death in the world, characterized by high morbidity, high mortality, high disability and high recurrence rates, which brings a heavy burden to families and society. The implementation of positioning management for stroke patients can effectively improve their clinical outcomes and quality of life; however, the current evidence related to stroke is fragmented, which is not conducive to its utilization by clinical healthcare professionals. 

    • Objective: 

    • A systematic retrieval, critical appraisal, and synthesis of evidence on positioning management strategies for stroke patients were conducted to establish an evidence-based foundation for clinical decision-making in neurological rehabilitation. Methods: Based on the "6S" evidence resource pyramid, a top-down search strategy was employed, searching relevant databases and guideline websites ,including the Scottish Intercollegiate Guidelines Network, National Institute of Health and Care Excellencethe, American Heart Association, Cochrane Library, Embase, PubMed, Web of Science, CINAHL, CNKl, VIP, the WanFang database, China Biology Medicine, UpToDate, Chinese Medical Association, the Yi Maitong Guidelines Network, Dingxiangyuan.The search period covered February 2015 to February 2025. Two reviewers independently screened and critically assessed the literature, and then extracted and synthesized the evidence by grading it according to the Joanna BriggsInstitute Centre for Evidence-Based Health Care Evidence Pre-grading System, Australia. Results: A total of 9605 publications were retrieved, resulting in the inclusion of 12 publications, including 9 clinical guidelines, 1 clinical decision support tool, 1 systematic review, and 1 expert consensuses. The evidence was synthesized into 7 thematic areas: team composition, comprehensive assessment, head-of-bed elevation angle, body positioning Strategies , early mobilization, assistive devices, and clinical considerations. resulting in 37 evidence-based practice recommendations.(NOT PROTOCOLS!)

    • Conclusion: 

    • This study summarizes the best evidence for positional management of stroke patients, which provides an evidence-based basis for standardizing stroke positional management. However, the best evidence should be used in an individualized manner with comprehensive consideration of the actual clinical situation when the evidence is applied in order to improve quality of life of stroke patients. In the future, it should also be combined with multi-sample and multi-center studies to validate its effect.

    Monday, May 28, 2012

    HOBOE (Head-of-Bed Optimization of Elevation) Study: association of higher angle with reduced cerebral blood flow velocity in acute ischemic stroke.

    You can compare this one to a previous post.
    current:
    http://feedproxy.google.com/~r/nih/bxxu/~3/4OYCBnhlFjU/display.cgi
    Cerebral autoregulation can be impaired after ischemic stroke, with potential adverse effects on cerebral blood flow during early rehabilitation.The objective of this study was to assess changes in cerebral blood flow velocity with orthostatic variation at 24 hours after stroke.This investigation was an observational study comparing mean flow velocities (MFVs) at 30, 15, and 0 degrees of elevation of the head of the bed (HOB).Eight participants underwent bilateral middle cerebral artery (MCA) transcranial Doppler monitoring during orthostatic variation at 24 hours after ischemic stroke. Computed tomography angiography separated participants into recanalized (artery completely reopened) and incompletely recanalized groups. Friedman tests were used to determine MFVs at the various HOB angles. Mann-Whitney U tests were used to compare the change in MFV (from 30� to 0�) between groups and between hemispheres within groups.For stroke-affected MCAs in the incompletely recanalized group, MFVs differed at the various HOB angles (30�: median MFV=51.5 cm/s, interquartile range [IQR]=33.0 to 103.8; 15�: median MFV=55.5 cm/s, IQR=34.0 to 117.5; 0�: median MFV=85.0 cm/s, IQR=58.8 to 127.0); there were no significant differences for other MCAs. For stroke-affected MCAs in the incompletely recanalized group, MFVs increased with a change in the HOB angle from 30 degrees to 0 degrees by a median of 26.0 cm/s (IQR=21.3 to 35.3); there were no significant changes in the recanalized group (-3.5 cm/s, IQR=-12.3 to 0.8). The changes in MFV with a change in the HOB angle from 30 degrees to 0 degrees differed between hemispheres in the incompletely recanalized group but not in the recanalized group.Generalizability was limited by sample size.The incompletely recanalized group showed changes in MFVs at various HOB angles, suggesting that cerebral blood flow in this group may be sensitive to orthostatic variation, whereas the recanalized group maintained stable blood flow velocities.

    Previous:
     http://oc1dean.blogspot.com/2011/11/influence-of-positioning-upon-cerebral.html

    Saturday, November 5, 2011

    The influence of positioning upon cerebral oxygenation after acute stroke: a pilot study

    So who has followed up on this to see how best to position a patient after a stroke? Or does it not matter because we should first be figuring out how to open the capillaries that are closed by pericytes?
    http://ageing.oxfordjournals.org/content/37/5/581.full
    Passive postural changes may have an effect on a number of physiological parameters after stroke [1]. For example, standing, sitting or even elevating the head after stroke might reduce cerebral blood flow due to poor collateral circulation and an inability to regulate and augment cerebral blood flow in ischaemic regions of the brain [2–5]. Optimal positioning for patients in the acute stage after stroke is still unknown [6–8]. Variation in clinical practice is evident in the literature [5–9] and has been observed [10]. This variation could be because of the paucity of experimental findings to inform a scientific rationale for positioning early after stroke. For example, traditionally, people who have suffered a large hemispheric stroke have been managed with head elevation between 30° and 45° [5], a practice generalised from clinical experience with head trauma patients despite differences in pathophysiology [11].
    There is some experimental evidence that positional change may alter cerebral haemodynamics after stroke [12, 13]; but, there is disagreement on how this is changed early after the ictus [12–15]. Moreover, the natural history of autoregulation following stroke is unclear [16]. At present, there is a paucity of evidence to support or refute the possibility that in some people the vulnerable ischaemic penumbra might be at risk from a reduction in cerebral blood flow mediated through positional changes after stroke [1].
    To be relevant clinically, cerebral oxygenation needs to be measured in relation to changes in posture. It also needs to be measured in real time at the bedside to enable appropriate clinical decisions about positioning. The relatively new technology of near infrared spectroscopy (NIRS), a minimally invasive technique, offers the possibility of making such measurements [17]. The aim of this pilot study is to explore whether changes in position, involving different placements of the head and upper body in relation to gravity, in the first week after a middle cerebral artery cortical ischaemic stroke produce changes in cerebral oxygenation in the region of the arterial territory.

