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 perineuronal nets. Show all posts
Showing posts with label perineuronal nets. Show all posts

Sunday, July 11, 2021

Repeated Ketamine Anesthesia Restarts Plasticity in the Brain

Darn, already bought a 40H flickering light for dementia prevention, might need to get a 60H one. Don't do that unless you get a doctor's prescription.

Sure would be easier to do than ketamine.

Repeated Ketamine Anesthesia Restarts Plasticity in the Brain

In defining periods of development, the brain re-organizes connections between its neurons more freely than in its adult form. Researchers around Sandra Siegert at the Institute of Science and Technology (IST) Austria have now discovered two methods to reopen such plasticity: repeated ketamine anesthesia and non-invasive 60 hertz light flickering. The journal Cell Reports now published their findings, which have the potential to become a therapeutic tool applicable to humans.

Can you remember the smell of flowers in your grandmother's garden or the tune your grandpa always used to whistle? Some childhood memories are seemingly engrained into your brain. In fact, there are critical periods in which the brain learns and saves profound cognitive routines and memories. The structure responsible for saving them is called the perineuronal net.

This extracellular structure envelops certain neurons, thereby stabilizes existing connections - the synapses - between them and prevents new ones from forming. But what if we could remove the perineuronal net and restore the adaptability of a young brain? The neuroscientist Sandra Siegert and her research group at IST Austria now published two promising techniques to do so.

Taking Ketamine or Flashing Lights


It all began four years ago when the researchers at IST Austria found that microglia cells in mice become very reactive after they had anesthetized animals with the drug ketamine. Microglia are typically seen as the brain's immune cells. However, recent studies have shown that they also interact with the neurons. The reactive microglia have the ability to eat synapses and even entire neurons, which is often seen in the late phases of Alzheimer's disease.

"The strong response of the microglia upon ketamine anesthesia surprised us," explains Alessandro Venturino, leading author in the study and member of the Siegert group. "But we did not see any synapses or dead neurons vanishing. So, we were puzzled, what the microglia were actually eating." It turned out to be the perineuronal net that protects and stabilizes the connections between neurons.

"Alessandro came to my office and told me that the perineuronal net was gone. I could not believe it," Siegert remembers. They had applied repeated anesthetic dosages of ketamine to mice. Ketamine is an essential drug for human surgery and was also recently approved for treating psychiatric symptoms. "After just three treatments, we could see a considerable loss in the perineuronal net, which lasted for seven days before being rebuilt."

When Siegert shared the results with Mark Bear, collaborating neuroscientist at the Massachusetts Institute of Technology (MIT), he was equally amazed and intrigued by the potential of this discovery. "In biology, you rarely witness such a black-and-white situation," Siegert continues. "Yet, the cherry on top was the effect of the 60-hertz light flickering."

Neurons communicate by sending electric impulses to each other. These are coordinated to create waves of signals - so-called brainwaves - which can be influenced by external sensory information, for example, light shining into the eyes. "It had been previously shown that light flickering 40 times a second - at 40 hertz - can promote microglia to remove plaques in Alzheimer disease. But it did not remove the perineuronal net," Venturino explains. But when the scientists then put mice in boxes with light flickering 60 times a second, it had a similar effect as the ketamine treatments. "This fine-tuning between distinct brainwaves and the microglia action is the most fascinating and might be a new way of thinking about brainwaves."

Caution and Possibilities


Previously established strategies to remove the perineuronal net are long-lasting and extremely invasive. The high-dosage ketamine treatment but even more so the 60-hertz light flickering are minimally invasive. Therefore, they could open new therapeutic approaches in humans.

Once the blocking of the perineuronal net in the brain is lessened, neurons are again sensitive to new input, and new synapses can be formed. "But it is not like you take ketamine as a drug and become smart", Venturino emphasizes. By re-establishing plasticity, one could potentially overwrite traumatic experiences and treat post-traumatic stress disorder. "But we are very cautious because in this formative window also something traumatic could happen," Siegert says. "It is probably also not a good idea to blast yourself with flickering light."

There are various possible applications for these treatments, one being amblyopia, also known as the lazy eye. This sight disorder is caused by an unbalanced visual input during a child's development and, if untreated, leads to permanent loss of vision. Another topic the researchers want to investigate is the molecular mechanisms behind their discovery which are still not fully understood. Venturino puts it in a nutshell: "There is a lot to explore."

Reference: Venturino A, Schulz R, Jesús-Cortés HD, et al. Microglia enable mature perineuronal nets disassembly upon anesthetic ketamine exposure or 60-Hz light entrainment in the healthy brain. Cell Rep. 2021;36(1). doi: 10.1016/j.celrep.2021.109313

Thursday, February 21, 2019

Potential link between vitamin D deficiency and loss of brain plasticity

Two simple questions.

