‘My life was saved by a stranger on the other side of the world’

An Australian man meets his stem-cell donor for the first time after travelling to the UK.

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Streeting urges doctors to vote no in strike ballot

Resident doctors unhappy with 5.4% pay rise with union warning strikes in England could return.

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Mental health A&E centres to open across England

The plans would allow people in acute mental distress to get treatment in hospital while also reducing A&E wait times.

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Women scared to get pregnant due to overlooked disorder

Marianne has pre-menstrual dysphoric disorder, a condition which affects as many as 8% of women.

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‘I don’t know what we’ll do’ – Vapers panic-buy ahead of disposables ban

Some disposable vape users say they are stockpiling, worried about what they will do after the ban.

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‘Hopelessly attached’: Scientists discover new 2D material that sticks the landing

More than ten years ago, researchers at Rice University led by materials scientist Boris Yakobson predicted that boron atoms would cling too tightly to copper to form borophene, a flexible, metallic two-dimensional material with potential across electronics, energy and catalysis. Now, new research shows that prediction holds up, but not in the way anyone expected.

Unlike systems such as graphene on copper, where atoms may diffuse into the substrate without forming a distinct alloy, the boron atoms in this case formed a defined 2D copper boride — a new compoundwith a distinct atomic structure. The finding, published in Science Advances by researchers from Rice and Northwestern University, sets the stage for further exploration of a relatively untapped class of 2D materials.

“Borophene is still a material at the brink of existence, and that makes any new fact about it important by pushing the envelope of our knowledge in materials, physics and electronics,” said Yakobson, Rice’s Karl F. Hasselmann Professor of Engineering and professor of materials science and nanoengineering and chemistry. “Our very first theoretical analysis warned that on copper, boron would bond too strongly. Now, more than a decade later, it turns out we were right — and the result is not borophene, but something else entirely.”

Previous studies successfully synthesized borophene on metals like silver and gold, but copper remained an open — and contested — case. Some experiments suggested boron might form polymorphic borophene on copper, while others suggested it could phase-separate into borides or even nucleate into bulk crystals. Resolving these possibilities required a uniquely detailed investigation combining high-resolution imaging, spectroscopy and theoretical modeling.

“What my experimentalist colleagues first saw were these rich patterns of atomic resolution images and spectroscopy signatures, which required a lot of hard work of interpretation,” Yakobson said.

These efforts revealed a periodic zigzag superstructure and distinct electronic signatures, both of which deviated significantly from known borophene phases. A strong match between experimental data and theoretical simulations helped resolve a debate about the nature of the material that forms at the interface between the copper substrate and the near-vacuum environment of the growth chamber.

Although copper boride was not the material researchers set out to make, its discovery offers important insight into how boron interacts with different metal substrates in two-dimensional environments. The work expands the knowledge on the formation of atomically thin metal boride materials — an area that could inform future studies of related compounds, including those with known technological relevance, such as metal borides among ultra-high temperature ceramics, which are of great interest for extreme environments and hypersonic systems.

“2D copper boride is likely to be just one of many 2D metal borides that can be experimentally realized. We look forward to exploring this new family of 2D materials that have broad potential use in applications ranging from electrochemical energy storage to quantum information technology,” said Mark Hersam , Walter P. Murphy Professor of Materials Science and Engineering at Northwestern University, who is a co-corresponding author on the study.

The discovery comes shortly after another boron-related breakthrough by the same Rice theory team. In a separate study published in ACS Nano , researchers showed that borophene can form high-quality lateral, edge-to-edge junctions with graphene and other 2D materials, offering better electrical contact than even “bulky” gold. The juxtaposition of the two findings highlights both the promise and the challenge of working with boron at the atomic scale: its versatility allows for surprising structures but also makes it difficult to control.

“Those images we initially saw in the experimental data looked quite mysterious,” Yakobson said. “But in the end, it all fell into place and provided a logical answer — metal boride, bingo! This was unexpected at first, but now, it is settled — and the science can move forward.”

