Showing posts with label deep brain stimulation. Show all posts
Showing posts with label deep brain stimulation. Show all posts

Friday, July 11, 2014

claustrum :: Neurosurgeons find small brain region that turns consciousness on and off, like the key in a car's ignition

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Neurosurgeons find small brain region that turns consciousness on and off, like the key in a car's ignition

The 54-year-old epilepsy patient - her name remains concealed to protect her privacy - was lying on the operating table while surgeons explored inside her brain with electrodes. They were looking for the source of her epileptic seizures. Suddenly, after they applied electricity to a small region, buried deep, near the front of the brain, the woman froze and her eyes went blank. She was awake, but entirely unresponsive.

The precise area the surgeons had zapped included a sliver of tissue known as the claustrum, which is part of a network that supports awareness.Mohamad Koubeissi and his colleagues state that nobody has ever examined the effects of stimulating this specific brain region before, despite this kind of surgical procedure having been performed for decades. Just as geographers still surprise us with reports of having discovered previously unchartered parts of the earth, it takes one aback to hear of unexplored areas of neural terrain.

Intrigued by the woman's response to the stimulation of this specific brain region, the surgeons investigated further. Ten further stimulations, and on every occasion zapping the claustrum had the same effect. By contrast, zapping an area just 2.7mm away did not.

Perhaps the woman was simply paralysed by the electrical stimulation? The effects are more intriguing than that. If given an instruction prior to the stimulation, such as words to utter or movements to make, she continued this for a few seconds after the stimulation began, but then descended into still, unresponsive stupor. It was also striking to observe that as soon as the stimulation ended, the woman regained consciousness. However, she had no memory of the preceding moments during the stimulation period.

The researchers also examined the synchronisation of activity across the brain during the stimulation of the claustrum. They found that it increased synchronisation across the brain, possibly to a debilitating level. If so, this would match the situation observed in epileptic seizures that trigger loss of consciousness.

Caution is required - after all, this is a single case study, and the patient in question was missing part of one hippocampus, removed during earlier treatment for epilepsy. Nonetheless this is an intriguing finding. "... [T]he disruption of consciousness that we herein describe has never been precipitated by electrical stimulation of any other site in the human brain," the researchers said.

Speaking to New Scientist magazine, lead author Koubeissi likened the claustrum to a car's ignition. While both the brain and the car are made up of many functioning parts, "...there's only one spot where you turn the key and it all switches on and works together," he told them. "So while consciousness is a complicated process created by many structures and networks - we may have found the key." If these results can be replicated, the hope is that stimulation of the claustrum may offer a way to treat disorders of consciousness associated with epileptic seizures.

_________________________________ ResearchBlogging.org

Mohamad Z. Koubeissia, Fabrice Bartolomei, Abdelrahman Beltagy, Fabienne Picard. (2014). Electrical stimulation of a small brain area reversibly disrupts consciousness.  Epilepsy & Behavior Volume 37, August 2014, Pages 32–35

Post written by Christian Jarrett (@psych_writer) for the BPS Research Digest.

Monday, December 16, 2013

Scientists improve human self-control through electrical brain stimulation

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12-Dec-2013
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Contact: Robert Cahill
Robert.Cahill@uth.tmc.edu
713-500-3030
University of Texas Health Science Center at Houston 

Scientists improve human self-control through electrical brain stimulation

 IMAGE: UTHealth neurosurgeon Nitin Tandon, M.D., is the senior author of a new study on self-control.
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If you have ever said or done the wrong thing at the wrong time, you should read this. Neuroscientists at The University of Texas Health Science Center at Houston (UTHealth) and the University of California, San Diego, have successfully demonstrated a technique to enhance a form of self-control through a novel form of brain stimulation.

Study participants were asked to perform a simple behavioral task that required the braking/slowing of action – inhibition – in the brain. In each participant, the researchers first identified the specific location for this brake in the prefrontal region of the brain. Next, they increased activity in this brain region using stimulation with brief and imperceptible electrical charges. This led to increased braking – a form of enhanced self-control.

This proof-of-principle study appears in the Dec. 11 issue of The Journal of Neuroscience and its methods may one day be useful for treating attention deficit hyperactivity disorder (ADHD), Tourette's syndrome and other severe disorders of self-control.

"There is a circuit in the brain for inhibiting or braking responses," said Nitin Tandon, M.D., the study's senior author and associate professor in The Vivian L. Smith Department of Neurosurgery at the UTHealth Medical School. "We believe we are the first to show that we can enhance this braking system with brain stimulation."
A computer stimulated the prefrontal cortex exactly when braking was needed. This was done using electrodes implanted directly on the brain surface.
When the test was repeated with stimulation of a brain region outside the prefrontal cortex, there was no effect on behavior, showing the effect to be specific to the prefrontal braking system.

This was a double-blind study, meaning that participants and scientists did not know when or where the charges were being administered.

The method of electrical stimulation was novel in that it apparently enhanced prefrontal function, whereas other human brain stimulation studies mostly disrupt normal brain activity. This is the first published human study to enhance prefrontal lobe function using direct electrical stimulation, the researchers report.

The study involved four volunteers with epilepsy who agreed to participate while being monitored for seizures at the Mischer Neuroscience Institute at Memorial Hermann-Texas Medical Center (TMC). Stimulation enhanced braking in all four participants.
Tandon has been working on self-control research with researchers at the University of California, San Diego, for five years. "Our daily life is full of occasions when one must inhibit responses. For example, one must stop speaking when it's inappropriate to the social context and stop oneself from reaching for extra candy," said Tandon, who is a neurosurgeon with the Mischer Neuroscience Institute at Memorial Hermann-TMC.
The researchers are quick to point out that while their results are promising, they do not yet point to the ability to improve self-control in general. In particular, this study does not show that direct electrical stimulation is a realistic option for treating human self-control disorders such as obsessive-compulsive disorder, Tourette's syndrome and borderline personality disorder. Notably, direct electrical stimulation requires an invasive surgical procedure, which is now used only for the localization and treatment of severe epilepsy.
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The study's co-lead authors are Jan R. Wessel, Ph.D., of the Department of Psychology at the University of California, San Diego; and Christopher R. Conner, student at the UTHealth Medical School. The fourth author is Adam Aron, Ph.D., at the University of California, San Diego.
The study is titled "Chronometric Electrical Stimulation of Right Inferior Frontal Cortex Increases Motor Braking." Authors received support from the National Institutes of Health Center for Clinical and Translational Sciences (KL2RR0224149), the Mischer Neuroscience Institute at Memorial Hermann-TMC and the Keck Center of the Gulf Coast Consortia.


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