Neanderthals were the world’s first artists, research reveals

Recent research has shown that engravings in a cave in La Roche-Cotard (France), which has been sealed for thousands of years, were actually made by Neanderthals. This research was performed by Basel archaeologist Dorota Wojtczak together with a team of researchers from France and Denmark, whose findings reveal that the Neanderthals were in fact the first humans with an appreciation of art.

When the French archaeologist Jean-Claude Marquet entered the La Roche-Cotard cave in the Loire Valley for the first time back in 1974, he suspected that the fine lines on the wall could be of human origin. He also found scrapers and other retouched pieces known as Mousterian stone artifacts that suggested the cave had been used by Neanderthals. Were the marks on the wall evidence of early Neanderthal artistic activity?

Posing this question raised the possibility of breaking with the consensus of the time, which largely assumed that Homo neanderthalensis lacked any higher cognitive abilities. Fearing he would be unable to provide sufficient scientific evidence to prove his hypothesis, Marquet left the cave untouched for almost 40 years.

Marks on the wall produced by human hands

Together with an international team, he made another attempt in 2016. This time he was accompanied by Dr. Dorota Wojtczak from Integrative Prehistoric and Archaeological Science (IPAS) at the Department of Environmental Sciences of the University of Basel, who specializes in archaeological use-wear analysis. “Our task was to use modern methods to prove the human origin of these wall engravings,” explains Wojtczak in her office at IPAS. The researchers recently published their findings in the journal PLoS ONE.

First with photos and drawings and later with a 3D scanner, the marks in the tuff rock of the cave wall were meticulously recorded. In her laboratory in Basel, Wojtczak compared these samples from the cave with tuff she had worked on experimentally with wood, bone and stone tools, as well as with her hands. “This research clearly showed that the cave marks were not made with tools, but by scratching with human fingers,” says Wojtczak.

Cave sealed for over 50,000 years

At the same time, examination of cave sediment by researchers from Denmark showed that the cave must have been sealed off by mud residues from the Loire and soil sediments for over 50,000 years before being rediscovered. This makes the La Roche-Cotard cave system a very special location — a veritable “time capsule.” “At this time, 50,000 years ago, there were no modern humans in Europe, only Neanderthals,” says Wojtczak. The wall marks and artifacts can therefore only come from these early humans.

While the clear geometric shapes with parallel and triangular lines suggest that these marks were not scribbled on the wall by chance, the researcher does not know what they represent. “But they could only have been made by someone who proceeded with planning and understanding,” she says. And whether it was “art” as such, or a form of recording-keeping, is a matter of interpretation.

La Roche-Cotard promises further findings

The cave holds many other archaeological secrets. Jean-Claude Marquet also found an object that resembles the face of a human or animal back in 1976, and Wojtczak’s use-wear analysis suggests that this object is also man-made. Another object from the cave appears to be a small oil lamp. “Specialists are currently investigating whether the object bears any pigments or soot substances that could help to identify the type of fuel used at the time,” explains Wojtczak.

The chamber of La Roche-Cotard that has been explored so far is just one part of an entire cave system. The researcher hopes to gain further insight into the Neanderthals’ activities, particularly from Chamber 4, which is still largely covered by sediment. Wojtczak is convinced that every investigation will help to further the dismantle traditional consensus of Neanderthals as mentally inferior humans, and reinforce the perception of them as more like the cousins of modern humans. “They could speak, and probably even sang,” she adds, grinning.

Dorota Wojtczak will continue her research into Neanderthal life in La Roche-Cotard together with her students from the Prehistory and Archaeological Science degree program.

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Climate change: Rise in Google searches around ‘anxiety’

Google search queries for “climate anxiety” rise dramatically, data given exclusively to BBC 100 Women suggests.

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NASA’s Webb reveals new features in heart of Milky Way

The latest image from NASA’s James Webb Space Telescope shows a portion of the dense center of our galaxy in unprecedented detail, including never-before-seen features astronomers have yet to explain. The star-forming region, named Sagittarius C (Sgr C), is about 300 light-years from the Milky Way’s central supermassive black hole, Sagittarius A*.