The research was supported by the Office of Naval Research (N00014-21-1-2679), the National Science Foundation (DMR-2308691) and the United States Department of Energy (2801SC0012547). The content herein is solely the responsibility of the authors and does not necessarily represent the official views of the funding organizations and institutions.

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Assembly instructions for enzymes

In biology, enzymes have evolved over millions of years to drive chemical reactions. Scientists from the Max Planck Institute for Dynamics and Self-Organization (MPI-DS) now derived universal rules to enable the de novo design of optimal enzymes. As an example, they considered the enzymatic reaction of breaking a dimer into two monomer molecules. Considering the geometry of such an enzyme-substrate-complex, they identified three golden rules that should be considered to build a functional enzyme.

First, the interface of both enzyme and molecule should be located at their respective smaller end. This way, a strong coupling between both of them can be achieved. For the same reason, the conformational change in the enzyme should not be smaller than in the reaction. Finally, the conformational change of the enzyme has to take place fast enough to maximize the chemical driving force of the reaction.

“We built our research on two main pillars,” Ramin Golestanian, director of MPI-DS describes the approach. “Conservation of momentum and coupling between the reaction coordinates,” he continues. Thus, the researchers expanded the view of a classical 2-dimensional reaction coordinate. Typically, models for enzymatic reactions define an energy barrier that has to be overcome in order for the reaction to take place.

“As in our model we also consider the enzyme dynamics and coupling, we go beyond this existing concept, considering two reaction coordinates,” say Michalis Chatzittofi, first author of the study. “Instead of overcoming an energy barrier, one can now imagine alternative ways to bypass it by taking alternative routes,” he concludes.

These results provide a new basis for the design of molecular machines, avoiding the tedious and technically challenging approach to simulate the dynamics of each atom individually.

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‘My health condition makes me scared to get pregnant’

Pre-menstrual dysphoric disorder is treated by the contraceptive pill – putting some women in a dilemma.

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Why are some rocks on the moon highly magnetic?

Where did the moon’s magnetism go? Scientists have puzzled over this question for decades, ever since orbiting spacecraft picked up signs of a high magnetic field in lunar surface rocks. The moon itself has no inherent magnetism today.

Now, MIT scientists may have solved the mystery. They propose that a combination of an ancient, weak magnetic field and a large, plasma-generating impact may have temporarily created a strong magnetic field, concentrated on the far side of the moon.

In a study appearing in the journal Science Advances, the researchers show through detailed simulations that an impact, such as from a large asteroid, could have generated a cloud of ionized particles that briefly enveloped the moon. This plasma would have streamed around the moon and concentrated at the opposite location from the initial impact. There, the plasma would have interacted with and momentarily amplified the moon’s weak magnetic field. Any rocks in the region could have recorded signs of the heightened magnetism before the field quickly died away.

This combination of events could explain the presence of highly magnetic rocks detected in a region near the south pole, on the moon’s far side. As it happens, one of the largest impact basins — the Imbrium basin — is located in the exact opposite spot on the near side of the moon. The researchers suspect that whatever made that impact likely released the cloud of plasma that kicked off the scenario in their simulations.

“There are large parts of lunar magnetism that are still unexplained,” says lead author Isaac Narrett, a graduate student in the MIT Department of Earth, Atmospheric and Planetary Sciences (EAPS). “But the majority of the strong magnetic fields that are measured by orbiting spacecraft can be explained by this process — especially on the far side of the moon.”

Narrett’s co-authors include Rona Oran and Benjamin Weiss at MIT, along with Katarina Miljkovic at Curtin University, Yuxi Chen and Gábor Tóth at the University of Michigan at Ann Arbor, and Elias Mansbach PhD ’24 at Cambridge University. Nuno Loureiro, professor of nuclear science and engineering at MIT, also contributed insights and advice.

Beyond the sun

Scientists have known for decades that the moon holds remnants of a strong magnetic field. Samples from the surface of the moon, returned by astronauts on NASA’s Apollo missions of the 1960s and 70s, as well as global measurements of the moon taken remotely by orbiting spacecraft, show signs of remnant magnetism in surface rocks, especially on the far side of the moon.

