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Information, News & Discussion about Infant Pediatric & Adolescent Neurology & Sleep Disorders. Science Diagnostics Symptoms Treatment. Topics include: Seizures Epilepsy Spasticity Developmental Disorders Cerebral Palsy Headaches Tics Concussion Brain Injury Neurobehavioral Disorders ADHD Autism Serving Texas Children's Neurology, Epilepsy, Developmental & Sleep Problems in The Houston Area and The San Antonio / Central & South Texas Areas
The 50fil adhesive microchip, the work of a researcher at the Masdar Institute, monitors epileptic seizures.
It will allow doctors to keep a close eye on patients for up to two weeks without the need for them to stay in hospital attached to a cumbersome and uncomfortable electroencephalograph (EEG) machine.
It would be applied to the forehead and is expected to be smaller in size than three grains of rice.
Currently, doctors often have to rely on patients' own descriptions of their seizures. But their recollections of events under such circumstances are notoriously unreliable.
The chip, which detects rapid eye movements - the early sign of an epileptic seizure - will give doctors a far more accurate picture of what happened, from the length of an attack to its severity.
The patch is the work of Dr Jerald Yoo, a circuit designer at the Masdar Institute, jointly funded by the Massachusetts Institute of Technology in the United States.
About 50 million people worldwide suffer from epilepsy. While no exact figure exists for the UAE, it is believed to be about 2 to 3 per cent of the population - more than 100,000 people.
Dr Yoo said the patch would be especially useful for children or babies, who cannot express what they have suffered.
The chip can also record seizures while asleep, of which patients might not even be aware.
"Doctors need to see raw information and data with their own eyes so they can make the right decisions, diagnoses and treatments.
"You need to learn the patient's seizure traits as they usually have one or two, which allows a more thorough diagnosis and treatment."
The Taiwan Semiconductor Manufacturing Company and the Abu Dhabi-owned Mubadala - which owns most of the chipmaker, Global Foundries - are looking to start making the chip by the end of this year.
Dr Sarmad Al Shamma, a neurologist at the Neuro Spinal Hospital in Dubai, said home monitoring would be good for doctors and patients alike.
"In addition to the discomfort of being in a hospital for more than 24 hours, there is a reduced possibility of an attack in the hospital because patients are lying in bed the entire time," he said.
"This often means they have to stay in the hospital for an even longer time. By monitoring them outside the hospital, we can learn what is triggering the attacks."
Epileptic seizures can be triggered in different patients by lack of sleep, stress, low blood sugar and flashing lights.
Dr Taoufik Al Sadi, the head of neurology at Sheikh Khalifa Medical City, said the chip could help fill "gaps in knowledge" about the condition.
"If this proves to be scientifically solid it would be an excellent addition to better understand the frequency and severity of the seizures, their duration," he said.
"It will allow better options for treatment based on solid, objective data, rather than relying on a patient's history and recollection."
He added that the chip could help reduce the stigma associated with epilepsy.
"Many sufferers feel deprived from basic privileges, such as driving a car and in some cases, going to school," said Dr Al Sadi.
"They find it difficult to be in social situations because they never know when they're going to have the next attack.
"But what they need to know is that after six months of treatment they can drive and resume their normal life."
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Early-life seizures are known to be associated with autism, and studies indicate that about 40 percent of patients with autism also have epilepsy. A study from Boston Children's Hospital finds a reason for the link, and suggests that an existing drug, already shown to be safe in children, could help prevent autism from developing in newborns who have seizures.
Led by Frances Jensen, MD, in the Department of Neurology and the F.M. Kirby Neurobiology Center at Boston Children's Hospital, the study suggests that seizures over-activate a biochemical pathway previously linked to autism, known as the mTOR pathway, and that this alters the fast-forming circuitry in infants' developing brains.
In a rat model, Jensen and colleagues showed that early seizures not only resulted in epilepsy later in life, but also produced autistic-like behavior. They further showed that disabling the mTOR pathway – by giving the drug rapamycin before and after seizures – prevented development of abnormal patterns of connections (synapses) between brain cells, reduced later-life seizures and eased autistic-like symptoms.
Findings were published May 2 in the online journal PLoS ONE.
"In children, there is overlap between epilepsy and autism, and epilepsy early in life has been linked to later autism," says Jensen of Boston Children's Hospital. "Our findings show one of probably many pathways that are involved in this overlap – importantly, one that is already a therapeutic target and where treatment can reverse the later outcome."
Specifically, the study demonstrated that a group of signaling molecules, known collectively as the mTOR pathway, shows increased activation after a seizure. This increased signaling – above and beyond the surge that normally occurs early in life – disrupted the normal balance of synapse and circuit development to produce epilepsy and altered social behavior. Rapamycin treatment inhibited mTOR signaling, reducing susceptibility to seizures and preventing seizure-induced changes in the synapses.
The study uncovers a new link whereby epilepsy and autism may interact in early development. Last December, Jensen and colleagues published a related study finding that seizures exaggerated excitation and synaptic strengthening too soon in a rat model, causing synapses to lose their plasticity -- their ability to reconfigure in response to input from the outside world. When they gave the rats a drug called NBQX, which blocks receptors associated with excitation, these problems were reversed.
The mTOR pathway is already known to be over-active in tuberous sclerosis complex (TSC) a genetic disorder treated at Boston Children's that often includes epilepsy and autism. The hospital is currently conducting a clinical trial of rapamycin in children with TSC.
"Our study suggests that even without tuberous sclerosis, seizures are inducing the mTOR pathway, and might on their own be contributing to the development of autism," says Jensen. "It appears that blocking the mTOR pathway briefly after the initial seizures may reduce the risk of later epilepsy and autism. This research also suggests that the fields of epilepsy and autism may inform each other about new treatment targets."
For further background, see this feature published last year in Nature Medicine.
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