Pratica di Shadowing: The New Hunt for the Colossal Squid - Impara a parlare inglese con i video

Creazione lezione...
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Ready?
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Inside the stomach of a sperm whale, there's an alarming amount of colossal squid.
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And look at this thing, it's huge!
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And scientists think something like 80% of a sperm whale's diet is this gigantic animal.
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Which means there's gotta be tons of them in the ocean, right?
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How hard could it be to find a live one in its natural habitat?
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Based on what we know about sperm whales, we figure these colossal squid primarily live here, deep in the ocean.
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To get there, we'll need a special submersible.
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Down here, sunlight can't reach.
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But wait, all around us, there's snow?
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For kilometers in every direction, there's nothing else.
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We strain our eyes to see, we're searching and searching, because the ocean is so much bigger than most people think.
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An adult colossal squid can be over 9 meters long.
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But down here, in our sub, it's like looking for a housefly in an arena with the lights off,
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using only your phone's flashlight and the weather's bad.
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So yeah, it's not looking great for our expedition.
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Hello?
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Fortunately, in 2025, 100 years after we first realized the colossal squid existed, we got incredibly lucky.
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Researchers caught this footage of a young one, an absolutely unbelievable find, entirely by accident.
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Just like this footage of an oarfish, or this genuinely terrifying footage of a big fin squid filmed by oil rig operators.
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We have evidence that gigantic, monstrous, beautiful, bizarre animals thrive in the cold depths of our oceans.
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But up until now, most of our discoveries have just been right place, right time.
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But what if I told you there's another way to discover the giant animals in our deep sea?
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And all we need is a drop of water.
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If you dive into the ocean searching for life, you want to be prepared with the right tools.
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And that depends entirely on how deep you plan to go.
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For the first 30 meters or so, you can use scuba gear to dive and look around.
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There's plenty of light here, and we spent tons of time studying these places.
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But despite that easy access, we still keep finding new species all the time.
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Experienced divers can go way farther, all the way down to about here.
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But they can't stay there long, so sometimes they leave experiments, like these artificial reefs, to pick up later.
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These were recovered in 2025 and unveiled around 20 entirely new species.
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But the farther down we go, the harder it gets to explore.
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By the time you get here, the pressure would make it feel like your entire body is being squeezed.
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So scientists use specialized underwater robots.
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Some work autonomously, and then they store data or video that's then retrieved after the dive.
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Others are tethered to a ship and send back data almost instantaneously.
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These can even have sampling arms, and they're equipped with all these cool different sensors.
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But when you turn on the lights down here, the first thing that you see is pieces of scales,
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and poop, and dust, and dead animals that drift down from the surface.
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This is nicely called marine snow.
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It's a really important food source for the animals down here, because sunlight struggles to reach this layer.
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We're not seeing much at this point, but the animals that we do see are so cool.
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Lots of them are transparent or they glow in the dark.
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It's like a whole alien carnival happening down there.
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But scientists discovered that there's something very weird happening in this part of the ocean.
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During World War II, sailors noticed this mysterious shadow on their sonar.
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It looked like the sea floor was only a couple hundred meters below them.
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But what was alarming was that it was moving.
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Every night this giant shadow would rise several hundred meters, inching closer to the ships, but every day it would drop away again.
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We later learned this wasn't the sea floor, and it wasn't some hidden fleet, and it wasn't some giant monster.
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It was the world's largest migration.
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Billions of tons of animals leaving this dark zone to feed in the upper layer at night.
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Every single night it's more biomass moving than like the Great Migration in Africa.
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Which means that hidden somewhere in all this empty is actually one of the most crowded places on Earth.
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Today we know that this giant shift happens all over the world.
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It's so big, it actually churns the water.
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And it's really important for the health of our planet.
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At the surface, phytoplankton pull carbon dioxide out of the air.
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And every night, billions of animals come up from the deep to eat those phytoplankton, bringing all that carbon waste deep into the sea, which speeds up how quickly it's removed from our atmosphere.
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Today, we still use sound waves to study this zone.
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The frequencies hint that there might be billions of tons of elusive animals down here.
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But sound alone can't tell us exactly what kinds of animals.
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And there's lots of unknown questions about who's moving, are they moving every night, is it different species?
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Some come up earlier, some come up later.
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Why do they do that?
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We have specialized nets, but many of their soft bodies break apart.
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And lots of them just avoid it entirely.
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So we try to see them, but the trouble is that lights and motors can scare away animals adapted for dark, silent isolation.
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We did find a giant monster down here.
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But it took so much work.
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In 2012, scientists used a red LED light, invisible to most animals down here, and removed any motors to reduce noise.
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And then they attached a special lure that flashed blue to mimic a certain jellyfish.
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They dropped it 700 meters deep. And then...
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A giant squid appeared filmed for the first time in its natural habitat.
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But that's not a colossal squid.
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Giant squid and colossal squid are different.
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And this took a lot of engineering, 20 years of data on the whales that eat these giant squids,
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over 100 dives and hundreds of hours just waiting to get these few minutes of footage.
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That's a huge amount of time, money, and resources for just a few minutes, but we want to go deeper.
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It's dark here.