The typical explanation for surface magnetism is a global magnetic field, generated by an internal “dynamo,” or a core of molten, churning material. The Earth today generates a magnetic field through a dynamo process, and it’s thought that the moon once may have done the same, though its much smaller core would have produced a much weaker magnetic field that may not explain the highly magnetized rocks observed, particularly on the moon’s far side.

An alternative hypothesis that scientists have tested from time to time involves a giant impact that generated plasma, which in turn amplified any weak magnetic field. In 2020, Oran and Weiss tested this hypothesis with simulations of a giant impact on the moon, in combination with the solar-generated magnetic field, which is weak as it stretches out to the Earth and moon.

In simulations, they tested whether an impact to the moon could amplify such a solar field, enough to explain the highly magnetic measurements of surface rocks. It turned out that it wasn’t, and their results seemed to rule out plasma-induced impacts as playing a role in the moon’s missing magnetism.

A spike and a jitter

But in their new study, the researchers took a different tack. Instead of accounting for the sun’s magnetic field, they assumed that the moon once hosted a dynamo that produced a magnetic field of its own, albeit a weak one. Given the size of its core, they estimated that such a field would have been about 1 microtesla, or 50 times weaker than the Earth’s field today.

From this starting point, the researchers simulated a large impact to the moon’s surface, similar to what would have created the Imbrium basin, on the moon’s near side. Using impact simulations from Katarina Miljkovic, the team then simulated the cloud of plasma that such an impact would have generated as the force of the impact vaporized the surface material. They adapted a second code, developed by collaborators at the University of Michigan, to simulate how the resulting plasma would flow and interact with the moon’s weak magnetic field.

These simulations showed that as a plasma cloud arose from the impact, some of it would have expanded into space, while the rest would stream around the moon and concentrate on the opposite side. There, the plasma would have compressed and briefly amplified the moon’s weak magnetic field. This entire process, from the moment the magnetic field was amplified to the time that it decays back to baseline, would have been incredibly fast — somewhere around 40 minutes, Narrett says.

Would this brief window have been enough for surrounding rocks to record the momentary magnetic spike? The researchers say, yes, with some help from another, impact-related effect.

They found that an Imbrium-scale impact would have sent a pressure wave through the moon, similar to a seismic shock. These waves would have converged to the other side, where the shock would have “jittered” the surrounding rocks, briefly unsettling the rocks’ electrons — the subatomic particles that naturally orient their spins to any external magnetic field. The researchers suspect the rocks were shocked just as the impact’s plasma amplified the moon’s magnetic field. As the rocks’ electrons settled back, they assumed a new orientation, in line with the momentary high magnetic field.

“It’s as if you throw a 52-card deck in the air, in a magnetic field, and each card has a compass needle,” Weiss says. “When the cards settle back to the ground, they do so in a new orientation. That’s essentially the magnetization process.”

The researchers say this combination of a dynamo plus a large impact, coupled with the impact’s shockwave, is enough to explain the moon’s highly magnetized surface rocks — particularly on the far side. One way to know for sure is to directly sample the rocks for signs of shock, and high magnetism. This could be a possibility, as the rocks lie on the far side, near the lunar south pole, where missions such as NASA’s Artemis program plan to explore.

“For several decades, there’s been sort of a conundrum over the moon’s magnetism — is it from impacts or is it from a dynamo?” Oran says. “And here we’re saying, it’s a little bit of both. And it’s a testable hypothesis, which is nice.”

The team’s simulations were carried out using the MIT SuperCloud. This research was supported, in part, by NASA.

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Mystery of ‘very odd’ elasmosaur finally solved: fiercely predatory marine reptile is new species

A group of fossils of elasmosaurs — some of the most famous in North America — have just been formally identified as belonging to a “very odd” new genus of the sea monster, unlike any previously known.

Long-necked and measuring in at 12 metres, Traskasaura sandrae — as it is officially named today in this new study — possessed heavy, sharp, robust teeth, ideal for crushing.

