Showing posts with label brain pacemaker. Show all posts
Showing posts with label brain pacemaker. Show all posts

Thursday, December 13, 2012

Brain "Pacemaker" Implanted to Help Mitigate Alzheimer's Symptoms

I will watch this research. It may be helpful for adults with Trisomy 21/ Down Syndrome in the future. JR

Researchers have implanted a 'pacemaker' in a patient's brain who is in the early stages of Alzheimers. The hope is that the pacemaker will help alleviate the symptoms of Alzheimers and reverse cognitive decline.

Researchers at Johns Hopkins Medicine in November surgically implanted a pacemaker-like device into the brain of a patient in the early stages of Alzheimer's disease, the first such operation in the United States. The device, which provides deep brain stimulation and has been used in thousands of people with Parkinson's disease, is seen as a possible means of boosting memory and reversing cognitive decline.
The surgery is part of a federally funded, multicenter clinical trial marking a new direction in clinical research designed to slow or halt the ravages of the disease, which slowly robs its mostly elderly victims of a lifetime of memories and the ability to perform the simplest of daily tasks, researchers at Johns Hopkins say. Instead of focusing on drug treatments, many of which have failed in recent clinical trials, the research focuses on the use of the low-voltage electrical charges delivered directly to the brain. There is no cure for Alzheimer's disease.
As part of a preliminary safety study in 2010, the devices were implanted in six Alzheimer's disease patients in Canada. Researchers found that patients with mild forms of the disorder showed sustained increases in glucose metabolism, an indicator of neuronal activity, over a 13-month period. Most Alzheimer's disease patients show decreases in glucose metabolism over the same period.
The first U.S. patient in the new trial underwent surgery at The Johns Hopkins Hospital, and a second patient is scheduled for the same procedure in December. The surgeries at Johns Hopkins are being performed by neurosurgeon William S. Anderson, M.D.
"Recent failures in Alzheimer's disease trials using drugs such as those designed to reduce the buildup of beta amyloid plaques in the brain have sharpened the need for alternative strategies," says Paul B. Rosenberg, M.D., an associate professor of psychiatry and behavioral sciences at the Johns Hopkins University School of Medicine, and site director of the trial's Johns Hopkins location. "This is a very different approach, whereby we are trying to enhance the function of the brain mechanically. It's a whole new avenue for potential treatment for a disease becoming all the more common with the aging of the population."
Some 40 patients are expected to receive the deep brain stimulation implant over the next year or so at Johns Hopkins and four other institutions in North America as part of the ADvance Study led by Constantine G. Lyketsos, M.D., M.H.S., a professor of psychiatry and behavioral sciences at the Johns Hopkins University School of Medicine, and Andres Lozano, M.D., Ph.D., chairman of the neurology department at the University of Toronto. Only patients whose cognitive impairment is mild enough that they can decide on their own to participate will be included in the trial.
Other sites performing the operation, supported by the National Institutes of Health's National Institute on Aging (R01AG042165), are the University of Toronto, the University of Pennsylvania, the University of Florida, and Banner Health System in Phoenix, Ariz. The medical device company, Functional Neuromodulation Ltd., is also supporting the trial.
"We are very excited about the possibilities of this potentially new way to treat Alzheimer's," says Lyketsos, director of the Johns Hopkins Memory and Alzheimer's Treatment Center in Baltimore.
While experimental for Alzheimer's patients, more than 80,000 people with the neurodegenerative disorder Parkinson's disease have undergone the procedure over the past 15 years, with many reporting fewer tremors and requiring lower doses of medication afterward, Lyketsos says. Other researchers are testing deep brain stimulation to control depression and obsessive-compulsive disorder resistant to other therapies.
The surgery involves drilling holes into the skull to implant wires into the fornix on either side of the brain. The fornix is a brain pathway instrumental in bringing information to the hippocampus, the portion of the brain where learning begins and memories are made, and where the earliest symptoms of Alzheimer's appear to arise. The wires are attached to a pacemaker-like device, the "stimulator," which generates tiny electrical impulses into the brain 130 times a second. The patients don't feel the current, Rosenberg says.
For the trial, all of the patients will be implanted with the devices. Half will have their stimulators turned on two weeks after surgery, while the other half will have their stimulators turned on after one year. Neither the patients nor the doctors treating them will know which group gets an early or later start.
"Deep brain stimulation might prove to be a useful mechanism for treating Alzheimer's disease, or it might help us develop less invasive treatments based on the same mechanism," Rosenberg says.
By 2050, the number of people age 65 and older with Alzheimer's disease may triple, experts say, from 5.2 million to a projected 11 million to 16 million, unless effective treatments are found.
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Thursday, August 16, 2012

New Brain Pacemaker that can Detect Epilepsy and Treat Seizures in Rats


A brain pacemaker has been invented that can detect epilepsy in rats and even help treat their seizures.


