Mostrando entradas con la etiqueta Electric Eel. Mostrar todas las entradas
Mostrando entradas con la etiqueta Electric Eel. Mostrar todas las entradas

viernes, 22 de diciembre de 2017

Electric eel inspires bio-friendly power source, what happens next may shock you

Could a device inspired by the electric eel offer a safer way to power medical implants?
Scientists are always on the lookout for safer, more natural ways to power devices that go into our bodies. After all, who really needs toxic battery elements and replacement surgery?

One organism that is pretty good at generating biocompatible power (for itself, at least) is the electric eel, and scientists have now used the high-voltage species as a blueprint for a promising new self-charging device that could one day power things like pacemakers, prosthetics and even augmented reality contact lenses.

Electric eels generate voltage through long stacks of thin cells that run end-on-end through their bodies. Called electrocytes, these cells create electricity by allowing sodium ions to rush into one end and potassium ions out the other, all at the same time. The voltage created by each cell is small, but together, the stacks within a single eel can generate as many as 600 V.

To recreate this effect, researchers from the University of Fribourg, the University of Michigan and the University of California San Diego turned to the difference in salinity between fresh and saltwater. They deposited hydrogel, ion-conducting blobs onto clear plastic sheets and separated them with ion-selective membranes.

Hundreds of blobs containing salt and freshwater were arranged in an alternating pattern. When the team had all these gel compartments make contact with one another, they were able to generate 100 V through what is known as reverse electrodialysis, where energy is generated through differing salt concentrations in the water.

While the eel triggers the simultaneous contact of its electrocytes using a neurotransmitter called acetylcholine as the command signal, the team achieved this by carefully working a special origami pattern – called a Miura-ori fold – into the plastic sheet. This meant that when pressure was applied to the sheet, it quickly snapped together and the cells shifted into exactly the right positions to create the electricity.

The device, which the team calls an artificial electric organ, isn't in the same ball park as an eel in terms of output, but the researchers do have some ideas around how to boost its efficiency. It points to the metabolic energy created by ion differences in the eel's stomach, or the mechanical muscle energy, as some of the possibilities, but does note that recreating these would be a major challenge.

"The electric organs in eels are incredibly sophisticated, they're far better at generating power than we are," Mayer said. "But the important thing for us was to replicate the basics of what's happening."

The research was published in the journal Nature. You can hear from Mayer in the video below.


 



Source: University of Fribourg, University of Michigan

ORIGINAL: NewAtlas
Nick Lavars
December 14th, 2017

miércoles, 8 de junio de 2016

Electric Eels Found To Leap Out Of Water To Shock Predators

Main image credit: Josh More/Flickr CC BY-NC-ND 2.0
ELECTRIC EELS HAVE BEEN FOUND TO SHOW SHOCKING LEAPING BEHAVIOR.
As if growing up to 2 meters and being able to produce an electric shock equivalent to that of a Taser isn’t impressive enough, researchers have confirmed a more unusual aspect about the electric eel. It seems that the animal, which isn’t actually an eel but a type of knife fish, isn’t content with just shocking its attackers underwater, but that under the right conditions they will leap out of the water to stun predators. 

More than 200 years ago, when the famous Prussian naturalist and geographer Alexander von Humboldt made the first scientific exploration to describe Latin America he faced many difficulties. But one of his most famous encounters occurred on March 19, 1800, when he described how locals caught electric eels by driving horses into the river, where the fish would then leap out of the water and stun the poor animals. This dramatic description quickly entered into legend, but in the centuries that followed no one had seen this unusual behavior repeated, leading most to think that von Humboldt exaggerated his electric experiences with the eels.

Yet it seems that there is far more truth to these accounts than anyone had previously given credit for. “The first time I read von Humboldt's tale, I thought it was completely bizarre,explains Kenneth Catania, who has described this behavior for the first time in the Proceedings of the National Academy of Sciences. “Why would the eels attack the horses instead of swimming away?” 
The eel jumps up to place its chin on the "predator" before shocking it. Kenneth Catania/Vanderbilt University
He actually corroborated these original accounts in the first place by accident. Studying the eels at Vanderbilt University, he was attempting to catch them from their tank using a metal rimmed net (“In hindsight, probably wasn't the best design to use,” he notes). He found that every so often, the eels would leap from the water and press their chins against the net, while at the same time generating a series of high-voltage pulses.

By measuring the power of the shocks used during this electric behavior, Catania was able to determine that the eels used a different shocking pattern than they used to stun prey. He found that they only leap from the water to attack living animals that are partially submerged, and did so with more frequency when the water level in their tank was lowered. This, suggests Catania, implies that the behavior is used to protect themselves against land-based predators when the eels feel cornered or threatened, such as in the dry season when the water levels are much lower. This is also the time when some of the eels breed.


But why leap from the water, rather than just sidling up close? Well, it seems that the higher up the intruder they can get, the more powerful the shock they deliver. When shocking in the water, the electric current dissipates through the water, but by hitting the target with its chin and then shocking, the current travels through the target's body. “This allow the eels to deliver shocks with a maximum amount of power to partially-submerged land animals that invade their territory… [while] also allow[ing] them to electrify a much larger portion of the invader's body,says Catania.

