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11 April 2013

Bionic Hand

PART 4

Kuiken need an amplifier to boost the signals form the nerves, avoiding the need for a direct splice. He found one in muscle. When muscles contract, they give off an electrical brust strong enough to be detected a technique to reroute severed nerves from their old, damaged spots to other muscles that could give their signals the proper boost.

Bionic woman Kitts imagines a hand movement, and muscle activity in her residual arm-decoded by a computer on her back causes the actual motion. When she straps on the actual motion. When she staps on the experimental Johns Hopkins-developed arm at the Rehabilitation Institute of Chicago, she says, "often it feels like I'm not missing anything."

In October 2006 Kuiken set about rewiring Amanda Kitts. The first step was to salvage major nerves that once went all the way down her arm. "These are the same nerves that work the arm and hand, but we had to create four different muscle areas to lead them to, "Kuiken says. The nerves started in Kitts's brain, in the motor cortex, which holds a rough map of the body, but they stopped at the end of her stump-the disconnected telephone wires. In an intricate operation, a surgeon rerouted those nerves to different regions of Kitts's upper-arm muscles. For months the nerves grew, millimeter by millimeter, moving deeper into their new homes.

"At three months I started feeling little tingles and twitches," says Kitts. "By four months I could actually feel different places and feel different fingers." What she was feeling were part of the phantom arm that were mapped into her brain, now reconnected to flesh. When Kitts thought about moving those phantom fingers, her real upper-arm arm muscles contracted.

A month later she was fitted with her first bionic arm, which had electrodes in the cup around the stump to pick up the signals from the muscles. Now the challenge was to convert those signals into commands to move the elbow and hand.

"Now I'm able to see silhouettes of trees again," says Jo Ann Lewis. "That's oneof the last things I remeber seeing naturally. Today I can see limbs sticking out this way and hat."

A storm of electrical noise was coming from the small region on Kitts's arm. Somewhere in there was the signal that meant "straighten the elbow" or "turn the wrist." A microprocessor housed in the prosthesis had to be programmed to fish out the right signal and send it to the right motor.

10 April 2013

ZeroXposur Men's Delta Solid Golf Polo

Bionic Hand

PART 2

Kitts is living proff that, even though the flash and bone may be damaged or gone, the nerves and parts of the brain that once controlled it live on. In many patients, they sit there waiting to communicate-dangling telephone wires, severed from a handset. With microscopic electrodes and surgical wizardry  doctors have begun to connect these parts in other patients to devices such as cameras and microphones and motors. As a result, the blind can see, the deaf can hear, and Amanda Kitts can fold her shirts.

Kitts is one of "tomorrow's people", a group whose missing or ruined body parts are being replaced by devices embedded in their nervous systems that respond to commands from their brains. The  machines they use are called neural prostheses or-as scientists have become more comfortable with a arm made popular by science fiction writers- bionics. Eric Schremp, who has been a quadriplegic since he shattered his neck during swimming pool dive in 1992, now has an electronic device under his skin that mind and machine an array of sensors tracks muscle movements that Amanda Kitts produces in her residual arm thanks to surgically rerouted nerves. Next generation prostheses obey relayed signals, increasingly working like her original limb. Lets him move his fingers to grip s fork. Jo Ann Lewis, a blind woman, can see the shapes of trees with the help of a tiny camera that communicates with the her optic nerve. And Tammy Kenny cans peak to her 18-month-old son, Aiden,and he can reply, because the boy, born deaf, has 22 electrodes inside his ear that change sounds picked up by a microphone into signals his auditory nerve can understand.

The work is extremely delicate, a series of trials fills with many errors. As scientists have learned that it's possible to link machine and mind, they have also learned how difficult it so to maintain that connection. If the cup atop Kitts arm shifts just slightly, for instance, she might not be able to close her fingers. Still, bionics represents a big leap forward, enabling researchers when Kitts thinks about flexing her elbow, the phantom moves, and the artificial elbow bends. "I don't really think about it. I just move it, "she says. To give people back much moreof what they've lost than was ever possible before.

"That's rally what this work is about : restoration," says Joseph Pancrazio, program director for neural engineering at the National Institute of Neurological Disorders and Stroke. "When a person with a spinal-cord injury can be in a restaurant, feeding himself, and no one else notices, that is my definition of success."

to be continued ......