Scientists have created a "brain pacemaker" that controls epilepsy in rats by responding only to abnormal electrical patterns in the brain associated with seizures.

The skull implant is similar to an implantable defibrillator and is inserted in the brain and reacts only when a seizure starts to occur by terminating the seizure's electrical activity.

Results from the study, published in the journal Science, showed that the self-adjusting device delivered therapeutic electrical impulses to the brain at the beginning of a short but frequent type of seizure in rats, reducing the length of epileptic seizure by 60 percent in rats with a ‘petit mal’ form of epilepsy, and then automatically shuts itself off.

Most electrical stimulation devices, like ones that deliver deep-brain stimulation to treat Parkinson’s disease and depression, continuously deliver electrical impulses regardless of the patient's brain activity and can cause a range of side effects like headaches.

While other newer seizure-responsive types of deep brain stimulation devices don't continuously operate, these devices also use electrodes that are implanted in the brain and can pose certain risks like worsening epilepsy symptoms.

Lead researcher György Buzsáki, a neuroscientist at the New York University School of Medicine, and his colleagues, used a less invasive treatment method that involved transcranial electrical stimulation (TES) of neurons using electrodes implanted in the skull rather than in brain tissue.

The device is described as a simple, closed-loop system. Additionally, because the device is only activated in response to seizures, researchers said that the risk of causing brain changing side effects is significantly smaller compared to the effects of continuously stimulating devices.

Epilepsy, a brain disorder that triggers repeated seizures over time, affects nearly 3 million people in the U.S., according to the Epilepsy Foundation, making it third most prevalent neurological disorder in the country after Alzheimer's disease and stroke.

Seizures are episodes of disturbed brain activity that leads to changes in attention or behavior. In a seizure, brain cells keep firing instead of acting in an organized way. The brain's faulty electrical system and sudden chaotic neuronal activity triggers an overflow of energy that can cause unconsciousness and involuntary muscle contractions.

Epilepsy patients can suffer from two different kinds of seizures like petit mal seizures and grand mal seizures. Petit mal seizures occur frequently and often last for just a few seconds whereas grand mal seizures are rarer but involve more violent muscle contractions and a loss of consciousness.

Buzsáki and his team tested the new device against petit mal seizures in laboratory rats because this type of seizure can happen hundreds of times a day, allowing the scientists to effectively test the system they designed.

Researchers noted that patients with petit mal seizures are effectively treated with drugs, so the device would not be used to treat that type of seizure and instead by used to treat seizure in drug-resistant patients.

While the device does not prevent seizure, it treats them right away and reduces the length of the seizure by about 60 percent.
Researchers explained that in people, two plates about the size of a pocket watch could be inserted into the skill in a position that targets the affected area of the brain. The electrodes will sit right on top of the brain and be powered by ultra-light electrical circuits implanted in the skull.

Buzsáki and his team hope to replicate their findings on people with complex partial seizures or epileptic seizures that affect both sides of the brain and cause patients to lose consciousness and can occur simultaneously with head injuries, brain infection and stroke.
There is no cure for complex partial seizures, and the cause of the condition is unknown. An estimated 20 percent to 40 percent of people who have complex partial seizures do not respond to medication.

Dr. Orrin Devinsky, director of the epilepsy program at New York University and who was not associated with the study, told HealthDay that the recent findings have great potential for treating epilepsy and other neurological problems like tremors, Parkinson's disease and even serious depression.

"What's unique about this technique is that it's a sophisticated way to identify the rhythmicity of the seizure itself and interrupt the cycle with precision," he said, according to HealthDay. "Existing [deep brain stimulation] devices don't finesse the timing this way."

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