Puffy baby planets reveal a missing stage of planet formation

Astronomers were surprised to learn in recent years that most Sun-like stars host at least one planet that falls between Earth and Neptune in size and orbits closer than Mercury does in our own solar system — sizes and orbits absent from our solar system. These worlds, known as super-Earths and sub-Neptunes, turn out to be the most abundant type of planet in the Milky Way. Yet for all their prevalence, how they form has remained unclear. An international research team has now identified a long-missing piece of that puzzle by directly measuring four extremely young planets as they evolve toward these common planetary forms.

By studying the V1298 Tau system, the researchers captured an unusually early snapshot of planetary development. Their measurements reveal planets caught in the act of changing into the super-Earths and sub-Neptunes seen throughout the galaxy.

“What’s so exciting is that we’re seeing a preview of what will become a very normal planetary system,” says John Livingston, the study’s lead author from the Astrobiology Center in Tokyo, Japan. “The four planets we studied will likely contract into ‘super-Earths’ and ‘sub-Neptunes’ — the most common types of planets in our galaxy, but we’ve never had such a clear picture of them in their formative years.”

A Young Star System Frozen in Time

V1298 Tau is remarkably young by astronomical standards, at just about 20 million years old — a blink of an eye compared to the Sun’s 4.5-billion-year history. Four large planets circle this energetic star, each ranging in size from Neptune to Jupiter. These worlds appear to be in a short-lived and chaotic stage of rapid change, offering a glimpse of what many mature planetary systems once looked like.

Astronomers believe this system represents an early version of the tightly packed, multi-planet systems commonly found across the galaxy. Much like the Rosetta Stone helped scientists interpret ancient hieroglyphics, V1298 Tau provides a key reference for understanding how the galaxy’s most common planets take shape.

Measuring Planetary Mass Without Doppler Signals

Over a ten-year period, the team relied on a combination of space-based and ground-based telescopes to monitor the system. They tracked the precise moments when each planet crossed in front of its star, events called transits. These observations revealed that the planets’ orbits were not perfectly steady. Instead, the planets subtly pulled on one another, causing small but measurable changes in their transit timing.

These variations, known as Transit-Timing Variations (TTVs), allowed scientists to calculate the planets’ masses directly for the first time.

“For astronomers, our go-to ‘Doppler’ method for weighing planets involves making careful measurements of the star’s velocity as it’s tugged by its retinue of planets.” said Erik Petigura, a co-author from UCLA. “But young stars are so extremely spotty, active, and temperamental, that the Doppler method is a non-starter.” By using TTVs, we essentially used the planets’ own gravity against each other. Precisely timing how they tug on their neighbors allowed us to calculate their masses, and sidestep the issues with this young star.”

Planets as Light as Cosmic Cotton Candy

The mass measurements revealed a striking result. Even though the planets are five to ten times larger than Earth, their masses are only five to fifteen times greater. This combination makes them extraordinarily low in density — more like planetary-sized cotton candy than solid, rocky worlds.

“The unusually large radii of young planets led to the hypothesis that they have very low densities, but this had never been measured,” said Trevor David, a co-author from the Flatiron Institute who led the system’s original discovery in 2019. “By weighing these planets for the first time, we have provided the first observational proof. They are indeed exceptionally ‘puffy,’ which gives us a crucial, long-awaited benchmark for theories of planet evolution.”

Losing Atmospheres and Shrinking Over Time

This extreme puffiness helps resolve a long-standing question in planet formation. If planets simply formed and cooled slowly, they would be far more compact. Instead, the analysis shows that these young worlds must have changed dramatically early on, quickly losing large portions of their thick atmospheres as the surrounding disk of gas around their star disappeared.

“These planets have already undergone a dramatic transformation, rapidly losing much of their original atmospheres and cooling faster than what we’d expect from standard models,” explains James Owen, a co-author from Imperial College London who led the theoretical modeling. “But they’re still evolving. Over the next few billion years, they will continue to lose their atmosphere and shrink significantly, transforming into the compact worlds we see throughout the galaxy.”