“There’s never been any infrared data on this region with the level of resolution and sensitivity we get with Webb, so we are seeing lots of features here for the first time,” said the observation team’s principal investigator Samuel Crowe, an undergraduate student at the University of Virginia in Charlottesville. “Webb reveals an incredible amount of detail, allowing us to study star formation in this sort of environment in a way that wasn’t possible previously.”

“The galactic center is the most extreme environment in our Milky Way galaxy, where current theories of star formation can be put to their most rigorous test,” added professor Jonathan Tan, one of Crowe’s advisors at the University of Virginia.

Protostars

Amid the estimated 500,000 stars in the image is a cluster of protostars — stars that are still forming and gaining mass — producing outflows that glow like a bonfire in the midst of an infrared-dark cloud. At the heart of this young cluster is a previously known, massive protostar over 30 times the mass of our Sun. The cloud the protostars are emerging from is so dense that the light from stars behind it cannot reach Webb, making it appear less crowded when in fact it is one of the most densely packed areas of the image. Smaller infrared-dark clouds dot the image, looking like holes in the starfield. That’s where future stars are forming.

Webb’s NIRCam (Near-Infrared Camera) instrument also captured large-scale emission from ionized hydrogen surrounding the lower side of the dark cloud, shown cyan-colored in the image. Typically, Crowe says, this is the result of energetic photons being emitted by young massive stars, but the vast extent of the region shown by Webb is something of a surprise that bears further investigation. Another feature of the region that Crowe plans to examine further is the needle-like structures in the ionized hydrogen, which appear oriented chaotically in many directions.

“The galactic center is a crowded, tumultuous place. There are turbulent, magnetized gas clouds that are forming stars, which then impact the surrounding gas with their outflowing winds, jets, and radiation,” said Rubén Fedriani, a co-investigator of the project at the Instituto Astrofísica de Andalucía in Spain. “Webb has provided us with a ton of data on this extreme environment, and we are just starting to dig into it.”

Around 25,000 light-years from Earth, the galactic center is close enough to study individual stars with the Webb telescope, allowing astronomers to gather unprecedented information on how stars form, and how this process may depend on the cosmic environment, especially compared to other regions of the galaxy. For example, are more massive stars formed in the center of the Milky Way, as opposed to the edges of its spiral arms?

“The image from Webb is stunning, and the science we will get from it is even better,” Crowe said. “Massive stars are factories that produce heavy elements in their nuclear cores, so understanding them better is like learning the origin story of much of the universe.”

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‘Triple star’ discovery could revolutionize understanding of stellar evolution

A ground-breaking new discovery by University of Leeds scientists could transform the way astronomers understand some of the biggest and most common stars in the Universe.

Research by PhD student Jonathan Dodd and Professor René Oudmaijer, from the University’s School of Physics and Astronomy, points to intriguing new evidence that massive Be stars — until now mainly thought to exist in double stars — could in fact be “triples.”

The remarkable discovery could revolutionise our understanding of the objects — a subset of B stars — which are considered an important “test bed” for developing theories on how stars evolve more generally.

These Be stars are surrounded by a characteristic disc made of gas — similar to the rings of Saturn in our own Solar System. And although Be stars have been known for about 150 years — having first been identified by renowned Italian astronomer Angelo Secchi in 1866 — until now, no one has known how they were formed.

Consensus among astronomers so far has said the discs are formed by the rapid rotation of the Be stars, and that itself can be caused by the stars interacting with another star in a binary system.

Triple systems

Mr Dodd, corresponding author of the research, said: “The best point of reference for that is if you’ve watched Star Wars, there are planets where they have two Suns.”

But now, by analysing data from the European Space Agency’s Gaia satellite, the scientists say they have found evidence these stars actually exist in triple systems — with three bodies interacting instead of just two.

Mr Dodd added: “We observed the way the stars move across the night sky, over longer periods like 10 years, and shorter periods of around six months. If a star moves in a straight line, we know there’s just one star, but if there is more than one, we will see a slight wobble or, in the best case, a spiral.

