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How to spot the Perseid meteor shower, a summer light show that promises to dazzle
The Perseid summer light show is back—and viewing conditions are especially promising for the Northern Hemisphere.

The meteor shower's peak Wednesday night into Thursday morning coincides with a total solar eclipse across Spain, Iceland and Greenland and a six-planet parade—though the best time to view the fireballs will come after totality.

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As many as 50 to 100 meteors per hour may be visible under ideal conditions, according to NASA. The American Meteor Society estimates 30 to 50 meteors per hour could be seen from rural regions.

Random meteors are visible in dark skies on any given night. Meteor showers tend to put on dazzling celestial shows and happen at predictable times every year when the Earth plows through trails of debris left behind by comets and, sometimes, asteroids. Those remnants collide with Earth's atmosphere at extremely high speeds, producing streaks of light known as shooting stars.

The Perseids are a perennial favorite because they tend to produce brilliant fireballs. Summer temperatures also make this shower popular.

The moon will be in its new moon phase during the Perseids' peak, making viewing conditions even better.

To spot the meteors, go outside after dark, away from clouds and city lights. Venkatesan plans to drive to the Sierra Nevada.

The best views will be between midnight and dawn when the constellation Perseus is high in the northern sky. The meteors will appear to radiate from that constellation.

Look up and give your eyes a half hour to adjust to the darkness. Vanderbosch recommends picking a patch of sky to focus on until a quick, bright streak passes by—even in your peripheral vision—and to avoid looking at your phone.

Source: Phys.org
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Dodos probably weren't as stupid as historians made them out to be: new research
The dodo has been extinct for more than 300 years, wiped out within decades of humans arriving on its home island of Mauritius, but it lives on in the public imagination.

This famous flightless bird has become a symbol of extinction. Its demise is often portrayed as almost inevitable: a supposedly foolish creature that naïvely approached the sailors who killed it.

Early accounts even describe people holding a captured dodo and letting it cry out so others would wander over. In the 18th century, Swedish naturalist Carl Linnaeus dubbed the species Dodus ineptus after its reputation for dim wits and silliness.

But new research shows this image is misleading. The dodo was likely no less intelligent than any modern bird. It may also have possessed a rare and overlooked ecological trait: an adaptation to life in low light.

A closer look inside a vanished bird's head
With a team of collaborators across Canada, Australia, the United States, Europe and the UK, our new study looked in detail at the reconstruction of the dodo's brain.

There are only three completely preserved dodo skulls in existence. Using high-resolution CT scans of all three, we could reconstruct the shape of the dodo skull and get a detailed idea of the size and shape of its brain.

This also allowed us to digitally measure the structures associated with vision, smell and cognition (or "smarts"). These scans can also be shared with the research community.

The dodo was a member of the pigeon family, so its living relatives include the pigeons in our cities and the doves whose calls accompany mornings around the world. Pigeons are famous for their navigational skills and are widely used by scientists to study animal cognition.

Is there any indication that the dodo's brain was much different? When we compared the dodo's brain to that of pigeons, we found that the dodo's forebrain, linked to cognition and memory, was similar in proportion to that of other pigeons when compared to the rest of the brain.

In other words, there is no evidence the dodo was less intelligent than any other pigeon. This is also backed up by previous research suggesting that brain size relative to body mass was similar to that of other pigeons.

So we think the dodo's trusting behavior was because it simply had nothing to fear until humans arrived, as is common for island species with no predators.

A giant pigeon with an unexpected twist
Where the dodo does differ dramatically from other pigeons is in its sensory systems, particularly its vision. The dodo's optic lobes, the brain region that first processes visual information in the bird brain, are unusually small—not just compared to pigeons, but also compared to another extinct flightless relative, the Rodrigues solitaire.
Source: Phys.org
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'It's real, and it's happening': Antibiotic resistance in kids is rising around the world, massive study finds
In the past 20 years, an increasing number of bacterial infections caught by children have been resistant to antibiotics, a new study finds.