Petigura compared the system’s importance to a famous fossil discovery. “I’m reminded of the famous ‘Lucy’ fossil, one of our hominid ancestors that lived 3 million years ago and was one of the key ‘missing links’ between apes and humans,” he said. “V1298Tau is a critical link between the star/planet forming nebulae we see all over the sky, and the mature planetary systems that we have now discovered by the thousands.”

Why Our Solar System Is Different

Today, V1298 Tau stands out as a natural laboratory for studying how the most common planets in the Milky Way come into existence. Observations of this system provide rare insight into the chaotic and transformative early lives of planets and may help explain why our own solar system lacks the super-Earths and sub-Neptunes that dominate elsewhere.

“This discovery fundamentally changes how we think about planetary systems,” adds Livingston. “V1298 Tau shows us that today’s super-Earths and sub-Neptunes start out as giant, puffy worlds that contract over time. We’re essentially watching the universe’s most successful planetary architecture in the making.”

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Late bedtimes are linked to higher heart disease risk

Night owls may face higher risks to their heart, especially later in life, with women appearing particularly affected.

  • Adults in midlife and older age who tend to be most active in the evening, especially women, showed poorer overall heart health than those without a strong preference for mornings or evenings, based on the American Heart Association’s Life’s Essential 8 measure.
  • Analysis of UK Biobank data suggests that common habits among night owls, including lower-quality diets, too little sleep, and higher rates of smoking, help explain why their cardiovascular health scores were lower.
  • Researchers say the findings point to a clear opportunity, since improving daily habits such as sleep, diet, and smoking cessation could help night owls reduce their risk of heart attack and stroke.

Late-Night Activity Tied to Poorer Heart Health

Adults in middle age and later life who tend to be more active in the evening were found to have worse cardiovascular health than those who are active earlier in the day. The association appeared to be stronger among women, according to new research published today in the Journal of the American Heart Association, an open-access, peer-reviewed journal of the American Heart Association.

The findings suggest that when people are most active during the day may play an important role in long-term heart health.

Study Tracks Sleep Timing in More Than 300,000 Adults

Researchers examined health data from more than 300,000 adults (average age of about 57 years) enrolled in the UK Biobank. The analysis focused on chronotypes, which describe a person’s natural preference for sleep and wake timing, and how those preferences relate to cardiovascular health.

Participants were grouped based on their self-identified daily patterns. About 8% described themselves as “definitely evening people,” meaning they typically went to bed very late (for example 2 a.m.) and reached peak activity later in the day. Around 24% reported being “definitely morning people,” who tended to wake up earlier, go to bed earlier (for example 9 p.m.), and be most active earlier in the day. The remaining 67% were categorized as having an “intermediate” chronotype if they were unsure or said they were neither clearly a morning nor evening person.

Cardiovascular health was evaluated using the American Heart Association’s Life’s Essential 8™ metrics. This framework looks at behaviors and health factors known to support heart health, including eating a healthy diet, staying physically active, not smoking, and getting good-quality sleep. It also includes maintaining healthy levels of body weight, cholesterol, blood sugar, and blood pressure.

Key Differences Between Night Owls and Early Birds

The researchers identified several notable patterns when comparing chronotype groups:

Compared with people in the intermediate category, those classified as “evening people,” often called night owls, were 79% more likely to have an overall poor cardiovascular health score.

Night owls also had a 16% higher risk of experiencing a heart attack or stroke during a median follow-up period of about 14 years.

The link between evening chronotype and lower heart health scores was stronger among women than among men.

Much of the increased heart disease risk seen in evening types was linked to lifestyle habits, particularly nicotine use and insufficient sleep.

In contrast, “morning people,” also known as early birds, showed a 5% lower prevalence of poor cardiovascular health scores compared with individuals without a strong morning or evening preference.

