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 red light therapy. Show all posts
Showing posts with label red light therapy. Show all posts

Saturday, January 11, 2025

Red Light Therapy May Reduce Deadly Blood Clots

 What does your competent? doctor think of using this for cryptogenic strokes?

Red Light Therapy May Reduce Deadly Blood Clots

Summary: Exposure to long-wavelength red light significantly reduced blood clot formation in both mice and human studies. Red light was associated with lower inflammation, reduced immune system activation, and fewer clot-promoting mechanisms, such as neutrophil extracellular traps (NETs) and platelet activation.

Unlike blue or white light, red light influenced clotting through optic pathways, suggesting its effects are mediated by neural mechanisms rather than direct blood exposure. These findings offer promising implications for reducing risks of heart attacks, strokes, and other clot-related conditions, particularly in high-risk groups like cancer patients.

Researchers are developing red-light-based interventions, such as goggles, to explore potential therapeutic applications. If verified through clinical trials, this approach could revolutionize clot prevention and save millions of lives.

Key Facts:

  • Clot Reduction: Mice exposed to red light had five times fewer blood clots than those exposed to blue or white light.
  • Mechanism: Red light reduced inflammation and platelet activation, key drivers of clot formation.
  • Human Connection: Cancer patients with blue light-filtering lenses also showed lower blood clot risks.

Source: University of Pittsburgh

Humans and mice exposed to long-wavelength red light had lower rates of blood clots that can cause heart attacks, lung damage and strokes, according to research led by University of Pittsburgh School of Medicine and UPMC surgeon-scientists and published today in the Journal of Thrombosis and Haemostasis.

The findings, which need to be verified through clinical trials, have the potential to reduce blood clots in veins and arteries, which are leading causes of preventable death worldwide. 

This shows a woman laying under a red light.
The team observed that red light exposure is associated with less inflammation and activation of the immune system. Credit: Neuroscience News

“The light we’re exposed to can change our biological processes and change our health,” said lead author Elizabeth Andraska, M.D., assistant professor of surgery in Pitt’s Trauma and Transfusion Medicine Research Center and vascular surgery resident at UPMC. “Our findings could lead to a relatively inexpensive therapy that would benefit millions of people.”

Scientists have long connected light exposure to health outcomes. The rising and setting of the sun underlies metabolism, hormone secretion, even the flow of blood, and heart attacks and stroke are more likely to happen in the morning hours than at night. Andraska and her colleagues wondered if light could have an impact on the blood clots that lead to these conditions.

To test this idea, the team exposed mice to 12 hours of either red, blue or white light, followed by 12 hours of darkness, in a 72-hour cycle. They then looked for differences in blood clots between the groups.

The mice exposed to red light had nearly five times fewer clots than the mice exposed to blue or white light. Activity, sleep, eating, weight and body temperature remained the same between the groups.

The team also analyzed existing data on more than 10,000 patients who had cataract surgery and received either conventional lenses that transmit the entire visible spectrum of light, or blue light-filtering lenses, which transmit about 50% less blue light.

They discovered that cancer patients who received blue light-filtering lenses had lower risk of blood clots compared to their counterparts with conventional lenses. This is especially notable because cancer patients have nine times the risk of blood clots of non-cancer patients.

“These results are unraveling a fascinating mystery about how the light to which we’re exposed on a daily basis influences our body’s response to injury,” said senior author Matthew Neal, M.D., professor of surgery, Watson Fund in Surgery Chair and co-director of the Trauma and Transfusion Medicine Research Center at Pitt, and trauma surgeon at UPMC.

“Our next steps are to figure out why, biologically, this is happening, and to test if exposing people at high risk for blood clots to more red light lowers that risk. Getting to the bottom of our discovery has the potential to massively reduce the number of deaths and disabilities caused by blood clots worldwide.”

The recently published study indicates that the optic pathway is key – light wavelength didn’t have any impact on blind mice, and shining light directly on blood also didn’t cause a change in clotting.