Findings, published in the peer-reviewed Journal of Systematic Palaeontology, highlight Traskasaura as having a strange mix of primitive and derived traits unlike any other elasmosaur.

Its unique suite of adaptations enabled this plesiosaurto hunt prey from above. The findings suggest that the fierce marine reptile was perhaps one of the first plesiosaur taxa to do so.

The 85-million-year-old fossils are not new to science, though, far from it.

The first (now known to be) Traskasaura fossil was discovered from Late Cretaceous rocks in 1988 along the Puntledge River on Vancouver Island. Since then, additional fossils have been recovered: an isolated right humerus and a well-preserved, juvenile skeleton comprising thorax, girdles and limbs. All in all, three animals are part of the collection detailed in the new paper, all from Haslam Formation of Vancouver Island.

First described in 2002, the fossils recently became famous, having been adopted by the Province of British Columbia and declared as the official fossil emblem of British Columbia (‘the Provincial Fossil of British Columbia’). They are currently on public display at The Courtenay and District Museum and Palaeontology Centre, Courtenay, British Columbia.

The designation as the Provincial Fossil of British Columbia followed a five-year appreciation effort by paleontology enthusiasts and a provincewide public poll in 2018, in which the elasmosaur received 48% of the vote.

“Plesiosaur fossils have been known for decades in British Columbia,” explains lead author Professor F. Robin O’Keefe from Marshall University, in West Virginia, USA.

“However, the identity of the animal that left the fossils has remained a mystery, even as it were declared BC’s provincial fossil in 2023. Our new research published today finally solves this mystery.

“The scientific confusion concerning this taxon is understandable. It has a very odd mix of primitive and derived traits. The shoulder, in particular, is unlike any other plesiosaur I have ever seen, and I have seen a few.”

Professor O’Keefe, who is an expert on marine reptiles from the age of dinosaurs, adds: “With the naming of Traskasaura sandrae, the Pacific Northwest finally has Mesozoic reptile to call its own. Fittingly, a region known for its rich marine life today was host to strange and wonderful marine reptiles in the Age of Dinosaurs.”

“The fossil record is full of surprises. It is always gratifying to discover something unexpected. When I first saw the fossils and realized they represented a new taxon, I thought it might be related to other plesiosaurs from the Antarctic. My Chilean colleague Rodrigo Otero thought differently, and he was right; Traskasaura is a strange, convergently evolved, fascinating beast.”

In the initial, 2002 description of the fossils, experts were reluctant to erect a new genus based solely on the adult skeleton of the elasmosaur discovered.

Relatively few characters were “unambiguous” on this particular skeleton.

However a new “excellently preserved” partial skeleton enabled this latest international team of scientists from Canada, Chile, and the United States to shed much new light on the morphology of the Puntledge River elasmosaur — and eventually identify it as a new genus and species.

They have named Traskasaura in honour of Courtenay, BC, based Michael and Heather Trask, who discovered the original holotype specimen along the banks of the Puntledge river in 1988, and the Greek word sauros, lizard.

The species name sandrae honours Sandra Lee O’Keefe (nee Markey) — and like Elizabeth Nicholls (one of the team who identified the fossils in 2002) — who was “a valiant warrior in the fight against breast cancer. “In loving memory,” the team of authors write.

Traskasaura clearly had a very long neck — at least 36 well-preserved cervical vertebrae indicate at least 50 bones in the neck, and probably more.

And whilst not huge amounts are known about Traskasaura’s behaviour, the “fascinating and long list of autapomorphic characters” of the bones indicate strong capabilities for downward swimming. Professor O’Keefe believes the combination of its unusual features relate to its hunting style — where it would use this capability for downward swimming to dive upon its prey from above.

This prey was likely the abundant ammonites known from the region. These would have been a “good candidate — due to Traskasaura‘s robust teeth, ideal, possibly, for crushing ammonite shells,” Professor O’Keefe explains.

Summarizing their findings, the team says their hypothesis that the three individuals describe do not belong to the same taxon “does deserve consideration.” However, all three individuals show diagnostic features of the new taxon, and therefore probably represent a single species.

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