navigate – Earlybirds Invest https://earlybirdsinvest.com Latest Crypto News Tue, 01 Apr 2025 11:43:10 +0000 en-US hourly 1 https://wordpress.org/?v=6.9.7 https://i0.wp.com/earlybirdsinvest.com/wp-content/uploads/2024/12/cropped-New-Project-2024-12-17T235703.455.png?fit=32%2C32&ssl=1 navigate – Earlybirds Invest https://earlybirdsinvest.com 32 32 240146708 Animal migration: How do sea turtles navigate the ocean? https://earlybirdsinvest.com/animal-migration-how-do-sea-turtles-navigate-the-ocean/ https://earlybirdsinvest.com/animal-migration-how-do-sea-turtles-navigate-the-ocean/#respond Tue, 01 Apr 2025 11:43:09 +0000 https://earlybirdsinvest.com/animal-migration-how-do-sea-turtles-navigate-the-ocean/

Each year, in late spring and early summer, female sea turtles will crawl out of the ocean under moonlight to lay their eggs in the sand, often returning to the same beach on which they were born many years earlier.

Sometimes when the turtles emerge to nest, researchers like Julianna Martin are watching patiently from the shadows.

Julianna Martin collecting tears from a female sea turtle on a beach in Florida. Her research was carried out in accordance with UCF Marine Turtle Research Group permit MTP-171.

Julianna Martin collecting tears from a female sea turtle on a beach in Florida. Her research was carried out in accordance with UCF Marine Turtle Research Group permit MTP-171.
Courtesy of Julianna Martin

For her doctoral research, Martin, a PhD student at the University of Central Florida, has been analyzing sea turtle tears. Yes, the tears of sea turtles. So on several summer nights in 2023 and 2024, she’d stake out beaches and wait for the turtles to start laying eggs. At that point, the reptiles enter a sort of “trance,” she said, allowing scientists like her to collect samples, including tears.

Martin told me she would army crawl up to the turtles on the sand and dab around their eyes with a foam swab, soaking up the goopy tears they exude. Sea turtles regularly shed tears as a way to expel excess salt from their bodies. (As far as we know, they are not sad.)

Martin would then take those tears back to her lab for analysis.

This odd work serves a purpose. Martin is examining sea turtle tears to see if they contain a specific kind of bacteria. Such a discovery, she said, could help unlock one of biology’s biggest and most awe-inspiring mysteries: how animals navigate using Earth’s invisible magnetic field.

The “holy grail” of sensory biology

After baby turtles hatch, they dig their way out of the sand and crawl into the ocean, where they embark on an epic journey that can take them thousands of miles across the open sea. Loggerheads that hatch in Florida, for example, swim across the Atlantic and reach islands off the coast of Portugal, before eventually returning to Florida’s beaches as adults to nest.

Remarkably, the turtles typically return to the same region of Florida or even to the same beach.

“These young turtles can guide themselves along that 10,000-mile migratory path despite never having been in the ocean before and despite traveling on their own,” said Kenneth Lohmann, a biologist at University of North Carolina at Chapel Hill who studies sea turtle navigation.

A green sea turtle with visible tears covered in sand nesting on a beach.

A green sea turtle with visible tears covered in sand nesting on a beach.
Getty Images/iStockphoto

Researchers like Lohmann have learned that sea turtles, like many other species, seem to navigate using Earth’s magnetic field. That’s the subtle magnetic force — generated by the planet’s molten metal core — that surrounds Earth, not unlike the force around a bar magnet. The intensity and direction of the field vary across Earth’s surface, making it useful for navigation. Plus, the magnetic field is present even when other spatial cues, like light, are not.

What remains a mystery, however, is how animals sense these magnetic forces. Decades of research have failed to turn up a mechanism for so-called magnetoreception or any kind of specialized organ that can sense magnetic force. As Martin’s adviser Robert Fitak has written, it’s like knowing an animal can respond to something visual but not finding any eyes.

“It’s the last sense we effectively know nothing about,” sensory biologist Eric Warrant has said about magnetoreception. “The solution of this problem I would say is the greatest holy grail in sensory biology.”

Scientists have proposed a number of theories for how this might work. And all of them are totally bonkers.

