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Scientists Warn a Silent Oxygen Crisis Is Spreading Through Earth’s Waters
Oxygen is declining across oceans, coastal waters, rivers, lakes and streams, threatening the organisms and chemical processes that depend on it. A review led by researchers at UC San Diego’s Scripps Institution of Oceanography warns that this widespread deoxygenation is moving Earth toward an “unsafe space,” with some effects potentially lasting beyond human timescales.

The researchers examined how aquatic deoxygenation, meaning the loss of dissolved oxygen from marine and freshwater environments, interacts with the nine processes included in the Planetary Boundaries framework. Introduced in 2009, the framework identifies major Earth systems and evaluates how human activity is pushing them beyond the conditions that support a stable and resilient planet.

Those nine boundaries cover climate change, ocean acidification, biodiversity loss, atmospheric aerosol loading, stratospheric ozone depletion, freshwater change, land use change, chemical pollution and biogeochemical flows (including the nitrogen cycle). The authors argue that dissolved oxygen should also be included.

Oxygen loss threatens planetary stability
“The health and stability of our planet depends on the health and stability of aquatic ecosystems, which need oxygen to function normally,” said lead author Erica Ferrer, a Scripps Oceanography alumna and current postdoctoral scholar at UC Santa Barbara’s National Center for Ecological Analysis and Synthesis. “This study is designed to elevate the profile of aquatic deoxygenation as a global threat and show that it does not operate in isolation.”

Source: SciTechDaily
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This Tiny Gecko Could Reveal How Cancer Spreads
A pet gecko known for developing tumors at an exceptionally high rate could offer scientists a valuable new way to study how cancer begins, evolves, and spreads, according to research led by experts at the University of Nottingham.

Published in BMC Biology, the findings may also help researchers understand why certain animals are especially vulnerable to cancer while others develop the disease only rarely.

A Gecko With an Extraordinary Cancer Risk
Cancer appears to be uncommon in some reptiles, including turtles and tortoises. However, the leopard gecko color variety sold in the pet trade as the “lemon frost” morph presents a striking exception. Aggressive tumors develop in about 80% of these geckos.

Researchers have now identified genomic changes associated with the disease. Several of those changes involve genes and biological processes that are also connected to cancer in humans.

Dr. Chiari said: “By studying why some animals are so susceptible to cancer while others are remarkably resistant, we hope to uncover the different ways species have evolved to deal with cancer. Specifically, this gecko could become an incredible model in cancer research because tumors appear naturally at a relatively early age. Together, these natural strategies could inspire new ways of preventing, detecting, and treating cancer in humans.”

Source: SciTechDaily
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First Sugar Ever Found in Interstellar Space Could Help Explain Life’s Origins
Sugars are central to life. They help form the structural backbone of DNA and RNA and participate in essential metabolic reactions.

They are also thought to have been necessary for the formation of the earliest nucleic acids. Yet researchers studying life’s origins still face a major puzzle: laboratory experiments indicate that prebiotic conditions on early Earth would not have produced enough sugar.

Ribose and glucose have been found in meteorites and asteroid material, raising the possibility that some sugars formed in the ancient molecular cloud that gave rise to the Solar System. Until now, however, no sugar had been identified directly in interstellar space.

A four-carbon sugar appears in space
An international group led by CAB researcher Izaskun Jiménez-Serra has detected erythrulose, the first sugar identified in the interstellar medium. Erythrulose is the only possible ketose containing four carbon atoms. On Earth, it occurs naturally in raspberries and is also used in sunless tanning products.

Researchers found it toward G+0.693−0.027, a molecular cloud near the center of the Milky Way. The detection relied on highly sensitive broadband spectroscopic surveys conducted with the 40-m Yebes radio telescope and the 30-m telescope operated by the Institute for Radio Astronomy in the Millimeter Range (IRAM).

Source: SciTechDaily
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Scientists Reveal How Exercise May Protect the Aging Brain
During sleep, the brain activates a cleanup network that helps remove accumulated waste. A review led by Victoria University (VU) researcher Dr. James Broatch examined whether exercise could strengthen this glymphatic system, which becomes increasingly important for maintaining brain health as people age.