Why Evening Types May Face Added Risk

“‘Evening people’ often experience circadian misalignment, meaning their internal body clock may not match the natural day-to-night light cycle or their typical daily schedules,” said lead study author Sina Kianersi, Ph.D., D.V.M.; a research fellow in the division of sleep and circadian disorders at Brigham and Women’s Hospital and Harvard Medical School, both in Boston. “Evening people may be more likely to have behaviors that can affect cardiovascular health, such as poorer diet quality, smoking and inadequate or irregular sleep.”

This misalignment may make it harder for night owls to maintain habits that support long-term heart health.

Lifestyle Changes Could Reduce Risk

The findings are not entirely discouraging for people who prefer late nights, according to Kristen Knutson, Ph.D., FAHA, volunteer chair of the 2025 American Heart Association statement, Role of Circadian Health in Cardiometabolic Health and Disease Risk. Knutson was not involved in the study.

“These findings show that the higher heart disease risks among evening types are partly due to modifiable behaviors such as smoking and sleep. Therefore, evening types have options to improve their cardiovascular health,” she said. “Evening types aren’t inherently less healthy, but they face challenges that make it particularly important for them to maintain a healthy lifestyle.”

Tailoring Treatment to Body Clocks

The American Heart Association scientific statement led by Knutson also recommends taking chronotype into account when planning treatment or lifestyle interventions.

“Some medications or therapies work best when they align with a specific time of relevant circadian rhythms, and this time will vary depending on whether you are a morning, intermediate, or evening chronotype,” she said. “Targeted programs for people who naturally stay up late could help them improve their lifestyle behaviors and reduce their risk of cardiovascular disease.”

Study Limitations

The researchers noted that most UK Biobank participants were white people and generally healthier than the overall population, which may limit how broadly the findings apply to other groups. In addition, chronotype was assessed only once and was based on self-reported information rather than repeated measurements.

The study was partially funded by the American Heart Association.

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The early turning point when men’s heart risk accelerates

A decades-long study tracking people from young adulthood has uncovered an early and unexpected shift in heart disease risk.

  • Men reached a 5% risk of cardiovascular disease roughly seven years earlier than women, revealing a clear and early gap in heart health.
  • Coronary heart disease accounted for most of this difference, driving the earlier rise in risk among men.
  • Heart disease risk looked similar for men and women until about age 35, when men’s risk began to increase more quickly.
  • The earlier onset in men cannot be explained by smoking, high blood pressure, or diabetes alone, pointing to additional biological or social influences.

Heart Disease Risk Appears Earlier in Men

Men start developing coronary heart disease years before women do, and the difference can be seen as early as the mid-30s, according to a large, long-term study led by Northwestern Medicine. Coronary heart disease is a major cause of heart attacks.

Based on more than 30 years of follow-up, the findings suggest that heart disease screening and prevention may need to begin earlier in adulthood, especially for men.

“That timing may seem early, but heart disease develops over decades, with early markers detectable in young adulthood,” said study senior author Alexa Freedman, assistant professor of preventive medicine at Northwestern University Feinberg School of Medicine.

“Screening at an earlier age can help identify risk factors sooner, enabling preventive strategies that reduce long-term risk.”

Why the Male Female Gap Has Not Closed

Previous research has long shown that men tend to develop heart disease earlier than women. Over time, however, common risk factors such as smoking, high blood pressure and diabetes have become more alike between the sexes. Because of this, researchers expected the difference in heart disease timing to shrink.

Instead, the gap remained. That result was unexpected, Freedman said.

To better explain why these differences continue, Freedman and her colleagues say researchers need to look beyond standard measures like cholesterol and blood pressure and consider a wider range of biological and social influences.

The study was published on January 28 in the Journal of The American Heart Association.

Tracking Heart Disease From Young Adulthood

The research team analyzed data from the Coronary Artery Risk Development in Young Adults (CARDIA) study. The project enrolled more than 5,100 Black and white adults between ages 18 and 30 in the mid-1980s and followed them through 2020.