The prevailing theory is rooted in quantum mechanics, and it is extremely complicated. The theory posits that when certain light-sensitive molecules known as cryptochromes absorb light, they produce something called radical pairs — two separate molecules each with one unpaired electron. Those two unpaired electrons are quantumly entangled, which essentially means that their spin states are interdependent: They either point in the same direction or opposite directions, and they ping-pong between the two.

This theory suggests that Earth’s magnetic field influences the spin states of those radical pairs, and that, in turn, affects the outcome of chemical reactions in the body of animals. Those chemical reactions — which animals can theoretically interpret, as they might, for example, smells or visuals — encode information about Earth’s magnetic field. (If you want to dive deeper, I suggest watching this lecture or reading this paper.)

Another theory suggests that animals have bits of magnetic material in their bodies, such as the mineral magnetite. According to this theory, those magnetic bits are influenced by Earth’s magnetic field — just like a compass — and animals can sense those influences to figure out where they’re going.

Martin and Fitak’s research is exploring this latter theory, but with an important twist. They suspect that sea turtles and other animals might rely on magnetite to sense Earth’s magnetic field but may not produce the magnetite themselves. Instead, they suggest, sea turtles may have a symbiotic relationship with magnetite-producing bacteria — literally living compasses — that sense the magnetic field and somehow communicate information back to the turtle.

This isn’t an outrageous idea. Magnetic bacteria — more technically, magnetotactic bacteria — is real, and quite common in aquatic environments around the world. Plus, there’s evidence that magnetotactic bacteria help another microscopic organism, known as a protist, navigate. The question is, could they help turtles navigate, too?

Magnetic bacteria is a thing

Magnetotactic bacteria are extremely cool. These microscopic organisms have what are essentially built-in compass needles, said Caroline Monteil, a microbial ecologist at the French research institute CEA. The needles comprise chains of magnetic particles produced by the microbes, which you can see under a microscope (shown in images below). Remarkably, those needles align the bacteria with Earth’s magnetic field lines, just like a real compass needle does. As the bacteria roam about, they move in line with the direction of the planet’s magnetic force.

Magnetotactic bacteria under a microscope. The black arrows point to chains of structures that contain tiny magnetic particles.

Magnetic sensing is useful for the bacteria, said Fitak, an assistant professor at UCF. Magnetotactic bacteria need specific levels of oxygen to survive, and those levels tend to vary with depth. Deeper levels of sediment in a stream, for example, might have less oxygen. In most of the world, the direction of the magnetic field is at least somewhat perpendicular to Earth’s surface — meaning, up and down — allowing the bacteria to move vertically through their environment to find the optimal habitat, as if they’re on a fixed track.

In at least one case, magnetic bacteria team up with other organisms to help them find their way. A remarkable study published in 2019 found that microscopic organisms in the Mediterranean Sea called protists were able to sense magnetic forces because their bodies were covered in magnetic bacteria. When the authors put the north pole of a bar magnet next to a water droplet full of protists, they swam toward it. When they flipped the magnet, the protists swam away. (Different magnetic microbes are attracted to either north or south poles, often depending on where on Earth they live.)

You can actually see this in the video below.

It’s not clear how the magnetic bacteria are actually guiding the protist, said Monteil, the study’s lead author.

Now, returning to the turtles: The theory that Fitak and Martin are exploring is that sea turtles, like protists, might also have magnetotactic bacteria — those living compasses — in their bodies, and somehow be able to read them. Some microbes in the microbiome aid in digestion. Others provide directions. Maybe.

One idea, Martin says, is that the bacteria could aggregate near nerves in the turtles that provide information about their position in space. Some of those nerves are near the tear ducts, she said — which is ultimately why she was army crawling on the beach to collect turtle tears. The goal, she said, is to figure out if those tears contain magnetotactic bacteria. That would be one indication that these animals might be using bacteria for navigation.

“We’re not entirely sure how magnetotactic bacteria could be facilitating a magnetic sense, but that seemed like a good place to start,” Martin said.

Martin swabs a green sea turtle on a boat in Florida’s Indian River Lagoon. Her research was carried out in accordance with UCF Marine Turtle Research Group permits MTP-231 and NMFS 26268.