The team observed that red light exposure is associated with less inflammation and activation of the immune system. For example, red light-exposed mice had fewer neutrophil extracellular traps – aptly abbreviated as “NETs” – which are web-like structures made by immune cells to trap invading microorganisms. They also trap platelets, which can lead to clots.

The mice exposed to red light also had increased fatty acid production, which reduces platelet activation. Since platelets are essential to forming clots, this naturally leads to less clot formation.

Understanding how the red light is triggering changes that lower clotting risk could also put scientists on the track of better medications or therapies that could be more potent and convenient for patients than continuous red light exposure.

In preparation for clinical trials, the team is developing red light goggles to control the amount of light exposure study participants receive and investigating who may most benefit from red light

Additional authors on this research are Frederik Denorme, Ph.D., Robert Campbell, Ph.D., and Matthew R. Rosengart, M.D., all of Washington University in St. Louis; Christof Kaltenmeier, M.D., Aishwarrya Arivudainabi, Emily P. Mihalko, Ph.D., Mitchell Dyer, M.D., Gowtham K. Annarapu, Ph.D., Mohammadreza Zarisfi, M.D., Patricia Loughran, Ph.D., Mehves Ozel, M.D., Kelly Williamson, Ph.D., Roberto Mota-Alvidrez, M.D., Sruti Shiva, Ph.D., Susan Shea, Ph.D., and Richard A. Steinman, M.D., Ph.D., all of Pitt; and Kimberly Thomas, Ph.D., of Vitalant Research Institute.

Funding: This research was supported by National Institutes of Health grants R35GM119526, K01AG059892, R01HL163019, R01GM147121, R01GM145674, T32HL98036 and S10OD028483, the University of Pittsburgh Center for Research Computing, National Center for Research Resources Shared Instrumentation grants 1S10OD016232-01, 1S10OD018210-01A1 and 1S10OD021505-01, American Heart Association 2021Post830138 award, and a Physician-Scientist Institutional Award from the Burroughs Wellcome Fund.

Thursday, October 3, 2024

SolaWave’s New Red Light Eye Mask Targets Crow’s Feet and Puffiness in Just Three Minutes

 Based on these pieces of research does your competent? doctor think this eye mask would help your stroke recovery? Or is your doctor so incompetent that the research isn't even known about? Well, is your doctor competent or not?

Red light therapy is also sometimes called low-level laser therapy, low-power laser therapy, low-power laser, or photobiomodulation.

Potential for Transcranial Laser or LED Therapy to Treat Stroke, Traumatic Brain Injury, and Neurodegenerative Disease July 2011

Photobiomodulation for traumatic brain injury and stroke November 2017

Transcranial low level laser (light) therapy for traumatic brain injury July 2012

The latest here:

SolaWave’s New Red Light Eye Mask Targets Crow’s Feet and Puffiness in Just Three Minutes

Known for its celebrity-approved 4-in-1 Skincare Wand, SolaWave is a leader in the ever-expanding red and infrared light therapy beauty tech space. The brand recently launched a full-face LED Light Therapy Face Mask and a Red Light Therapy Eye Mask, which sold out in just 24 hours after being released. Finally, the brand restocked the viral eye mask, but stock is selling out quickly once again and, honestly, we understand why. While there are plenty of red light therapy masks on the market today, there aren’t many beauty tech devices harnessing the modality that specifically targets the delicate (and often overlooked) eye region. SolaWaves’s FDA-cleared eye mask is engineered with a blend of red (630nm), amber (605nm), deep red (660nm) and infrared (880nm) LED lights that work to soften fine lines and crow’s feet, depuff eye bags, erase hyperpigmentation and discoloration and lift sagging skin in just three minutes daily.