Because participants were healthy at the start, the researchers were able to identify when cardiovascular disease risk first began to separate between men and women. Men reached a 5% rate of cardiovascular disease, defined broadly to include heart attack, stroke and heart failure, about seven years earlier than women (50.5 versus 57.5 years).

Most of this difference was due to coronary heart disease. Men reached a 2% incidence of coronary heart disease more than 10 years earlier than women. Stroke rates were similar for both sexes, and differences in heart failure appeared later in life. “This was still a relatively young sample — everyone was under 65 at last follow-up — and stroke and heart failure tend to develop later in life,” Freedman explained.

Traditional Risk Factors Do Not Tell the Whole Story

The researchers examined whether common risk factors could explain why men developed heart disease sooner. These included blood pressure, cholesterol, blood sugar, smoking, diet, physical activity and body weight.

While some factors, especially high blood pressure, accounted for part of the difference, overall cardiovascular health did not fully explain the earlier onset in men. This points to the influence of additional biological or social factors.

Age 35 Emerges as a Key Turning Point

One of the most notable findings was when the risk gap began. Men and women had similar cardiovascular risk through their early 30s. Around age 35, men’s risk increased more quickly and remained higher through midlife.

Many heart disease prevention and screening efforts focus on adults older than 40. The new results suggest this approach may miss an important early window for action.

The authors point to the American Heart Association’s PREVENT risk equations, which can predict heart disease starting at age 30, as a promising tool for earlier intervention.

Gaps in Preventive Care for Young Men

Closing the gap between men and women may be difficult because preventive care use is uneven among U.S. adults ages 18 to 44. Women are more than four times as likely as men to attend routine checkups, largely because of gynecologic and obstetric visits.

“Our findings suggest that encouraging preventive care visits among young men could be an important opportunity to improve heart health and lower cardiovascular disease risk,” Freedman said.

She also stressed that cardiovascular disease remains the leading cause of death for both men and women, making prevention essential for everyone.

The study is titled “Sex Differences in Age of Onset of Premature Cardiovascular Disease and Subtypes: The Coronary Artery Risk Development in Young Adults Study.” Freedman is supported by the National Heart, Lung, and Blood Institute (K01HL165038). CARDIA is conducted and supported by the National Heart, Lung, and Blood Institute in collaboration with the University of Alabama at Birmingham (75N92023D00002 & 75N92023D00005), Northwestern University (75N92023D00004), University of Minnesota (75N92023D00006) and Kaiser Foundation Research Institute (75N92023D00003).

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A breakthrough that could make ships nearly unsinkable

More than 100 years after the sinking of the Titanic, the idea of ships that cannot sink continues to motivate engineers. Researchers at the University of Rochester’s Institute of Optics have now taken a significant step toward that long-standing goal. They have developed a technique that makes ordinary metal tubes unsinkable — meaning the tubes stay afloat regardless of how long they remain underwater or how much damage they sustain.

The work was led by Chunlei Guo, a professor of optics and physics and a senior scientist at URochester’s Laboratory for Laser Energetics. Guo and his colleagues detailed the new method in a study published in Advanced Functional Materials. Their approach focuses on modifying the inside surface of aluminum tubes by etching it to create microscopic and nanoscale pits. This textured surface becomes superhydrophobic, allowing it to strongly repel water and remain dry.

How Trapped Air Prevents Sinking

When a treated tube is placed in water, its water-repelling interior captures a stable pocket of air inside. This trapped air keeps water from filling the tube, which prevents it from becoming heavy and sinking. The process resembles natural strategies seen in diving bell spiders, which carry air bubbles underwater, and in fire ants, which form floating rafts using their water-resistant bodies.

“Importantly, we added a divider to the middle of the tube so that even if you push it vertically into the water, the bubble of air remains trapped inside and the tube retains its floating ability,” says Guo.

Improved Stability in Rough Conditions

Guo’s research group first demonstrated superhydrophobic floating devices in 2019. That earlier design relied on two water-repelling disks sealed together to create buoyancy. While effective, the disks could lose their ability to float when tilted at extreme angles. The newer tube-based design simplifies the structure and offers much greater stability, especially in turbulent environments similar to ocean conditions.