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I mean pitch black.
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Any trace of light is quickly absorbed.
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We're in the largest single habitat on the planet, accounting for 70% of all seawater.
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And we know that giant animals like that squid haunt this place because we see the scars left behind on whales.
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But what else?
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A brand new, monstrous, beautiful species could be lurking right outside our field of view, and we would never know it.
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This is a major problem with deep sea ocean exploration so far.
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You just gotta get so lucky.
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Most of what we see down here are scavengers, but we're still diving.
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Now, welcome to the abyss.
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It looks like a desolate desert here, with vast plains of mud and minerals, little metal spheres that have gained a lot of attention for deep sea mining recently
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but also alarmingly gigantic animals like this 40 centimeter long isopod.
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That thing is 16 times bigger than its terrestrial relative.
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Or these 30 centimeter long amphipods that are over 10 times larger than their shallow water counterparts.
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We still don't fully understand why these animals grow to these enormous sizes down here.
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But our best guesses are that larger animals can go longer without eating and have slower metabolisms, which is great for a food-scarce environment.
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One of these giant isopods went five years without eating in captivity.
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Another is they evolved in isolation, which lets them grow to massive sizes without getting eaten.
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And the final one is about temperature, because it's freezing down here, 0 to 4 degrees Celsius.
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Colder water holds more oxygen, and freezing temperatures cause life to move in slow motion, letting cells grow to enormous sizes.
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You see this in the freezing waters around Antarctica, which results in something called polar gigantism.
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We think this is what led to the colossal squid and these gigantic sea spiders.
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Oh my god, the ocean is terrifying.
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Oh wait, look!
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The Dumbo octopus!
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He's so cute!
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He comes down here sometimes.
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But we're still going even deeper, into the Hadal Zone.
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Trenches here are deeper than Mount Everest is tall, and the pressure feels like a hundred elephants standing on your head.
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And yet, we're still uncovering tons of life.
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We've gotten really good at improving our tools for exploring the ocean at all levels.
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But the big point here is, it's often expensive and time-consuming and even dangerous,
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which is why so much of what's down here is still invisible to us.
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We needed a new tool.
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Ideally, a cheaper one.
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One that can give us a really broad view of our oceans
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and all of the life here and help us find that fly in the arena.
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And now we have one.
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So I'm using this special water sampling kit, but to buy this and all of the equipment
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that we use from our mics to our cameras to the software that we're going to use to edit this video, I used this.
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This.
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This is my real Mercury card.
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Mercury is the tool that I've used since Puge started to manage our finances.
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I can prove it to this is the email that I got activating my account right after I published our launch video.
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January 31st, 2022.
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So if you love our show, Mercury has genuinely been behind all of our productions.
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And the reason for that is that it's all just incredibly easy.
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Opening an account, sending a wire.
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None of it requires phone calls, paperwork or in-person visits.
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You don't have to do any mental gymnastics to figure out what you need to do.
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From the dumb stuff, I mean on my end, like that time that I lost my card and then froze my account and then found my card and unfroze my account,
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to the smart stuff like figuring out how to plan our finances and how we're going to make this show.
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It's a financial technology company, not a bank.
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If you want to learn more about what they do, you can check the link in the description or you can go to mercury.com.
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Now, back to our story.
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This little syringe holds traces of thousands of animals.
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I collected this sample from the Hudson River, so really who knows what's in here?
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But this is the same thing that scientists are doing in the deep ocean.
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All the way down through our oceans, life takes many different forms, but they all have something in common.
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They shed that snow, the feces and mucus and random scales and tissue particles.
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So they essentially leave behind like little signals of who they are.
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Sometimes I just get told I just study poop all day, but there's all kinds of junk that's left behind.
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And we get all the way from bacteria to fish, all the way up to whales and sharks.
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So if we dip into that water, pull it up and filter it, we can use those little pieces to extract DNA.
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Environmental DNA.
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E-DNA.
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So what can you do with just a little bit of water?
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You can do two things.
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The first is, you can chase a specific animal that you already know exists.
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Go find your fly in the arena.
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Imagine the ocean is a giant bowl of alphabet soup, and you put your spoon in there and you sample it.
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But you're only looking for the letter A.
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Researchers will use short, single-stranded DNA sequences as a sort of magnet.
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These will ignore all of the other letters in your soup and latch on to only the one that you want.
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We could say, well, they were here.
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We know they were here.
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And we've done this.
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This is an angel shark.
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It's critically endangered.
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And it's also an ambush predator that's really good at hiding.
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So for years, the only way that we saw them was when they were accidentally scooped up by fishermen, or just luckily spotted by divers.
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And so for a while we thought they were extinct in this one particular area.
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But then researchers sampled the water and they found spikes in angel shark DNA.
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So they sent the divers directly there.
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And sure enough, they found them.
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That sort of thing could help us really quickly find and protect and learn more about all kinds of species.