Exercise is already closely associated with healthy aging, but exactly how it protects the brain remains uncertain. Understanding that mechanism is especially important because more than 10 million people worldwide are diagnosed with dementia each year, and no cure currently exists.

Published in Trends in Neurosciences, the peer-reviewed paper evaluated existing animal and human research on the glymphatic system. Although more evidence is needed (including research Dr Broatch is now conducting), the review found that exercise improves several biological processes involved in regulating brain waste clearance.

Exercise supports brain waste clearance
The reported effects include:
• Lower blood pressure and reduced vascular stiffness
• Improved activation of neurons in the brain
• Reduced inflammation in the brain
• Lower resting norepinephrine levels

Better sleep, including improved deep sleep and increased slow wave activity associated with waste clearance

Dr. Broatch said the connection between exercise and brain protection could help researchers identify scientifically supported physical activity strategies for limiting brain deterioration with age.

“If we don’t have opportunities for the brain to essentially clean out the junk from the day, we know that build-up is damaging, especially as we age. Sleep is more crucial than ever to play this role, but the irony is, good quality sleep can often be harder to get as we get older. This study asked, what if exercise could support that process?” Dr. Broatch said.

Source: SciTechDaily
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'Once we were like you': Striking reconstructions reveal the faces of 16 people from Roman-era Hungary
The face of a young woman crowned with a laurel wreath, buried in elaborate clothing and unusual cork sandals, has appeared nearly 1,700 years after her death.

She is one of 16 people from Aquincum, a Roman-era city in present-day Hungary, whose faces have been reconstructed for "Once We Were Like You," a new exhibition at the Aquincum Museum in Budapest. The display pairs skulls excavated in and around the ancient city with scientifically informed approximations of how their owners may have looked in life.

Six of the reconstructions are hyperrealistic silicone models, complete with artificial eyes, human hair, eyebrows, eyelashes and, in some cases, beards. The exhibition, which runs through Oct. 31, includes men, women and a child who lived during the region's period of Roman rule.

Source: Live Science
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NASA's New Horizons spacecraft awakens from yearlong hibernation to do unprecedented science beyond Pluto
There's nothing more disorienting than falling asleep in transit only to wake up and find you've somehow drifted billions of miles beyond the orbit of Pluto.

Fortunately for NASA's New Horizon spacecraft, which scientists just awakened from a nearly yearlong hibernation at the solar system's edge, all systems are in "good health," according to a NASA statement. Now, with the probe recovered from its 321-day sleep and beginning to transmit science data again, New Horizons appears ready to continue its mission of studying the mysterious boundary where the sun's realm ends and interstellar space begins.

"Every status report through this hibernation period was 'green,' meaning all was well aboard New Horizons each and every week," Alice Bowman, the New Horizons mission operations manager at the Johns Hopkins Applied Physics Laboratory in Maryland, said in the statement.

New Horizons launched in 2006, breaking the record for fastest-ever space launch at roughly 36,400 mph (58,500 km/h). On its way to the edge of the solar system, the spacecraft picked up speed during a flyby of Jupiter in 2007 and then again while passing Pluto in 2015. Today, New Horizons is about 5.9 billion miles (9.5 billion kilometers) from Earth, or roughly 64 times the distance from Earth to the sun (64 astronomical units, or AU).

With the exception of the twin Voyager probes that launched in 1977, New Horizons is the farthest working spacecraft in the universe. (Two other probes, Pioneer 10 and 11, have traveled farther, but each stopped working several decades ago.)

Like the Voyager twins, New Horizons is on a trajectory toward the heliopause — the extreme outer edge of the sun's influence, where solar wind collides with the interstellar medium.

The Voyager probes proved that this dividing line is a measurable, physical boundary in space, marked by a hot, thick plasma barrier. However, New Horizons will eventually pass this boundary with far more sensitive instruments than the Voyagers held, enabling it to collect the most detailed data about this region ever.