    Methods

    A replicated single case study design was used with the phase sequence ABACA (details in procedure section below). The study was approved by the Local Research Ethics Committee and participants provided either written informed consent or, if that was not possible, assent was provided by their next-of-kin.
    Participants were adults who had suffered a middle cerebral artery cortical ischaemic stroke, confirmed by computer tomography (CT) no more than 7 days prior to testing. Exclusion criteria were: a previous stroke in the same division of the ipsilesional medial cerebral artery (MCA) territory; critical illness (peripheral oxygen saturations <90% on air, pulse >100 beats per min, systolic BP <90 mmHg, Glasgow Coma Score <10); inability to follow one-stage command; and, inability to sit upright on the edge of a bed with support from one person.
    Participants were seated in a multi-position chair (see instrumentation below) in a quiet room adjacent to the acute stroke unit. Two optodes were placed bihemispherically on their scalp with a 4 or 5 cm distance between the receiving and emitting probes over each hemisphere. Positional accuracy of the optodes was achieved through superficial scalp marking over the ischaemic lesion using laser guidance at CT scanning and mirrored over the opposite hemisphere. An electronic topical recorder was used to record peripheral oxygen saturations, pulse and blood pressure at 2-min intervals. This ensured systematic haemodynamic changes were demonstrated independently of cerebral monitoring. Each participant then completed the standardised five-phase posture sequence designed to reproduce positions often used during the first week after stroke:
    • A phase—supine lying.
    • B phase −45° back-rest/seat with legs raised up straight as if lying propped up in bed.
    • A phase—supine lying.
    • C phase—sitting upright with hips, knees and ankles at 90° as if sitting in a chair.
    • A phase—supine lying.
    After an initialisation phase of 15 min supine, each postural challenge lasted up to15 min depending upon subjects' comfort in the position.
    A two-channel ‘NIRO 300’ (Hamamatsu Photonics K.K. Japan) was used to record data on cerebral oxygenation at 2 Hz. The ‘NIRO 300’ produces infra-red light via an emitting probe which directs the photons perpendicular to the tissue surface. A receiving probe detects the incident and transmitted light intensities from the tissue. Inbuilt computational software utilising algorithms generated from the modified Beer–Lambert law display and record relative changes in the concentration of oxygenated haemoglobin (Δ[HbO2]), deoxygenated haemoglobin (Δ[Hb]) and oxidised cytochrome oxidase (Δ[CtOx] ) over the period of study. Using the technique of spatially resolved spectroscopy (SPS), a measure of absolute tissue oxygen saturation, the tissue oxygenation index (TOI) can be generated. TOI is the ratio of oxygenated ([HbO2]) to total tissue haemoglobin concentrations ([HbT]) [17].
    The multi-position chair used for testing had an adjustable back- and leg-rest enabling any position between lying supine and sitting with hips, knees and ankles at 90°. Position was controlled by the researcher through a hand-held electronic device.
    The descriptive data collected for participants were: age, gender and the National Institute of Health Stroke Scale (NIHSS) [18].
    The primary outcome was bihemispheric NIRS monitored TOI (i.e. the ratio of oxygenated ([HbO2]) to total tissue HbT.
    The probability of serial dependency in 1-min sets of data, collected immediately before and after each posture change, was tested using the autocorrelation coefficient and Bartlett's test. All data sets were significantly autocorrelated-r > 0.183, range 0.285–0.991. Statistical comparison of phases was therefore invalid and data were plotted and then interpreted by visual inspection for trend and level.

    Results

    Seven people who met the study criteria were included. In summary, their mean age was 70.71 years (range 58–81 years); five were male and the median time for measurement after stroke was 5 days (range 4–7). Subject characteristics are presented in Appendix 1 in the supplementary data on the journal's website. Two patients (subjects 2 and 3) had their anti-hypertensive medication continued after stroke onset and one patient (subject 2) had occlusion of the ipsilateral internal carotid artery. One patient (subject 2) exhibited orthostatic hypotension (defined as a drop in systolic blood pressure ≥20 mmHg) on postural challenges. There were no changes noted in heart rate or oxygen saturations.
    Visual inspection of the plotted data indicated that six of the seven patients (subjects 1, 2, 3, 5, 6, 7) demonstrated changes in TOI between supine and sitting up positions. In these patients, the pattern displayed a maximum value of TOI in the supine position and a reduction of TOI on sitting up in the affected middle cerebral artery territory (Figures 1 and 2). There were also similar changes in TOI observed in the contra-lateral lobe (subjects 1, 2, 3, 6, 7); but these were less marked. In one patient (subject 5), TOI was maximal in the upright position and reduced in the supine position in the contra-lateral lobe only.