Mostrando entradas con la etiqueta Meniere. Mostrar todas las entradas
Mostrando entradas con la etiqueta Meniere. Mostrar todas las entradas

lunes, 28 de octubre de 2013

Primer implante desarrollado para tratar trastornos del equilibrio "First Implanted Device to Treat Balance Disorder Developed"


Oct. 23, 2010 — A University of Washington Medical Center patient on Thursday, Oct. 21, became the world's first recipient of a device that aims to quell the disabling vertigo associated with Meniere's disease.


The UW Medicine clinicians who developed the implantable device hope that success in a 10-person surgical trial of Meniere's patients will lead to exploration of its usefulness against other common balance disorders that torment millions of people worldwide.



 This is a side view of the implantable device created by University of Washington researchers. The device will be implanted surgically in the first patient in the world on Thursday, Oct. 21, in Seattle, Wash. at UW Medical Center. (Credit: Cochlear Ltd.)



The device being tested -- a cochlear implant and processor with re-engineered software and electrode arrays -- represents four-plus years of work by Drs. Jay Rubinstein and James Phillips of UW's Department of Otolaryngology-Head and Neck Surgery.

 They worked with Drs. Steven Bierer, Albert Fuchs, Chris Kaneko, Leo Ling and Kaibao Nie, UW specialists in signal processing, brainstem physiology and vestibular neural coding.

"What we're proposing here is a potentially safer and more effective therapy than exists now," said Rubinstein, an ear surgeon and auditory scientist who has earned a doctoral degree in bioengineering and who holds multiple U.S. patents.

In the United States, Meniere's affects less than one percent of the population. The disease occurs mostly in people between ages 30 and 50, but can strike anyone. Patients more often experience the condition in one ear; about 30 percent of cases are bilateral.

The disease affects hearing and balance with varying intensity and frequency but can be extremely debilitating.

 Its episodic attacks are thought to stem from the rupture of an inner-ear membrane.

Endolymphatic fluid leaks out of the vestibular system, causing havoc to the brain's perception of balance.

To stave off nausea, afflicted people must lie still, typically for several hours and sometimes up to half a day while the membrane self-repairs and equilibrium is restored, said Phillips, a UW research associate professor and director of the UW Dizziness and Balance Center. Because the attacks come with scant warning, a Meniere's diagnosis can cause people to change careers and curb their lifestyles.

Many patients respond to first-line treatments of medication and changes to diet and activity.

When those therapies fail to reduce the rate of attacks, surgery is often an effective option but it typically is ablative (destructive) in nature.

In essence, the patient sacrifices function in the affected ear to halt the vertigo -- akin to a pilot who shuts down an erratic engine during flight.

Forever after, the person's balance and, often, hearing are based on one ear's function.

With their device, Phillips and Rubinstein aim to restore the patient's balance during attacks while leaving natural hearing and residual balance function intact.

A patient wears a processor behind the affected ear and activates it as an attack starts. The processor wirelessly signals the device, which is implanted almost directly underneath in a small well created in the temporal bone.

The device in turn transmits electrical impulses through three electrodes inserted into the canals of the inner ear's bony labyrinth.

"It's an override," Phillips said. "It doesn't change what's happening in the ear, but it eliminates the symptoms while replacing the function of that ear until it recovers."

The specific placement of the electrodes in the bony labyrinth is determined by neuronal signal testing at the time of implant.
 The superior semicircular canal, lateral semicircular canal and posterior semicircular canal each receive one electrode array.

A National Institutes of Health grant funded the development of the device and its initial testing at the Washington National Primate Research Center.

The promising results from those tests led the U.S. Food and Drug Administration, in June, to approve the device and the proposed surgical implantation procedure.

Shortly thereafter, the limited surgical trial in humans won approval from the Western Institutional Review Board, an independent body charged with protecting the safety of research subjects.

By basing their invention on cochlear implants whose design and surgical implantation were already FDA-approved, Phillips and Rubinstein leapfrogged scientists at other institutions who had begun years earlier but chosen to develop novel prototypes.

