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Overnight brain stimulation improves memory

New research in humans demonstrates the potential to improve memory with a non-invasive brain stimulation technique delivered during sleep. The results, published in JNeurosci, come from a project funded by the United States Department of Defense that aims to better understand the process of memory consolidation, which could translate into improved memory function in both healthy and patient populations.

The transfer of memories from the hippocampus to the neocortex for long-term storage is thought to be enabled by synchronization of these parts of the brain during sleep. Nicholas Ketz, Praveen Pilly, and colleagues at University of New Mexico sought to enhance this natural process of overnight reactivation or neural replay to improve with a closed-loop transcranial alternating current stimulation system matching the phase and frequency of ongoing slow-wave oscillations during sleep.

Participants were trained and tested on a realistic visual discrimination task in which they had to detect potentially threatening hidden objects and people such as explosive devices and enemy snipers. The researchers found that when participants received stimulation during overnight visits to their sleep laboratory, they showed improved performance in detecting targets in similar but novel situations the next day compared to when they did not receive the stimulation, suggesting an integration of recent experience into a more robust and general memory. Overnight memory changes correlated with stimulation-induced neural changes, which could be used to optimize stimulation in future applications. These findings provide a method for enhancing without disturbing sleep.

A Common Link Between Several Neurodegenerative Diseases Might Finally Be Identified

There’s a hallmark of incurable neurodegenerative diseases – misfolded proteins that clump together to form sticky plaques or tangles called fibrils.

Now, new research has discovered that a protein normally tasked with clearing cells of molecular debris might be a common feature of a cluster of common and rare neurodegenerative diseases, including two distinct forms of dementia.

The finding was “both unexpected and surprising” and “raises many intriguing questions”, according to the team behind the study, who made 3D-reconstructions of a twisted protein they found in “copious amounts” in some brain tissue samples.

Cool Inventions That Will Kill Your Boredom

BRAIN TIME ► https://goo.gl/tTWgH2

1. Parajet Xplorer Flying Car.

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3. Widescape WS250

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4. Overboat https://www.youtube.com/watch?v=mpOdIM8D9gc.
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5. All-Pro Passer.

Single protein prompts mature brain cells to regenerate multiple cell types

A single protein can reverse the developmental clock on adult brain cells called astrocytes, morphing them into stem-like cells that produce neurons and other cell types, UT Southwestern researchers report in a PNAS study. The findings might someday lead to a way to regenerate brain tissue after disease or injury.

“We’re showing that it may be possible to reprogram the fate of this subset of brain , giving them the potential to rebuild the damaged brain,” said study leader and co-corresponding author Chun-Li Zhang, Ph.D., Professor of Molecular Biology and an Investigator in the Peter O’Donnell Jr. Brain Institute.

During development, mammalian stem cells readily proliferate to produce neurons throughout the brain and cells—called glia—that help support them. Glia help maintain optimal brain function by performing essential jobs like cleaning up waste and insulating nerve fibers. However, the mature brain largely loses that stem cell capacity. Only two small regenerative zones, or niches, remain in the adult brain, Dr. Zhang explained, leaving it with extremely limited capacity to heal itself following injury or disease.

New Discoveries Reveal Information’s Flow in the Brain

Could these connections formulate our consciousness? Is consciousness information flowing throughout the brain?

The Neuro-Network.

See more.


A long-standing research collaboration is simultaneously recording populations of neurons across multiple brain areas in the visual system and utilizing novel statistical methods to observe neural activity patterns being conveyed between the areas.

How Changes in the Neural Code Unlock the Brain’s Inner Learning

Summary: Findings shed light on how plastic and stable neural populations are able to co-exist in the brain.

Source: University of Cambridge.

Our brains are highly skilled at learning patterns in the world and making sense of them. The brain continually learns and adapts throughout our lives, and even the neurons supporting learned behaviors, such as the daily walk to work, are constantly changing.

These Advanced Nootropics Are Specially Formulated to Help Fight Mental Fatigue

Supplement companies often market nootropics like they’re some kind of new scientific discovery. However, human beings have been using nootropics to boost mental performance for millennia. What’s different now is that scientists actually understand how nootropics work, and which ones have synergistic interactions with each other.

This new understanding is what helped TruBrain create Brain Food.

Brain Food is a nutritional supplement that has been methodically engineered by TruBrain’s team of scientists to create the biological conditions necessary for peak cognitive performance. Like a lot of other nootropic supplements, Brain Food contains the so-called “everyman stack” of caffeine and l-theanine, a combo humans have been taking for thousands of years in the form of green tea.

Stanford Scientists Say Brain Magnets Can Relieve Depression

Researchers at the Stanford University School of Medicine say that they were able to treat depression in patients by stimulating their brains with magnets.

In a study published on Friday 0, the researchers found that nearly 80 percent of patients had experienced remission of their depression after the procedure, which is called Stanford neuromodulation therapy (SNT). The technique is a modified form of transcranial magnetic stimulation (rTMS) and works by delivering high doses of magnetic pulses into a patient’s brain with a device containing magnetic coils placed outside of their skull.

The treatment takes just five days and is customized to each patient based on an MRI scan which shortens the typical timeline of rTMS treatment from a span of weeks into days.