The research, published in July in the journal JAMA Pediatrics, looked back at the past two decades, as well as looked forward, to predict how resistance rates might change in the decade to come. By 2035, some critical antibiotics will be met with "steep increases" in resistance among common bacteria, such as Acinetobacter baumannii and Klebsiella, the analysis found.

Antibiotic resistance contributed to 840,000 deaths among children under 5 in 2021, global estimates suggest, so if resistance continues to increase, that number could grow.

"These forecasts are warning scenarios, not inevitable outcomes," said study co-author Dr. Yanhong Jessika Hu, a clinical epidemiologist and public health researcher at Murdoch Children's Research Institute (MCRI) in Australia. "The projections broadly assume that historical patterns continue without a major change in direction," Hu told Live Science in an email.

If significant action is taken, that trajectory could be altered, she said.

"Resistance increased across all regions"
Antibiotic resistance is sometimes called "a silent pandemic," as it poses a formidable threat without stirring as much concern as other health crises, such as viral outbreaks. Resistance has gained attention in recent years, but the data on how it has affected children is patchy, said study co-author Dr. Penelope Bryant, a clinician-researcher at MCRI, Royal Children's Hospital Melbourne, and the University of Melbourne.

"It's perceived as being a lesser problem in children," Bryant told Live Science. "It's not a theoretical problem; it's real, and it's happening. But I think the visibility is just substantially less than in adults."

Source: Live Science
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China finds first strong evidence of mysterious new matter glueball
In a global first, researchers at the Institute of High Energy Physics (IHEP) in China have found experimental evidence to confirm the presence of a glueball, a new form of matter. The research findings were made at the Beijing Spectrometer III (BESIII) experiment, as part of an international collaboration headed by the Chinese Academy of Sciences (CAS). 

The Standard Model of physics states that the building blocks of our universe, atoms, are made up of matter particles and force carriers. Matter particles, or fermions, named quarks, build up protons and neutrons, the positively and neutrally charged particles inside the atomic nucleus. A force carrier holds the quarks together; this carrier is called a gluon. 

Physicists have long held that gluons can also attract each other and bind together to form a glueball, an entirely new form of matter that is composed only of a force carrier. For the past five decades, multiple experiments have been carried out to prove the existence of a glueball. However, it was only in 2011 that scientists in China spotted a potential glueball candidate in the experiments conducted at the Beijing Spectrometer III (BES III). 
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Why is it important? 
More recently, the researchers also found many new decay modes of X(2370) while also determining its ‘flavor-singlet’ nature, where they lack quark flavor signatures. This is the most important and defining characteristic of a glueball and establishes a complete chain of experimental evidence for a pseudoscalar glueball. 

This confirms the theoretical prediction that gluons can bind to each other and form an entirely new kind of matter. The discovery is also a direct test of the non-Abelian gauge structure in quantum chromodynamics (QCD), which also states that gluons are capable of attracting and binding each other, without the involvement of quarks. 

This is important, since it also helps establish that QCD is a correct theory and it has been validated at low energies. As the clearest experiment in over 50 years to have found the evidence for glueballs, the finding also demonstrates the importance of the BEPC II in studies of strong interactions. 

Source: Interesting Engineering
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☀️🌑 It's solar eclipse day!

🌍 If you're in the path of the totality or partial eclipse, use this online tool that can tell you precise timings for your location.

🕶 Hopefully you've got ISO 12312-2 eclipse glasses but if you don't, here are 3 ways to observe the eclipse safely without them.

⚠️ You might be tempted to have a quick look, but don't risk it!
The UK Health Security Agency (UKHSA) warns of the risk of retina damage if viewers look into the Sun without adequate protection. An eclipse makes the Sun appear dimmer, meaning you may be tempted to catch a glimpse with the naked eye.

However, this can override the body's natural reflex to look away, allowing intense sunlight to enter and damage the retina.

Crucially, the retina has no pain receptors, so you will not feel the damage as it happens.

Data from the Royal College of Ophthalmologists shows there were around 70 cases of vision problems following the 1999 solar eclipse, with around 40% viewing it for less than a minute.