  1. How do you tell if you have a vitamin D deficiency?

  2. What is the protocol to reverse that? Specific answers only, NOT a generic, get more sun. 

Potential link between vitamin D deficiency and loss of brain plasticity

Perineuronal nets (bright green) surround particular neurons (blue). Fluorescence labelling reveals just how detailed these structures are. Credit: Phoebe Mayne, UQ
University of Queensland research may explain why vitamin D is vital for brain health, and how deficiency leads to disorders including depression and schizophrenia.
Associate Professor Thomas Burne at UQ's Queensland Brain Institute led the studies, which provide the groundwork for research into better prevention and treatments.
"Over a billion people worldwide are affected by D deficiency, and there is a well-established link between vitamin D deficiency and impaired cognition," Dr Burne said.
"Unfortunately, exactly how vitamin D influences structure and function is not well understood, so it has remained unclear why deficiency causes problems."
Dr Burne's team found that vitamin D levels affect a type of 'scaffolding' in the brain, called perineuronal nets.
"These nets form a strong, supportive mesh around certain neurons, and in doing so they stabilise the contacts these cells make with other neurons," he said.
Researchers removed vitamin D from the diet of a group of healthy adult mice, and after 20 weeks found a significant decline in their ability to remember and learn compared to a control group.
Dr Burne said the vitamin D deficient group had a pronounced reduction in perineuronal nets in the hippocampus, the brain region crucial to memory formation.
"There was also a stark reduction in both the number and strength of connections between neurons in that region."
Dr Burne's team propose that vitamin D plays an important role in keeping perineuronal nets stable, and that when vitamin D levels drop, this 'scaffolding' is more easily degraded by enzymes.
"As neurons in the hippocampus lose their supportive perineuronal nets, they have trouble maintaining connections, and this ultimately leads to a loss of cognitive function."
Associate Professor Burne said the hippocampus may be most strongly affected by vitamin D deficiency because it is much more active than other brain regions.
"It's like the canary in the coalmine—it might fail first because its high energy requirement makes it more sensitive to the depletion of essential nutrients like vitamin D.
"Intriguingly, the right side of the hippocampus was more affected by vitamin D deficiency than the left side."
Associate Professor Burne said loss of function in this area could be an important contributor to the hallmarks of schizophrenia, including severe memory deficits and a distorted perception of reality.
"The next step is to test this new hypothesis on the link between vitamin D deficiency, perineuronal nets and cognition," he said.
"We are also particularly excited to have discovered these nets can change in adult mice.
 "I'm hoping that because they're dynamic there is a chance that we can rebuild them, and that could set the stage for new treatments."
The research is published in Brain Structure and Function and Trends in Neuroscience.

Explore further
Link between neonatal vitamin D deficiency and schizophrenia confirmed


More information: Md. Mamun Al-Amin et al. Adult vitamin D deficiency disrupts hippocampal-dependent learning and structural brain connectivity in BALB/c mice, Brain Structure and Function (2019). DOI: 10.1007/s00429-019-01840-w Phoebe E. Mayne et al. Vitamin D in Synaptic Plasticity, Cognitive Function, and Neuropsychiatric Illness, Trends in Neurosciences (2019). DOI: 10.1016/j.tins.2019.01.003
Provided by University of Queensland

Wednesday, August 13, 2014

Molecular control of brain plasticity and repair

How is your doctor enabling this post-stroke? 5 years is plenty of time to create a stroke protocol for this. Has your hospital created goals and objectives for neurologists to create stroke protocols within 6 months of research being released? Is your board of directors enforcing  adherence to results oriented goals? Does your hospital have any stroke related goals at all? 30 day deaths improved every year? Following Get With the Guidelines or Joint Commission certification are not valid because they are not results oriented.
http://www.ncbi.nlm.nih.gov/pubmed/19660677

Abstract

Recovery of function after damage to the CNS is limited due to the absence of axon regeneration and relatively low levels of plasticity. Plasticity in the CNS can be reactivated in the adult CNS by treatment with chondroitinase ABC, which removes glycosaminoglycan (GAG) chains from chondroitin sulfate proteoglycans (CSPGs). Plasticity in the adult CNS is restricted by perineuronal nets (PNNs) around many neuronal cell bodies and dendrites, which appear at the closure of critical periods and contain several inhibitory CSPGs. Formation of these structures and the turning off of plasticity is triggered by impulse activity in neurons. Expression of a link protein by neurons is the event that triggers the formation of PNNs. Treatment with chondroitinase removes PNNs and other inhibitory influences in the damaged spinal cord and promotes sprouting of new connections. However, promoting plasticity by itself does not necessarily bring back useful behavior; this only happens when useful connections are stabilized and inappropriate connections removed, driven by behavior. Thus after rodent spinal cord injury, combining a daily rehabilitation treatment for skilled paw function with chondroitinase produces much greater recovery than either treatment alone. The rehabilitation must be specific for the behavior that is to be enhanced because non-specific rehabilitation improves locomotor behavior but not skilled paw function. Plasticity-enhancing treatments may therefore open up a window of opportunity for successful rehabilitation.