Martin swabs a green sea turtle on a boat in Florida’s Indian River Lagoon. Her research was carried out in accordance with UCF Marine Turtle Research Group permits MTP-231 and NMFS 26268.
Courtesy of Julianna Martin

While her research is still underway, Martin has yet to find evidence of magnetotactic bacteria in the tears of the 30 or so turtles she’s analyzed so far. That’s disappointing, she said, but it doesn’t rule out the possibility that these bacteria exist somewhere in the body of a turtle and help them navigate.

“There are so many other ideas about ways that magnetotactic bacteria could provide information to an organism about Earth’s magnetic field,” she said. “There’s a variety of other locations and other taxa that might be better for studying this theory.”

Other scientists who study animal navigation are skeptical.

It’s unlikely that symbiosis with magnetotactic bacteria is what enables sea turtle navigation, said Monteil. Part of the problem is that there’s no known mechanism through which the bacteria would communicate with the turtle. It’s also not clear what magnetotactic bacteria would get out of this relationship, if it is indeed symbiotic — could sea turtles provide the conditions bacteria need to survive? Maybe. Maybe not.

What’s more, Monteil said, is that magnetotactic bacteria are widespread in the environment, so even if Martin did find them in sea turtle tears, it would do little to prove the theory. Just because magnetic bacteria are present doesn’t mean they’re helping the animal navigate.

But then again, other theories are still entirely unproven, too — and some of them are a lot weirder.

“I don’t think it is impossible,” Monteil said of sea turtles and other organisms using magnetic bacteria to navigate. “Nothing is impossible. Life is amazing and has found ways to do things that we couldn’t imagine centuries before.”

“We don’t know until we know.”

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Here’s How to Navigate the Yen Carry Trade in 2025 as Japan Faces Economic Shift: Bybit https://earlybirdsinvest.com/heres-how-to-navigate-the-yen-carry-trade-in-2025-as-japan-faces-economic-shift-bybit/ https://earlybirdsinvest.com/heres-how-to-navigate-the-yen-carry-trade-in-2025-as-japan-faces-economic-shift-bybit/#respond Sun, 23 Feb 2025 13:47:15 +0000 https://earlybirdsinvest.com/heres-how-to-navigate-the-yen-carry-trade-in-2025-as-japan-faces-economic-shift-bybit/

The leading crypto derivatives trading platform, Bybit, has outlined potential challenges awaiting the Japanese yen carry trade in 2025 as the Bank of Japan (BoJ) implements policy changes and faces evolving economic conditions.

According to the report, the yen’s status as a primary funding currency in the foreign exchange (FX) market could be questioned in the coming months. The evolving Japanese financial landscape could see an increased risk of rapid unwinding in yen carry trades, raising the need for alternative funding currencies and a diversification of currency exposure for traders.

Effectiveness of the Yen Carry Trade

Over the last three decades, the BoJ has maintained ultra-loose monetary policies, sustaining a zero or negative interest rate environment to fight inflation and stimulate economic growth. As a result, the yen carry trade has been a fundamental strategy for traders in global FX markets.

Carry trade is a strategy where FX traders take advantage of differences in interest rates between currencies. This popular investment strategy entails borrowing money in currencies with low interest rates and investing in stocks and bonds based on other currencies with higher interest rates.

Due to the yen’s low interest rates, it has remained an attractive funding currency over the years. Bybit noted that the effectiveness of the yen carry trade has been closely linked to global economic conditions like the U.S. Federal Reserve’s aggressive rate hikes. However, this carry trade has also been vulnerable to periods of financial stress and is becoming increasingly reliant on stable currency conditions.

This year, macroeconomic factors reshaping Japan’s economy are driving a significant transformation in the landscape for the yen trade. These factors include rising inflation, wage growth, and speculation about changes in the BoJ’s monetary policies.

Adaptability and Diversification

Before now, Japan has struggled with deflation and stagnant wage growth; however, recent years have seen inflation consistently surpass the BoJ’s long-standing 2% target. Since the BoJ has historically maintained ultra-loose policies, growing inflationary pressures may cause the central bank to hike interest rates. The implications of such decisions could cause a ripple effect in global FX dynamics, altering the yen’s appeal for carry trades.

While the yen may continue to serve as the preferred currency for carry trades, the BoJ’s actions could gradually reduce its dominance.

Bybit said FX traders could explore other high-yielding currencies like the Mexican peso (MXN), South African rand (ZAR), and Turkish lira (TRY) as alternatives to the yen; however, each currency comes with risks.