Eye Recovery Pro Mask With Red & Infrared Light Therapy

Unlike other devices, SolaWave’s Red Light Therapy Eye Mask is designed with medical-grade silicone to mold to the contours of the orbital region and adjustable velcro straps for a bespoke fit (and better penetration). Plus, the hands-free eye mask is lightweight and foolproof to use, so you can efficiently work, walk, watch TV, or do chores during the quick treatment, which means you’ll actually use it. If you’re looking for a powerful LED device that addresses the eye region like nothing else on the market (or are trying to push back quarterly Botox appointments), grab one of SolaWave’s Red Light Therapy Eye Masks now before they sell out again.

Wednesday, May 31, 2023

Prolonged red light disrupts circadian hormones associated with phrenic neuroplasticity

Way beyond my ability to understand, ask your doctor what it means.

Prolonged red light disrupts circadian hormones associated with phrenic neuroplasticity


Neurodegenerative disease and spinal cord injury impair breathing ability, significantly impacting the quality and duration of life. New therapeutic interventions for these conditions aim to improve respiratory function by using intermittent exposure to periods of low oxygen (acute intermittent hypoxia; AIH). AIH elicits one form of respiratory motor plasticity known as phrenic long-term facilitation (pLTF) via competing cellular mechanisms initiated by serotonin and adenosine, respectively. Circadian rhythm and the daily rest/active cycle have recently been shown to modulate the serotonin vs adenosine balance and pLTF. Melatonin and corticosterone are light-sensitive hormones that regulate neuroplasticity and molecules necessary for some forms of pLTF, particularly adenosine. Since the impact of these light-sensitive hormones on pLTF has not been directly investigated, we performed a preparatory investigation concerning the impact of dim red light on daily cycles. We hypothesized that prolonged exposure to low-intensity red light during the active/dark phase (rLEN) impacts light-sensitive hormones. Male Sprague-Dawley rats (3-4 months) were housed in a 12 on/12 off light cycle in 3 different light conditions: 1) normal-cycle (light onset 0700h; n=6); 2) reverse-cycle (light onset 1900h; n=8); or 3) reverse-cycle with rLEN (32 Lux) during the dark phase (light onset 1900h; n=6). Serum samples were collected at mid time-points in the daily rest/active cycle (i.e. 12PM and 12AM). Competitive ELISAs were used to quantify serum melatonin and corticosterone levels; an adenosine assay was used to quantify spinal adenosine. During the midactive phase, melatonin levels were significantly reduced in rLEN rats (63pg/mL; p<0.050) vs rats in normal- (104pg/mL) and reverse- (107pg/mL) cycle housing. Spinal adenosine levels were similar between normal- (15uM) and reverse- (20uM) cycled rats in the midactive phase, but were significantly lower in the rLEN rats (2uM; p<0.001). Melatonin and spinal adenosine levels during midrest were not different between groups. Corticosterone levels during the midactive phase were similar between normal- (46.6ng/mL) and reverse- (34.3ng/mL) cycled rats, but were significantly lower with rLEN (23.5ng/mL; p<0.050). Corticosterone during the midrest phase in the normal- (12ng/mL) and reverse- (12.4ng/mL) cycle were similar, but was significantly elevated in rLEN rats (25ng/mL; p=0.022). We also observed a shift in sleep behavior in rLEN rats. Thus: 1) rats housed in normal and reverse light cycle exhibit appropriate cycles in light-sensitive hormones; but 2) even low intensity rLEN during the active phase disrupts these light-sensitive & stress-related hormones. These data yield striking evidence for the need to limit rLEN exposure to rodent models, and may have important implications for the use of AIH as a therapeutic modality to improve breathing (or non-respiratory motor) function in people with disrupted circadian rhythms.

Supported by: NIH HL147554, HL148030, T32HL134621-5 (ABM), the American Physiology Society (LRB) and the UF McKnight Brain Institute.

This is the full abstract presented at the American Physiology Summit 2023 meeting and is only available in HTML format. There are no additional versions or additional content available for this abstract. Physiology was not involved in the peer review process.