🌐 Watch the total eclipse live from start to finish from multiple telescopes on ESA's official broadcast

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Astronomers Find Black Hole Star in Early Universe
Roughly 660 million years after the Big Bang, a strange bright red spot has been hiding in plain sight in one of the deepest fields ever imaged by the NASA/ESA/CSA James Webb Space Telescope. Astronomers at MIT now believe it may be the first confirmed example of an entirely new class of object: a black hole star.

MIT astronomer Rohan Naidu and colleagues spotted the object while hunting for some of the earliest galaxies in the Universe, as part of Webb’s Mirage or Miracle survey.

Labeled MoM-BH*-1, the source was essentially invisible in Webb’s bluer filters but blazed in the redder ones, giving it one of the most extreme colors ever recorded in a distant object.

Follow-up spectroscopy revealed why: the object shows the strongest ‘Balmer break’ ever measured at any redshift, a sharp drop in brightness at a wavelength normally associated with dense gas in the outer layers of stars.

Ordinary starlight simply can’t produce a break this severe; even the reddest known stellar populations top out at less than a third of the strength seen here.

The spectrum of MoM-BH*-1 also showed unusually broad emission from hydrogen gas, along with deep absorption features cutting through that emission — a combination that points to gas far denser than anything found in a typical star.

“The break we observed in this object is the deepest break we have ever observed in any object, ruling out ‘ordinary’ stars as the source,” Dr. Naidu said.

“But it made us wonder if we were seeing a new kind of ‘stellar atmosphere,’ but on a spectacular scale.”

“What’s more, the red dot’s light contained almost no signature of metals or any elements other than hydrogen and helium. It was truly singular in so many ways.”

To explain the pattern, the researchers modeled the object as a massive black hole, with a mass on the order of 100,000 to 10 million times that of the Sun, wrapped in an extraordinarily dense, turbulent envelope of hydrogen gas roughly 10 to 100 astronomical units across — about the scale of our Solar System.

Radiation from the black hole’s accretion disk filters through this gas cocoon, which absorbs and scatters the light to produce the object’s odd spectral fingerprint, while essentially no dust is needed to explain its redness.

Notably, MoM-BH*-1’s light output vastly exceeds what nuclear fusion could generate at that size, ruling out a normal star as the source and instead implicating an actively feeding black hole, possibly growing at or above the Eddington limit — the theoretical cap on how fast a black hole can accrete matter while still being pushed outward by its own radiation.

The scientists also detected tentative evidence the object brightened by around 30% over roughly two months, another hallmark of active black hole feeding...

Source: Sci.News
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Solar eclipse as seen from space!

From its vantage point in space, the Meteosat Third Generation Imager satellite (MTG-I1) captured the Moon’s dark shadow as it passed over Earth’s surface – converging with the advancing twilight shadow as dusk fell over Europe.
esa.int/ESA_Multimedia…

Source: @esa
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A new way to beat jet lag? Engineered cells speed circadian adjustment
Adjusting to a new time zone or work schedule can leave the body's internal clock out of sync for days, contributing to sleep disruption, metabolic changes and other health consequences. Researchers at Rice University and Northwestern University have developed an implantable cell therapy that may help the body adapt more quickly to these disruptions.

In a recent study titled "Encapsulated Leptin-Producing Cells Facilitate Entrainment of Circadian Rhythms in Rodents and Nonhuman Primates," encapsulated cells engineered to continuously produce the metabolic hormone leptin reduced the time required for animals to adjust to shifts in the light-dark cycle that mimic jet lag and shift work. Published in Advanced Science, the study's findings demonstrate a new approach to regulating circadian rhythms through metabolic signaling and provide early evidence that engineered cell therapies could be used to address circadian disruption.

A temporary metabolic nudge
"Current approaches for adjusting circadian rhythms rely heavily on precisely timed behaviors such as light exposure, meal schedules or melatonin administration," said Omid Veiseh, professor of bioengineering at Rice. "We wanted to explore whether a temporary cell therapy could provide a more practical way to help the body adapt to changing schedules."