“We applied this across the two groups of stars that we are looking at — the B stars and the Be stars — and what we found, confusingly, is that at first it looks like the Be stars have a lower rate of companions than the B stars. This is interesting because we’d expect them to have a higher rate.”

However, Principal Investigator Prof Oudmaijer said: “The fact that we do not see them might be because they are now too faint to be detected.”

Mass transfer

The researchers then looked at a different set of data, looking for companion stars that are further away, and found that at these larger separations the rate of companion stars is very similar between the B and Be stars.

From this, they were able to infer that in many cases a third star is coming into play, forcing the companion closer to the Be star — close enough that mass can be transferred from one to the other and form the characteristic Be star disc. This could also explain why we do not see these companions anymore; they have become too small and faint to be detected after the “vampire” Be star has sucked in so much of their mass.

The discovery could have huge impacts on other areas of astronomy — including our understanding of black holes, neutron stars and gravitational wave sources.

Prof Oudmaijer said: “There’s a revolution going on in physics at the moment around gravitational waves. We have only been observing these gravitational waves for a few years now, and these have been found to be due to merging black holes.

“We know that these enigmatic objects — black holes and neutron stars — exist, but we don’t know much about the stars that would become them. Our findings provide a clue to understanding these gravitational wave sources.”

He added: “Over the last decade or so, astronomers have found that binarity is an incredibly important element in stellar evolution. We are now moving more towards the idea it is even more complex than that and that triple stars need to be considered.”

“Indeed,” Oudmaijer said, “triples have become the new binaries.”

The team behind the discovery includes PhD student Mr Dodd and Prof Oudmaijer from Leeds, along with University of Leeds PhD student Isaac Radley and two former Leeds academics Dr Miguel Vioque of the ALMA Observatory in Chile and Dr Abigail Frost at the European Southern Observatory in Chile. The team received funding from the Science and Technology Facilities Council (STFC).

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First comprehensive look at effects of 2020-2021 California megafires on terrestrial wildlife habitat

The only thing constant is change — isn’t that how the saying goes? We know that wildlife in western forests evolved with changing habitat and disturbances like wildfire. Each species responds differently, some benefiting from openings, others losing critical habitat. What we don’t know is how increasing fire severity at large scales is impacting their habitat and survival, because many species are not adapted to these types of “megafires.” Researchers at the Rocky Mountain Research Station set about finding some answers. They summarize their findings in “The 2020-2021 California megafires and their impacts to wildlife habitat,” a paper that published today in the Proceedings of the National Academy of Sciences.

Why California and why this time period? In 2020 and 2021, California experienced fire activity unlike anything recorded in the modern record. When the smoke cleared, the amount of burned forest totaled ten times more than the annual average going back to the late 1800s. Nearly half of the forests that burned experienced high-severity fire, killing 75-100% of the vegetation, and much of this fire covered large continuous areas, rather than a patchy mosaic. California’s Department of Fish and Wildlife curates a comprehensive wildlife database, mapping habitat suitability of hundreds of species across the state. Coupling that with Forest Service records of wildfires and some fancy computer footwork gave researchers an opportunity to take a broad look at how these types of “megafires” are shaping wildlife habitat within the state.

Jessalyn Ayars, the lead author, said, “Our intent was to take a broad look to gain a better understanding of the impacts of these kinds of fires on wildlife habitat as a whole.” She continued, “and since each species is different, this study provides a good jumping-off point for others to be able to focus on a single species of interest or small group of species that share similar habitats.”

The fires and habitat studied were mostly located in the Sierra Nevada, southern Cascades, and Klamath mountain regions of California. Researchers looked at more than 600 wildlife species and found that for 50 species, fires spanned 15-30% of habitat within their range in the state. One hundred species experience high severity fire over more than 10% of their geographic range within California. Sixteen of those species are considered species of management concern, such as the great gray owl, wolverine, Pacific marten, and northern rubber boa.