"If you started from scratch, in a circumstance like this where no one has ever treated a vestibular disorder with a device, it probably would take 10 years to develop such a device," Rubinstein said.

The device epitomizes the translational advancements pursued at UW's academic medical centers, he said. He credited the team's skills and its access to the primate center, whose labs facilitated the quick turnaround of results that helped win the FDA's support.

A successful human trial could lead the implant to become the first-choice surgical intervention for Meniere's patients, Phillips said, and spark collaboration with other researchers who are studying more widespread balance disorders.

The first patient will be a 56-year-old man from Yakima, Wash. He has unilateral Meniere's disease and has been a patient of Rubinstein's for about two years.

See a related video at UW Medicine's YouTube site. Drs. Rubinstein and Phillips discuss the device: http://www.youtube.com/watch?v=iu047vTckvA

Cochlear Ltd. of Lane Cove, Australia, will manufacture the device. Cochlear is a medical equipment company and longtime maker of devices for hearing-impaired people.

Fuente:  http://www.sciencedaily.com/releases/2010/10/101021090028.htm

Protesis para restaurar el equilibrio en el Sindrome de Meniere: "Helping to Restore Balance After Inner Ear Disorder"

June 13, 2013 — Many disorders of the inner hear which affect both hearing and balance can be hugely debilitating and are currently largely incurable. 

Cochlear implants have been used for many years to replace lost hearing resulting from inner ear damage. 

However, to date, there has not been an analogous treatment for balance disorders resulting from inner ear disease. 

One potential new treatment is an implantable vestibular prosthesis which would directly activate the vestibular nerve by electrical stimulation.




This prosthetic treatment is tested in a new study by Christopher Phillips and his colleagues from the University of Washington in Seattle, USA. 

Their findings are published in the Springer journal Experimental Brain Research.

Meniere's disease is a disorder of the inner ear that can affect hearing and balance to varying degrees. 

The characteristic symptoms are episodes of vertigo, tinnitus, a feeling of pressure in the ears and hearing loss which tends to worsen as time goes on. 

Although there is medication which can help once an attack is underway, there is currently no long-term therapy which can resolve the disease completely.

Phillips and his colleagues have developed a vestibular prosthesis which delivers electrical stimulation to the fluid inside the semi-circular canals of the ear. 

In effect, the stimulation of the fluid makes the brain believe that the body is moving or swaying in a certain direction. 

This then causes a compensatory postural reflex to stabilize the posture thereby helping to restore balance.

For their study, this prosthesis was inserted into the ears of four subjects all suffering from long-term Meniere's disease and differing degrees of hearing loss which was resistant to other management strategies.

After a full evaluation of each participant's vestibular function, their eye function was measured in response to electrical stimulation along with their postural response both with their eyes open and closed.

The researchers found that electrical stimulation of the fluid in the semicircular canals of the affected ear did result in a change in posture, the direction of which was dependent on which ear was stimulated. 

However, each subject had different sway responses to the stimulation given. 

The authors believe this could be caused by small differences in the location of the electrode between subjects. 

Thus fine tuning and individual calibration for each electrode implant would be required for it to be effective.

Overall the results illustrate that this type of prosthesis may eventually be a possible treatment for balance issues caused by Meniere's disease. 

However, there are a large number of matters which would need resolving before it is ready for use. 

The lack of consistency in direction and magnitude of sway response would require further study to ensure that any prosthesis developed could give reliable results for different individuals.

The authors conclude: "Taken together, our findings support the feasibility of a vestibular prosthesis for the control of balance and illustrate new challenges for the development of this technology.

 This study is a first step in that direction."


Story Source:

The above story is based on materials provided by Springer Science+Business Media.
Note: Materials may be edited for content and length. For further information, please contact the source cited above.

Journal Reference:
  1. Phillips, C. et al. Postural responses to electrical stimulation of the vestibular end organs in human subjects. Experimental Brain Research, 2013 DOI: 10.1007/s00221-013-3604-3

Springer Science+Business Media (2013, June 13). Helping to restore balance after inner ear disorder. ScienceDaily. Retrieved October 28, 2013, from http://www.sciencedaily.com­ /releases/2013/06/130613104137.htm