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It's being used right now to protect this guy and many others.
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This method can be faster than traditional methods and way less invasive.
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And speaking of invasive, we can also use it to identify where invasive species are.
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If one shows up in a port or in an area where it's not supposed to be, a dive team can really quickly go in and remove them.
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But what about searching the deep ocean for animals that we know are there, like the colossal squid?
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We are actually doing that right now in Antarctica.
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There's a group from New Zealand trying to take samples, and that's our goal is to try
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and identify all of the cephalopods in the samples
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and trying to actually see the colossal squid this could be so helpful compared to the luck that we need now.
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If you're sending a person out to look, they have to be there right at the right time.
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And so this is another way for us to sort of look backwards in time and say, well, was it here a day ago or two days ago?
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With enough sampling, there's a future where eDNA could tell us, hey, there's a lot of colossal squid DNA right here all the time,
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which could let us create heat maps of the animal's range.
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And it's not impossible to imagine a future where it doesn't
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take 20 years of whale studies to find a giant squid or a hundred years of just waiting for a lucky break.
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That is by itself incredible.
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But here's what I find most huge if true.
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What if we don't need to know who we're looking for?
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This is the second thing that you can do.
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You can hunt for the unknown.
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You remember this migration?
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Well, if we know that something is there, There's a good chance that eDNA can tell us who it is and at what times.
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So during the day, researchers go out
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and they collect liters of water from the surface
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and the Twilight Zone area to catch traces of hundreds of species at once.
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And instead of searching for one specific letter in that alphabet soup, they use something more universal, like, find me all the vowels.
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And this will flag a bunch of species and then sort them based on the differences in their genes.
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And later, scientists can go back out and repeat the same process at those locations.
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So then, if you look at the changes in the DNA samples during the day versus the night, suddenly we have a much clearer picture of who is migrating at what times.
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And we're doing this hunt for the unknown in the deep sea as well.
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For us biodiversity scientists, it's the last frontier of exploration.
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What she found with just water was incredible.
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A world that we'd never seen with our eyes.
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We're seeing that there is hot spots of biodiversity
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and we're detecting these amazing creatures that no one's really seen before, recorded before.
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A shark that we've only seen a handful of times.
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Giant squid.
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Even one animal that we so rarely see we once thought it was entirely extinct.
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All detected with just water.
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It's a really, really proof of concept that we can detect really small things in these huge, huge kilometer scales of water.
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But most exciting to me is when researchers first sampled this area of the abyssal plain.
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What they found was shocking.
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You are never gonna see the ocean the same way because of the DNA that came back, 90% of it was unknown.
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90% they call it dark taxa.
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We think there are over 2 million different marine species in our oceans.
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And estimates say that we have documented less than 10%.
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When we sample water and sequence DNA, we still have to compare that to the databases to find out what it is.
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But since we don't have the genome for nearly 90% of life in our oceans, a lot of it comes back unknown.
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Especially in the deep.
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These might be species that we know about but never genomed.
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Or it could be something entirely new.
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Researchers are starting to use machine learning and AI to help fill in those gaps.
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And the hope is that this could take dark taxa and group it into similar groups.
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So you could start to say, this unknown animal kind of looks like this one that we do know.
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We're trying to see like what is like the other.
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This looks like squid.
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Is it squid?
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But to do that, you need data.
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So that's the true new frontier of ocean discovery.
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Right now, we're in a big race to sequence our oceans.
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And the cool thing is we can preserve these eDNA samples and run them again years later with new information.
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For now, it's a bit of a black box.
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And that's okay.
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Because unlike our ROVs where we can only guess that something is lurking behind us, eDNA is telling us, hey, something is here.
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We just might not know what yet.
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That's not to say that this is easy.
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No, this is hard.
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For one thing, some animals shed more than others.
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DNA degrades really quickly in shallow waters.
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In the deep, it stays longer, but it's harder to collect.
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It's complicated.
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But the need to go deeper, to learn more, is more urgent than ever.
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Our planet's biggest ecosystem is changing faster than we can understand it.
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But fortunately, so is our technology to learn more.
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Because eDNA doesn't just give us a glimpse at what might be hiding.
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It also gives us a baseline for the health of our oceans.
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It's sort of like a totally different type of medical test for the environment that we can start to look at.
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So we can show it to the world and show them
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that these are really exciting habitats that are worth us caring about.
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And what's really cool is that anybody can be involved.
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They ask for samples from all over the world.
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I'm going to send off my sample and see what we find.
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As it gets better and as we put more effort and time into this, it's just going to explode and our applications in the deep sea are...
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We haven't even scratched the surface of what we can do yet.
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But as we continue to learn more,
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we'll find new tech and new life and new ghosts in the deep calling for us to go find them.
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you