Previous research shows that some species such as great gray owls may benefit from fire in terms of foraging habitat and can be somewhat resilient, but again, the unknown is whether that benefit holds true with this magnitude of habitat change in such a short time.

Some good news is that by looking more closely at some of the details around habitat change by species, scientists learned that these fires are not disproportionately impacting habitats for species of conservation concern compared to wildlife species in general, a finding that suggests that where these species live may serve as refugia for them.

Gavin Jones, senior author and Ayars’ advisor, has conducted research on how proactive forest management can offset risks over the long term of California spotted owl habitat loss from increased wildfire size and severity. Given the impacts of large-scale habitat shifts in a short period of time, coupled with the likelihood that extreme fires will be more common in the future, this new paper adds to the body of research and underscores the importance of increasing the pace and scale of proactive forest management.

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Perfecting the performance of nerve implants

Researchers are extending their understanding of the effectiveness of electrical fields that are increasingly being used in implants to stimulate and repair damaged nerves. Effective nerve stimulation is the key to helping alleviate debilitating conditions such as sciatica.

“From the soldier on the battlefield to people involved in car crashes the long-term effects of nerve injuries can severely affect sufferers,” said the University of Adelaide’s Professor Giuseppe Tettamanzi, Senior Lecturer, School of Chemical Engineering.

“Transcutaneous Electric Nerve Stimulation (TENS) is a commonly used electrical stimulation method in implants. Many of the current implants are quite invasive so it’s important to understand how to maximise their effectiveness.

“Simple electrical circuitry in an implant can be applied to damaged nerves to help repair and reconstruct them.”

This technology was invented by Professor Antonio Lauto from UWS, Sydney. The implants are surgically placed under the skin around the damaged nerve with power in early versions provided externally. Innovative graft-antenna implants that are powered wirelessly, are increasingly being used. They are minimally invasive devices that function both as a wireless stimulator and a structure around which nerves can rebuild. The implants use a gold band which produces an electrical field around it.

The team has used several sophisticated Computational Electromagnetic techniques incorporated in a mouse model to hypothetically examine the effect of the circuitry implanted via patches inserted near affected nerves. They published their work in the journal Bioelectromagnetics.

Luke Smith, who is leading author in this research, undertook an honours project in his final year of his bachelor’s degree project at the University of Adelaide under the supervision of Professor Tettamanzi and Professor Christophe Fumeaux, to explain the microscopic nature of the effect of electrical stimulation. He is currently undertaking a PhD at the University’s Australian Institute for Machine Learning.

“Our work shows that when the simple metallic circuitry in the patch inserted near the neuronal materials, is irradiated with the commonly used Transcranial Magnetic Stimulation (TMS), it acts as a focaliser for the electromagnetic signal that ultimately activates neurons in the neural material,” he said.

“This ultimately speeds up tremendously the process of repairing damaged neuronal material.

“Electrical stimulation of nerves is due primarily to the electric fields created at the edge of the ring which sets up high-intensity field gradients in a small region around it.

“Our computational model demonstrates that direct contact between the ring and nerve ensures neural activation.”

Nerve damage usually takes longer than three months to repair and sufferers are at increased risk of depression because of the debilitating effects of conditions like sciatica.

People suffering from pain due to nerve damage may need to resort to opioids for pain relief with all the associated risks of addiction and extra burden on health systems.

“This work, which is currently evolving, could benefit people with injuries and with neurodegenerative diseases. The knowledge that we have generated may help in future research,” said Professor Tettamanzi.

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Can writing a diary protect your mental health?

Sir Patrick Vallance’s “brain dumps” morphed into damning public critiques – but are diaries therapeutic?

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Covid inquiry: First lockdown imposed a bit too late – Whitty

But England’s chief medical officer tells Covid inquiry government had no good options at the time.

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Concern over delay to abortion clinic buffer zones

Campaigners accuse ministers of kicking plans to prevent protests outside clinics into the long grass.

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Watch for measles, UK doctors told, as vaccine rate dips

Vaccination is at a 10-year low, leaving some children unprotected and risking outbreaks, experts say.

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