Subscribe
The latest psychology and neuroscience discoveries.
My Account
  • Mental Health
  • Social Psychology
  • Cognitive Science
  • Neuroscience
  • About
No Result
View All Result
PsyPost
PsyPost
No Result
View All Result
Home Exclusive Cognitive Science

How your brain’s thalamic reticular nucleus controls sleep

by Massachusetts Institute of Technology
October 13, 2015
in Cognitive Science
Photo credit: OpenStax College

Photo credit: OpenStax College

Share on TwitterShare on Facebook

Sleep is usually considered an all-or-nothing state: The brain is either entirely awake or entirely asleep. However, MIT neuroscientists have discovered a brain circuit that can trigger small regions of the brain to fall asleep or become less alert, while the rest of the brain remains awake.

This circuit originates in a brain structure known as the thalamic reticular nucleus (TRN), which relays signals to the thalamus and then the brain’s cortex, inducing pockets of the slow, oscillating brain waves characteristic of deep sleep. Slow oscillations also occur during coma and general anesthesia, and are associated with decreased arousal. With enough TRN activity, these waves can take over the entire brain.

The researchers believe the TRN may help the brain consolidate new memories by coordinating slow waves between different parts of the brain, allowing them to share information more easily.

“During sleep, maybe specific brain regions have slow waves at the same time because they need to exchange information with each other, whereas other ones don’t,” says Laura Lewis, a research affiliate in MIT’s Department of Brain and Cognitive Sciences and one of the lead authors of the new study, which appears today in the journal eLife.

The TRN may also be responsible for what happens in the brain when sleep-deprived people experience brief sensations of “zoning out” while struggling to stay awake, the researchers say.

The paper’s other first author is Jakob Voigts, an MIT graduate student in brain and cognitive sciences. Senior authors are Emery Brown, the Edward Hood Taplin Professor of Medical Engineering and Computational Neuroscience at MIT and an anesthesiologist at Massachusetts General Hospital, and Michael Halassa, an assistant professor at New York University. Other authors are MIT research affiliate Francisco Flores and Matthew Wilson, the Sherman Fairchild Professor in Neurobiology and a member of MIT’s Picower Institute for Learning and Memory.

Local control

Until now, most sleep research has focused on global control of sleep, which occurs when the entire brain is awash in slow waves — oscillations of brain activity created when sets of neurons are silenced for brief periods.

Google News Preferences Add PsyPost to your preferred sources

However, recent studies have shown that sleep-deprived animals can exhibit slow waves in parts of their brain while they are still awake, suggesting that the brain can also control alertness at a local level.

The MIT team began its investigation of local control of alertness or drowsiness with the TRN because its physical location makes it perfectly positioned to play a role in sleep, Lewis says. The TRN surrounds the thalamus like a shell and can act as a gatekeeper for sensory information entering the thalamus, which then sends information to the cortex for further processing.

Using optogenetics, a technique that allows scientists to stimulate or silence neurons with light, the researchers found that if they weakly stimulated the TRN in awake mice, slow waves appeared in a small part of the cortex. With more stimulation, the entire cortex showed slow waves.

“We also found that when you induce these slow waves across the cortex, animals start to behaviorally act like they’re drowsy. They’ll stop moving around, their muscle tone will go down,” Lewis says.

The researchers believe the TRN fine-tunes the brain’s control over local brain regions, enhancing or reducing slow waves in certain regions so those areas can communicate with each other, or inducing some areas to become less alert when the brain is very drowsy. This may explain what happens in humans when they are sleep-deprived and momentarily zone out without really falling asleep.

“I’m inclined to think that happens because the brain begins to transition into sleep, and some local brain regions become drowsy even if you force yourself to stay awake,” Lewis says.

Natural sleep and general anesthesia

Understanding how the brain controls arousal could help researchers design new sleep and anesthetic drugs that create a state more similar to natural sleep. Stimulating the TRN can induce deep, non-REM-like sleep states, and previous research by Brown and colleagues uncovered a circuit that turns on REM sleep.