Contesto & Sfondo

Nel video "The New Hunt for the Colossal Squid", esploriamo le profondità sconosciute dell'oceano e scopriamo le meraviglie e i misteri del calamaro colossale. La narrazione è vivace e coinvolgente, portando gli spettatori in un viaggio attraverso la scienza marina, le scoperte casuali e la bellezza delle creature oceaniche. L’intervista ai ricercatori e le preziose informazioni sulle loro esplorazioni rendono il video un'ottima risorsa per chi vuole imparare l'inglese con youtube, arricchendo il proprio vocabolario e migliorando le abilità di ascolto.

Top 5 Frasi per la Comunicazione Quotidiana

  • "It's huge!" - Esprime meraviglia riguardo a qualcosa di grandioso.
  • "How hard could it be?" - Utilizzata per esprimere scetticismo sulla difficoltà di un compito.
  • "We're searching and searching." - Indica l'azione di cercare senza sosta.
  • "We got incredibly lucky." - Usata per descrivere un evento fortunato.
  • "It feels like your entire body is being squeezed." - Una descrizione di una sensazione intensa, utile in conversazioni descrittive.

Guida Passo-Passo al Shadowing

Per affrontare la difficoltà di questo video e migliorare le proprie competenze in inglese, seguite questi passaggi pratici utilizzando la tecnica del shadow speech:

  1. Ascoltare attentamente: Guardate il video una volta senza sottotitoli per familiarizzare con il contenuto.
  2. Prendere appunti: Annotate le frasi chiave o difficili, in particolare quelle che vi colpiscono di più.
  3. Ripetere ad alta voce: Utilizzate il shadowing site per ripetere frasi mentre le ascoltate. Questa pratica di shadowing in inglese vi aiuterà a migliorare la pronuncia e il ritmo.
  4. Registrare e riascoltare: Registrate la vostra voce mentre parlate, poi confrontatela con l'originale. Questo vi aiuterà a riconoscere aree di miglioramento.
  5. Praticare la ripetizione: Ripetete l’esercizio più volte fino a sentirvi a vostro agio con il linguaggio e la dizione. Se necessario, tornate sui punti difficili.

Questa strategia non solo migliora le vostre abilità orali, ma rende anche l'apprendimento dell'inglese un'esperienza coinvolgente e interessante. Combinando le tecniche di shadow speak con contenuti affascinanti come questo, diventerete più sicuri e competenti nelle vostre conversazioni quotidiane.

Cos'è la tecnica dello Shadowing?

Shadowing è una tecnica di apprendimento delle lingue supportata da studi scientifici, originariamente sviluppata per la formazione dei traduttori professionisti e resa popolare dal poliglotta Dr. Alexander Arguelles. Il metodo è semplice ma potente: ascolti un audio in inglese di madrelingua e lo ripeti immediatamente ad alta voce — come un'ombra che segue il parlante con un ritardo di solo 1–2 secondi. A differenza dell'ascolto passivo o degli esercizi di grammatica, lo shadowing costringe il tuo cervello e i muscoli della bocca a elaborare e riprodurre simultaneamente i modelli di discorso reale. La ricerca dimostra che migliora significativamente la precisione della pronuncia, l'intonazione, il ritmo, il discorso connesso, la comprensione dell'ascolto e la fluidità del parlato — rendendolo uno dei metodi più efficaci per la preparazione alla prova di speaking dell'IELTS e per la comunicazione reale in inglese.