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 brain cell communication. Show all posts
Showing posts with label brain cell communication. Show all posts

Saturday, April 16, 2022

Mbps experimental acoustic through-tissue communications: MEAT-COMMS

 To me this means we could listen in on signals in the brain or send signals to the brain. But I just have stroke-addled ideas that just might help survivors recover. But since no one is listening to me, nothing will happen to make survivor recovery better.

Mbps experimental acoustic through-tissue communications: MEAT-COMMS

Publisher: IEEE

Abstract:
Methods for digital, phase-coherent acoustic communication date to at least the work of Stojanjovic, et al [20], and the added robustness afforded by improved phase tracking and compensation of Johnson, et al [21]. This work explores the use of such methods for communications through tissue for potential biomedical applications, using the tremendous bandwidth available in commercial medical ultrasound transducers. While long-range ocean acoustic experiments have been at rates of under 100kbps, typically on the order of 1-10kbps, data rates in excess of 120Mb/s have been achieved over cm-scale distances in ultrasonic testbeds [19]. This paper describes experimental transmission of digital communication signals through samples of real pork tissue and beef liver, achieving data rates of 20-30Mbps, demonstrating the possibility of real-time video-rate data transmission through tissue for in-body ultrasonic communications with implanted medical devices.
Date of Conference: 3-6 July 2016
Date Added to IEEE Xplore: 11 August 2016
ISBN Information:
INSPEC Accession Number: 16228484
 

Wednesday, October 20, 2021

How Brain Cells Talk

 But this is not what stroke survivors need to know.

Why does a neuron give up its current job and take on a neighboring function? If we don't know that, neuroplasticity will never be repeatable on demand.

How Brain Cells Talk

Summary: A new study expands the understanding of how brain cells communicate. Researchers discovered reversing the modification of molecular messages at the synapse may contribute to reversible psychiatric disorders and early-stage neurodegenerative diseases.

Source: University of Nottingham

Experts from the University of Nottingham have discovered that reversing the modification of molecular messages at synapses in the human brain, may contribute to reversible mental health conditions such as anxiety, and memory diseases such as dementia.

The findings, published in Molecular Psychiatry, are a major step in our understanding how brain cells communicate, and could help to identify new treatments for neurological and psychiatric conditions.

The research was led by Dr Helen Miranda Knight in the School of Life Sciences at the University of Nottingham, along with researchers across the Schools of Medicine, Life Science, and Bioscience.

It was conducted using the University of Nottingham’s state-of-the-art Deep seq, SLIM microscopy, and, Nanoscale and Microscale Research Centre facilities.

Nerve cells in the human brain talk to one another at sites called synapses, where molecules are released to signal to the next cell. When people learn or remember things, this signalling is strengthened. When communication between synapses goes wrong, circuits become broken.

As more circuits are lost, this changes how people can think and perform everyday tasks. This is seen in cognitive disorders, such as forms of dementia and some mental health conditions.

The function of nerve cells and synapses depends on proteins that are made using information encoded in genetic material called RNA. It is thought that RNAs are located exactly where and when they are needed for synaptic signalling because some kind of synaptic ‘tag’ labels the correct active synapse.

This shows a brain
Nerve cells in the human brain talk to one another at sites called synapses, where molecules are released to signal to the next cell. Image is in the public domain

Scientists have recently learned that RNA can have a methyl group/molecule added to one of the RNA bases which ‘marks’ the RNA message. Such adding of methyl groups can influence proteins binding to DNA or RNA and consequently stop proteins being produced.

This new study shows that RNA marking can be reversed at synapses and hence may act as a ‘synaptic tag’. The findings suggest, that if disrupted, this could cause synapses and nerve cells to malfunction by influencing the formation of toxic protein clumps.

The researchers used advanced microscopy to examine changes in marked RNAs in time and location at synapses, and a sequencing technique to characterise ‘marked’ RNAs in brain tissue from the hippocampus, a region of the brain very important for memory formation.

Dr Knight said: “In this new study, we are able to gain a new understanding of the genomic mechanisms which regulate how nerve cells communicate at synapses. These genomic mechanisms involve methyl groups being put on RNA messages and importantly taken off when a synapse is active. The implications are very important for normal brain function but also for reversible psychiatric mental conditions such as anxiety and addiction disorders and early-stage neurodegenerative diseases such as dementias.”