Source: Live Science
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Water-surface vortices drive tiny rotors without electricity, magnets or chemicals
Reliably generating controlled miniature rotations has long been a challenge: Chemical propulsion systems wear out, and methods that use electric or magnetic fields require complex setups. A team from KIT's Institute of Microstructure Technology (IMT) and the Suzhou Institute of Nano-tech and Nano-bionics (SINANO) at the Chinese Academy of Sciences has now demonstrated that flow at a water surface alone is sufficient to rotate a floating object in a fixed direction. Their research is published in the journal Science Advances.

"We were able to show that motion on a small scale can be controlled entirely without chemistry, electricity, or magnetic fields, relying solely on the forces acting at a water surface. This opens up a simple and versatile way to assemble ultrafine structures in a targeted manner," said Professor Jan G. Korvink from KIT's IMT.

Why speed determines direction
At the heart of the setup is a 3D-printed component with a spiral channel. It keeps a tiny object on the water surface without touching it. When the component moves slowly up and down, the object merely oscillates back and forth, leaving no net rotation. At a higher speed, however, small vortices form, tipping the balance. The object rotates bit by bit in the same direction—just like a ratchet—gradually accumulating the rotation.

Researchers at KIT were able to visualize this process through flow simulations. "In the simulation, we could accurately trace how the flow breaks the symmetry of motion at higher speeds. It is precisely this symmetry breaking that transforms a back-and-forth movement into a directed rotation," said Professor Yongbo Deng from IMT.

Fine fiber bundles for wires, sutures and artificial muscles
The effect can be used in a targeted way. The component behaves like a tiny motor powered solely by the water surface. Its torque is about 10⁻⁸ newton-meters, which is far below that of an electric motor but significantly greater than that of biological motors. Using this approach, the scientists gradually assembled silk fibers with diameters between 10 and 20 micrometers into multilayered twisted bundles. Such structures are also typical of Litz wires and surgical suture materials.

Potential applications are low-loss transmission cables in data centers, multifunctional suture materials and artificial muscles. Conventional braiding machines fail at this scale because the fibers break under tension. The novel approach, by contrast, requires no mechanical contact and thus opens an innovative way to manufacture helical structures in a controlled manner.

Source: Phys.org
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LINK, the robotic spacecraft from Katalyst Space designed to boost our Swift mission’s orbit, experienced issues with attitude control over the weekend, causing the spacecraft to spin and resulting in sporadic communications. The team is working to stop LINK’s spin over the next few days and then will update LINK’s guidance, navigation, and control to accommodate the spacecraft’s new configuration.

Learn more: go.nasa.gov/4xcuamQ

Source: @NASAUniverse
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Cracking the axolotl code: How to regrow limbs and stay young
Minor cuts and scrapes usually heal in time, but losing a finger or a whole limb? For most vertebrates, that's a done deal. Unless, of course, you've got the self-healing machinery of an axolotl.

These unusually resilient and famously photogenic aquatic salamanders—native
to Mexico—can regenerate parts of their bodies, including limbs, eyes and even bits of their brain. With their frilly pink gills and heartwarming smiles, they're always camera-ready—even if they have to regrow an appendage or two first.

Axolotls are also the Peter Pans of the amphibian class. Like the fictional boy who never wanted to grow up, they skip the transitional stage that ushers most of their counterparts into adulthood on land and remain in tadpole form forever. While they don't have to worry about aging, certain diseases—as well as predators—do catch up with them in time. Most live 10 to 15 years.

So why can axolotls—these charismatic creatures—regrow a limb, whereas humans just undergo wound healing? And how is it that most organisms go through aging while a lucky few get to press a pause button?

Understanding regeneration could allow for an axolotl-style intervention into wound healing and the aging process, according to Northeastern University professor of biology and mathematics Calina Copos. The question at the heart of both pathways is what steers cells down one path versus the other, she said. Each decision point is a fork in the road.

Copos is investigating how cells, the basic building blocks of body tissues, respond differently to outside pressures.
Source: Phys.org
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Quantum neural networks get their first hardware test
Neural networks have transformed how machines find patterns in data, from recognizing faces in photos to predicting the shapes of proteins. So far, all of this progress has been made on ordinary classical computers, but with quantum computers now edging into practical use, there is a real possibility that neural networks could tap into distinctly quantum effects and operate in ways that classical machines never could. So far, however, neural networks have proven far more difficult to run on quantum hardware.