Brown adds, “The TRN is rich in synapses — connections in the brain — that release the inhibitory neurotransmitter GABA. Therefore, the TRN is almost certainly a site of action of many anesthetic drugs, given that a large classes of them act at these synapses and produce slow waves as one of their characteristic features.”

Previous work by Lewis and colleagues has shown that unlike the slow waves of sleep, the slow waves under general anesthesia are not coordinated, suggesting a mechanism for why these drugs impair information exchange in the brain and produce unconsciousness.

Previous Post

Good music makes us do bad things: The effect of music on compliance

Next Post

Nonmedical prescription opioid use disorders, deaths increase in the US

RELATED

How common is anal sex? Scientific facts about prevalence, pain, pleasure, and more
Cognitive Science

New psychology research reveals that wisdom acts as a moral compass for creative thinking

March 6, 2026
Hemp-derived cannabigerol shows promise in reducing anxiety — and maybe even improving memory
Alcohol

Using cannabis to cut back on alcohol? Your working memory might dictate if it works

March 5, 2026
Chocolate lovers’ brains: How familiarity influences reward processing
Cognitive Science

A single dose of cocoa flavanols improves cognitive performance during aerobic exercise

March 4, 2026
Heart and brain illustration with electrocardiogram waves, representing cardiovascular health and neurological connection, suitable for psychology and medical research articles.
Cognitive Science

Fascinating new research reveals your heart rate drops when your brain misperceives the world

March 4, 2026
Colorful digital illustration of a human brain with neon wireframe lines, representing neuroscience, psychology, and brain research. Ideal for psychology news, brain health, and cognitive sciences articles.
Cognitive Science

New research on acquired aphantasia pinpoints specific brain network responsible for visual imagination

March 3, 2026
Traumatic brain injury may steer Alzheimer’s pathology down a different path
Cognitive Science

Growing up with solid cooking fuels linked to long-term brain health risks

March 1, 2026
The disturbing impact of exposure to 8 minutes of TikTok videos revealed in new study
Cognitive Science

Problematic TikTok use correlates with social anxiety and daily cognitive errors

March 1, 2026
Why most people fail to spot AI-generated faces, while super-recognizers have a subtle advantage
Artificial Intelligence

Why most people fail to spot AI-generated faces, while super-recognizers have a subtle advantage

February 28, 2026

STAY CONNECTED

LATEST

Apocalyptic views are surprisingly common among Americans and predict responses to existential hazards

A psychological need for certainty is associated with radical right voting

Blocking a common brain gas reverses autism-like traits in mice

New psychology research sheds light on why empathetic people end up with toxic partners

Cognitive deficits underlying ADHD do not explain the link with problematic social media use

Scientists identify brain regions associated with auditory hallucinations in borderline personality disorder

People with the least political knowledge tend to be the most overconfident in their grasp of facts

How the wording of a trigger warning changes our psychological response

PsyPost is a psychology and neuroscience news website dedicated to reporting the latest research on human behavior, cognition, and society. (READ MORE...)

  • Mental Health
  • Neuroimaging
  • Personality Psychology
  • Social Psychology
  • Artificial Intelligence
  • Cognitive Science
  • Psychopharmacology
  • Contact us
  • Disclaimer
  • Privacy policy
  • Terms and conditions
  • Do not sell my personal information

(c) PsyPost Media Inc

Welcome Back!

Login to your account below

Forgotten Password?

Retrieve your password

Please enter your username or email address to reset your password.

Log In

Add New Playlist

Subscribe
  • My Account
  • Cognitive Science Research
  • Mental Health Research
  • Social Psychology Research
  • Drug Research
  • Relationship Research
  • About PsyPost
  • Contact
  • Privacy Policy

(c) PsyPost Media Inc