The therapy consists of human retinal pigment epithelial cells engineered to produce leptin, a hormone best known for regulating appetite and metabolism. The cells are encapsulated within microscopic alginate spheres that protect them from the immune system while allowing therapeutic proteins to diffuse into the body. Following a simple subcutaneous injection, the encapsulated cells temporarily elevate circulating leptin levels before naturally losing viability over time.

"Metabolism and circadian rhythms are closely connected, but the therapeutic potential of that relationship remains largely unexplored," said Martha Hotz Vitaterna, professor of neurobiology at Northwestern University and co-corresponding author on the study. "These findings suggest that metabolic signals can be leveraged to accelerate adaptation to circadian disruptions."

Faster adjustment across species
In mouse studies, animals receiving the leptin-producing cell therapy adjusted significantly faster following both phase advances and phase delays in the light-dark cycle. Mice treated with the therapy adapted to a four-hour schedule delay 50% faster than control animals.

Source: Phys.org
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Memory may not work how we thought, study of mice in artificial hibernation finds
Long-term memories may not "stick" in the brain for the reasons we thought, a study of mice in artificial hibernation reveals.

Instead of relying on many individual, strong links between neurons — which would typically be pared down during hibernation — long-lasting memories seem to require higher-level patterns in connectivity, the study found.

"This topological architecture of the broader network seems to be more important" than individual, sturdy connections, said study co-author Kazumasa Tanaka, head of the Memory Research Unit at the Okinawa Institute of Science and Technology.

The findings, published Thursday (Aug. 13) in the journal Science, may complicate the picture of how memory retention works.

Tanaka and colleagues used hibernation to study memory because past studies of hibernating animals have found that their brains shrink and pare down cell-to-cell connections during these extended periods of low metabolic activity. At the same time, the brain's activity slows to a crawl, and the loss of connections is thought to be related to this energy-saving mechanism.

Despite this brain shrinkage, hibernating animals, such as alpine marmots (Marmota marmota) and European ground squirrels (Spermophilus citellus), still retain memories they formed before they went into hibernation. "Some studies report their memories are intact, even after, so they can remember conspecifics [members of the same species], like their friends, or they can remember the locations of their food," Tanaka told Live Science.

The new study aimed to tackle the question of what allows those memories to stick around even after many connections between brain cells disappear.

Source: Live Science
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What is the Nancy Grace Roman Space Telescope? Why do we need it? What will it unveil?

Learn more about Roman and how it will help us investigate some of the many mysteries of the universe. ⬇️

Roman is set to launch Aug 30th at 7:26 am ET. Stay up to date on the mission: go.nasa.gov/45skR6q

Source: RT @NASARoman
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Tiny satellite will use the dark side of the moon to eavesdrop on whispers from the early universe
A tiny UK-developed satellite, roughly the size of a small carry-on suitcase, could help answer one of the biggest questions in cosmology: What happened during the roughly 150 million years of the cosmic dark ages, before the universe's first stars appeared?

An international team of scientists led by the University of Cambridge will use the far side of the moon as a "shield" so the satellite—called CosmoCube—can block out all the noise from Earth and listen for a faint whisper from the very early universe.

This whisper, known as the 21-centimeter line, is a signal emitted by hydrogen atoms in the period between the afterglow of the Big Bang and cosmic dawn, when nuclear fusion lit up the first stars. No one has directly observed this era before.

Detecting this signal from more than 13.5 billion years ago is extremely difficult with Earth-based telescopes because Earth's ionosphere blocks the right frequencies, and interference from FM radio, satellites and telecommunications drowns it out.

However, the moon provides a natural shield. As CosmoCube orbits the far side of the moon, it will be shielded from all the noise from Earth for roughly 40 minutes of each 2-hour orbit. Over an expected 2-year mission, it will build up 1,000 hours of data on one of the last unexplored periods of the universe, helping us understand how the universe transitioned from dark and nearly empty to the complexity we see today.

Source: Phys.org
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