Through new research published in Physical Review Letters, Djamil Lakhdar-Hamina and colleagues at the University of Maryland, College Park, have built a neural network that runs on two different types of quantum computer, allowing them to test directly whether these systems can live up to their theoretical promise.

Elusive quantum advantage
A neural network is built from layers of simple units, each taking in signals and passing on an output depending on what it receives. To train a network, the connections between these units are adjusted until the network reliably produces the right answer for a given task.

In the quantum world, a similar structure can be built using qubits: the basic unit of quantum information, whose measurement outcomes stand in for the signals passed between layers. Researchers have long suspected that quantum versions of these networks could offer genuine advantages over classical ones, perhaps by exploiting quantum uncertainty. However, very few of these ideas have actually been tested on physical devices.

Source: Phys.org
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AI tools for predicting protein folding produce chemically impossible structures and need human oversight
Researchers at Rensselaer Polytechnic Institute (RPI) have found that today's leading artificial intelligence tools for predicting protein structures routinely generate results that are physically and chemically impossible, exposing critical blind spots in how AI is being applied across scientific research. The work, published in the Proceedings of the National Academy of Sciences, serves as a cautionary reminder that AI still requires human oversight and physics-based verification to produce reliable results in the lab.

The paper, authored by George I. Makhatadze, professor of biological sciences and Constellation Endowed Chair at RPI, evaluated widely used deep learning tools for predicting how flat sequences of amino acids fold into the three-dimensional structures that determine a protein's function. Makhatadze found that these tools frequently overlook the underlying scientific rules of protein folding—and, notably, that every tool tested rated its own accuracy higher than the results warranted.

"The major conclusion of the paper essentially is: trust but verify," Makhatadze explained. "You have to verify [AI outputs] using physics-based methods."

Where the models break down
AI has become indispensable for analyzing the massive data sets used to predict protein folds. For example, Google's DeepMind AI laboratory—known for AlphaFold2shared the 2024 Nobel Prize in Chemistry for its contributions to protein structure prediction.

But according to Makhatadze's work, AlphaFold2 and RoseTTAFold2—a similar deep learning-based prediction platform developed at the University of Washington—both produced "implausible structures for variant sequences" by "[prioritizing] statistical patterns over the underlying thermodynamic principles of folding." Both tools are trained on evolutionary data and structural databases.

"AlphaFold is considered the gospel of the field," Makhatadze said. "It is very good, and it does many things well. But occasionally it makes mistakes, because there simply isn't enough of the right kind of data in the model yet."

Makhatadze found fewer scientific impossibilities in a different class of tools—"transformer-based protein language models" that rely on protein sequences rather than structural data. Tools in this class included OmegaFold and the Meta-developed ESMFold. However, neither category of model performed well when proteins contained ionizable residues, meaning amino acid side chains that can gain or lose a proton depending on their surrounding environment.

Source: Phys.org
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Curiosity has delivered a new 360-degree panorama from Mars. “We’ve seen a lot of fascinating landscapes through Curiosity’s eyes, but this sea of polygons took our breath away,” said the mission’s project scientist.

Learn more, and zoom into the rover's latest breathtaking views: go.nasa.gov/4ySV84C

Source: @NASAMars
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Plants know when to grow—and when to hold back, study finds
Researchers have uncovered a surprising mechanism that allows plants to carefully coordinate the formation and growth of new leaf parts. The study shows that the hormone auxin regulates different phases in organ formation by oppositely affecting the activity of another hormone, gibberellin, to trigger the formation of new leaf structures before reversing course and boosting gibberellin to drive their expansion. The findings offer new insight into how plants build complex organs and could eventually help scientists develop crops with improved growth and architecture.

A plant's ability to produce leaves, flowers and other organs depends on precise location and timing. It must first determine where a new structure will form before allowing it to expand. Now, researchers have uncovered the molecular switch that coordinates these two steps, revealing how plants carefully alternate between putting on the brakes and stepping on the accelerator during organ development.