So after over two centuries of doubt and despite great interest in the animals, it seems that von Humboldt has finally been proven to be right, and that electric eels really do jump from the water to attack predators.

jueves, 22 de octubre de 2015

The Way Electric Eels Kill is Even Cooler Than We Realized


Electric eels are among the most badass predators on planet Earth. How many other creatures can deliver a shock powerful enough to paralyze a horse? But their superpowers are even more impressive than we realized. These eels don’t just use electricity to attack, they use it to see.

That’s the conclusion of a fascinating study published today in Nature Communications. In a series of laboratory experiments, neurobiologist Ken Catania and colleagues show how electric eels “electrolocate” their prey after paralyzing it, using energy fields to locate and swallow hapless victims almost instantly.

The eel can use its electric attack simultaneously as a weapon and a sensory system,” Catania told National Geographic. “It’s sort of a science-fiction-like ability.

Electric eels, which are actually a type of catfish, slink quietly about in the murky depths of the Amazon River, looking for ill-fated creatures on which to discharge their 600-volt weapon. We’ve known of the eel’s formidable hunting ability for decades, but the exact mechanics have proven difficult to study (you try capturing an 8 foot-long living taser and bringing it back to the lab—it ain’t easy).

Catania is more persistent than most. In a study published last year inScience, he showed that electric eels’ high voltage attacks can stimulate their prey’s motor neurons, causing involuntary muscle twitching. Using two or three small electric volleys, the eels will force prey to give away their location before charging up and delivering the paralyzing blow.

Electric eel honing in on an electrically conductive stimulus (red arrow), before initiating its suction-feeding strike. Image Credit: Catania et al. 2015
But how does the eel find its lunch once that prey is disabled? As Catania points out, electric eels will strike and engulf their victims lightning fast — usually within milliseconds.

Electricity figures in here, too, according to a series of laboratory experiments performed by Catania and his colleagues. National Geographic explains:

To understand what was happening, Catania brought electric eels into the lab and presented them with anesthetized fish that were insulated from the eel’s electroreceptors by plastic bags. With an electrode, Catania made the fish flinch, and the eel discharged its high-voltage attack. But then it didn’t seem to know what to do next—the eel lunged in the direction of movement in the water but didn’t attempt to suck the fish into its mouth.

Catania then put an electrically conductive carbon rod into the tank along with the fish. He made the fish flinch, and the eel attacked with a shock. Sometimes the eel started to move in the direction of the fish, but then it changed course to lunge at the rod wherever it had been placed in the tank. To the eel, the fish seemed to be in two places at once.

What these experiments are showing is that electric eels don’t just use voltage to immobilize prey: They follow electric fields, in order to track it. This places the eel in league with sharks, rays, and certain African fish as a predator that can electrolocate—an adaptation that’s similar to echolocation in bats and dolphins.

Me, I’m just grateful this particular hunting ability seems restricted to the water.

[Read the full scientific paper at Nature Communications h/t National Geographic]

domingo, 7 de diciembre de 2014

Electric Eels Remotely Control the Movements of Their Prey

photo credit: Electric eel (Electrophorus electricus) / Kenneth Catania

Electric eels are badass. Not only can they produce an incapacitating 600-volt zap -- five times that of a U.S. wall socket -- they can also remotely control their prey through water. The predatory eels create a variety of electric discharges that range from lower-voltage ones sent out as environmental sensors to high-voltage strikes that allow them to hijack the nerves of their prey -- immobilizing the muscles and preventing escape. They can even send out short pulses that force the prey to give up their location. The findings were published in Science this week. 

To understand the mechanism of the eel’s shocking strike, Vanderbilt University’s Kenneth Catania conducted a series of experiments in large aquariums equipped with various detectors. When placed in tanks with delectable fish and worms, the scale-less Amazonian Electrophorus electricus releases pulses of electricity that appear to stun the prey and freeze them in place. Using a high-speed video system, he observed that an eel begins an attack with a high-frequency volley of high-voltage pulses up to 15 milliseconds before striking. In just three milliseconds, the fish are completely paralyzed. They regain mobility after a short period, and they could swim away if the eel doesn’t get to them first.

Add caption
I have some friends in law enforcement, so I was familiar with how a Taser works,” Catania says in a news release. “And I was struck by the similarity between the eel’s volley and a Taser discharge. A Taser delivers 19 high-voltage pulses per second while the electric eel produces 400 pulses per second.” To the right is an eel in mid-attack on an immobilized fish.

The electric discharge induces an immobilizing whole-body muscle contraction by activating the motor neurons that control the prey fish’s muscles -- and not by controlling the muscles directly. Catania placed two fish behind a barrier: One was injected with saline solution, the other was injected with a paralytic agent that targets the nervous system. The muscles of the fish with the saline solution contracted involuntarily in response to the eel’s electrical discharges, but the fish given the paralytic drug showed no contractions. 

Furthermore, if the prey is nearby but hiding in rocks or plants, the eel can emit periodic, millisecond pulses of two or three discharges (doublets or triplets) that cause massive muscle twitches. Once the rapid contractions reveal the prey’s location, the eel throws down a full, tetanus-inducing volley. 


Normally, you or I or any other animal can’t cause all of the muscles in our body to contract at the same time,Catania says. “However, that is just what the eel can cause with this signal.”

These high-voltage discharges allow the eels to remotely control the prey’s neural pathways by mimicking the normal electrical pulses that the fish’s own neurons send to stimulate its muscle movement. Check out some great footage here: 


ORIGINAL: IFLScience
by Janet Fang
December 5, 2014