“Ultimately, the key to navigating the evolving carry trade landscape in 2025 lies in adaptability,” Bybit noted, adding that traders need dynamic risk management strategies and diversification to remain afloat.

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I keep using my face to navigate my smartwatch (if you know, you nose) https://earlybirdsinvest.com/i-keep-using-my-face-to-navigate-my-smartwatch-if-you-know-you-nose/ https://earlybirdsinvest.com/i-keep-using-my-face-to-navigate-my-smartwatch-if-you-know-you-nose/#respond Sun, 09 Feb 2025 04:47:44 +0000 https://earlybirdsinvest.com/i-keep-using-my-face-to-navigate-my-smartwatch-if-you-know-you-nose/
A use navigates their Apple Watch Series 10 using their nose.

Kaitlyn Cimino / Android Authority

For one reason (coffee) or another (a small child), I constantly find myself with full hands. Simultaneously, the organization of the day relies heavily on a carefully curated alarm schedule. As a result, I am often left desperately trying to dismiss my buzzing smartwatch with just one hand. While I’m well aware of gesture controls, a deviant part of my brain insists on making do with another appendage instead: my nose.

Do you use your nose to navigate your wearable?

124 votes

Blame it on being a millennial, but I struggle with the principle of delayed gratification when it comes to tech. My adrenaline spikes at the sight of an alert, the feel of a vibration, or the sound of a ping. I need the dopamine hit that comes from seeing what’s happening on my device. You should see me when I can’t figure out which of the 15 fitness trackers on my desk is vibrating. Needless to say, if the device on my wrist wants to show me something, I need to see it, even if it means abandoning my dignity. Rather than waiting until my fingers are free, I am that person in the cereal aisle, nosing her smartwatch.

Apple Watch Series 9 Double Tap

Kaitlyn Cimino / Android Authority

I know that gesture controls aren’t exactly new. These “hand-free” options aim to make tech more accessible and convenient, and for the most part, I applaud the effort. But the truth is, they rarely live up to expectations. For example, I was very excited to test Apple’s Double Tap when it launched, but a generation later, it still doesn’t offer the functionality I actually want. Most of the time, I end up looking like I’m trying to make a tiny alligator hand puppet chomp air. My nose, on the other hand, offers more tangible interactions — even if I look equally ridiculous doing it.

Unlike gesture controls, my nose offers more tangible interactions.

When an alarm sounds, I take my watch to the face and hit snooze. When my family chat blows up, I nod up and down to see which sibling is cracking a joke. When the notifications I keep forgetting to disable pop up excessively, I Pinocchio them right back into the ether.

A users' Galaxy Watch 5 Pro shows excessive smudges on its screen.

Kaitlyn Cimino / Android Authority

Ironically, my nose faces similar issues as my fingers. (Yes, I’ve done this enough times that I’ve even identified problem areas). First, like any fair-skinned freckle face, I was taught to fear the wrath of the sun at an early age and apply SPF accordingly. A greasy nose doesn’t play great with touchscreens, and the resulting smudges are gross enough to make me question my life choices. Likewise, if my watch is wet, my nose’s tippy taps are even less effective.

Cold and flu season isn’t great for this method, either. Nasal runoff (aka boogers) can mess with the screen’s responsiveness. Considering winter gloves are one of the biggest hindrances to touchscreen use, it’s unfortunate that cold weather and stuffy noses often go hand in hand. Notably, your chin will work, but it’s a bit of a blunt instrument. With my nose, I can still see the screen as I scroll down a text thread or tap into a notification. It’s not the most refined behavior, but I make it as respectable as I can. Using my chin? Well, it’s more of a pecking-chicken motion.

SPF sunscreen still poses an issue, and so does a wet touchscreen.

The more I digress, the more I realize this is not my finest act as a wearables reviewer, but hey, I know I am not alone. At least one other Android Authority editor, who will remain nameless, signed off on this assignment in light of their own experience with nose-based interactions. I also found some Reddit threads of people celebrating the innovative use of their snouts. I can confirm that the elbows and toes will also work, as will presumably most body parts. If you find yourself holding a baby when a text comes in, their little feet also do the trick. I’d assume their adorable noses would also work, but I can’t, in good conscience, condone that.

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