Source: Phys.org
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SpaceX’s Falcon 9 Rocket Is About to Crash Into the Moon—and It Could Be Visible From Earth
If you own a strong enough telescope, you might be able to witness history on Wednesday: A dead rocket is going to crash into the moon. On August 5, at around 6:34 am UTC, a spent SpaceX Falcon 9 upper stage is expected to hit the moon's sunlit western limb near Einstein crater at more than 5,400 mph. If it unfolds as predicted, the crash could throw up a plume of debris bright enough to briefly see from Earth with the right equipment.

That would be a first. No impact flash has ever been recorded on the sunlit face of the moon, and that's exactly where the Falcon 9 crash is forecast to happen, kicking up plumes of dust that could stand out against the blackness of space. The findings are based in part on two new preprint studies.

That includes one posted July 27 to arXiv and led by William Jo, a doctoral candidate at the University of Texas at Austin's Cockrell School of Engineering, that forecasts just how big the impact could be. To predict the plume, Jo ran the crash through a high-resolution physics simulation that allowed him to model what would happen when 3,900 kilograms of hollow metal hit the lunar surface. That’s different from solid meteorites making impact.

"It's like an empty eggshell, because it had all the fuel in it, and there is a rocket engine at one end that's denser," David Goldstein, an aerospace engineering professor at UT Austin who supervised the work, says of the Falcon 9.

Rather than burrowing in like a cannonball, the shell will collapse from its edges inward, throwing up a broad, low curtain of soil spreading as far as 183 kilometers wide as well as a thin, faster spike nearly straight up. All told, the crash is forecast to displace about 12,700 kilograms of debris.

Source: Wired
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Waste CO₂ converts into graphite through a newly observed two-step process
Graphite, the carbon core of a humble No. 2 pencil, is also an essential component in technologies such as batteries, smartphones, laptops and industrial power equipment. Today, nearly all of this critical mineral must be mined and processed and, in the United States, imported.

But now, researchers at the U.S. Department of Energy's Lawrence Berkeley National Laboratory (Berkeley Lab), UC Berkeley and Estonia's National Institute of Chemical Physics and Biophysics have shown a promising way to convert waste carbon pulled from the air into graphite, opening up a potential alternative to mining. The work was published recently in the journal Nature Communications.

Researchers built a custom microscope setup to watch a process known as molten-salt electrolysis, which uses electricity and hot liquid salts to turn carbon dioxide into solid carbon. For the first time, researchers were able to watch the process in real time inside corrosive molten salts heated to 500°C (932°F) while the system was running.

The observations answered a decades-old question about how the reaction occurs at the molecular level, revealing an unexpected two-step process. The researchers also found that the basic chemical reaction remained the same even when they changed the materials used for the electrodes and molten salts. Because different materials produce different carbon structures, scientists should be able to tune the process to make valuable carbon products, with the goal of making battery-grade graphite.

Source: Phys.org
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On Aug. 12, a total solar eclipse will cross Greenland, Iceland, and Spain — and NASA science will be there! ☀️🌑🔭

We're flying high-altitude jets and launching scientific balloons to study the Sun and the eclipse's effects on us: go.nasa.gov/4x5qvqP

Source: @NASASolarSystem
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High-powered lasers can wirelessly charge drones mid-flight
Chinese researchers have revealed a new technology that could soon enable drones to charge mid-flight using high-powered lasers.

The scientists built a prototype of the system using a model of a drone and attached a receiver that works similarly to a solar cell. Fixed to the underside of the wing, the receiver successfully converted the energy from the laser beam into electricity to power the aircraft’s propellers.

"Previous studies largely focused on the materials or the device itself," study senior author Jianhua Han, a researcher at the Civil Aviation University of China, said in a statement. "We wanted to think beyond the laboratory, to how the system could actually be integrated into an aircraft, cooled during operation, and made compatible with flight. It isn’t just a materials science problem; it’s an engineering one."

Source: Live Science
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