“We tested them in some really rough environments for weeks at a time and found no degradation to their buoyancy,” says Guo. “You can poke big holes in them, and we showed that even if you severely damage the tubes with as many holes as you can punch, they still float.”

From Floating Rafts to Renewable Energy

The researchers showed that multiple tubes can be connected to form rafts, which could serve as the foundation for ships, buoys, or floating platforms. In laboratory tests, the team experimented with tubes of different lengths, reaching nearly half a meter. Guo says the design can be scaled up to sizes large enough to support heavy loads.

Beyond transportation and infrastructure, the team also demonstrated that rafts made from superhydrophobic tubes could capture energy from moving water. This capability suggests a potential role for the technology in generating electricity from waves, adding a renewable energy application to its list of possibilities.

This project was supported by the National Science Foundation, the Bill and Melinda Gates Foundation, and URochester’s Goergen Institute for Data Science and Artificial Intelligence.

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‘I get nightmares of him’: Former patient of surgeon who harmed nearly 100 children tells BBC

12-year-old Vivaan Sharma was one of 94 patients harmed by surgeon Yaser Jabbar

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Trust’s maternity care ‘exemplary’, say inspectors

Maternity services at Lancaster Royal Infirmary are rated “good”, but improvements must be made in A&E.

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Could weight-loss jabs be behind rising gallbladder removals?

Last year, there was a 15% annual increase in the operations and surgeons want more research.

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‘Damning’ evidence of political pressure to open scandal-hit hospital – Sarwar

The Scottish Labour leader says documents prove ministers pushed for the country’s largest hospital to open early.

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Weight loss jab users warned over rare but serious pancreas issue

Symptoms to look out for include severe pain in the stomach and back which does not go away.

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A simple blood test could spot Parkinson’s years before symptoms

Researchers led by a team at Chalmers University of Technology in Sweden have identified biological markers that appear in the earliest stages of Parkinson’s disease, before major damage occurs in the brain. These early changes leave detectable traces in the blood, but only for a short time. The findings highlight a critical opportunity to both diagnose the disease earlier and explore treatments while the brain is still largely intact. The researchers believe blood tests based on this work could begin to be tested in healthcare settings within five years.

Parkinson’s disease affects more than 10 million people worldwide and is considered an endemic condition. As populations continue to age, that number is expected to more than double by 2050. Despite its growing impact, there is currently no cure and no widely used screening method that can detect the disease early, before it causes significant and often irreversible brain damage.

New Study Points Toward Earlier Diagnosis

The findings were published in the journal npj Parkinson’s Disease by a research team from Chalmers University of Technology and Oslo University Hospital in Norway. The study describes major progress toward identifying Parkinson’s during its earliest phase, well before classic movement-related symptoms appear.

“By the time the motor symptoms of Parkinson’s disease appear, 50 — 80 per cent of the relevant brain cells are often already damaged or gone. The study is an important step towards facilitating early identification of the disease and counteracting its progression before it has gone this far,” says Danish Anwer, a doctoral student at the Department of Life Sciences at Chalmers and the study’s first author.

A Long and Overlooked Early Phase

Parkinson’s disease develops slowly. In many patients, the early phase can last up to 20 years before noticeable motor symptoms fully emerge. During this time, changes are already occurring inside cells.

The researchers focused on two biological processes believed to play a role at this early stage. One is DNA damage repair, the system cells use to detect and fix genetic damage. The other is the cellular stress response, a protective reaction that helps cells survive by shifting energy away from routine tasks and toward repair and defense.

Machine Learning Reveals a Unique Pattern

Using machine learning and other advanced analytical methods, the team identified a distinct pattern of gene activity related to DNA repair and stress response. This pattern appeared only in people in the early phase of Parkinson’s disease. It was not seen in healthy individuals or in patients who had already developed motor symptoms.

“This means that we have found an important window of opportunity in which the disease can be detected before motor symptoms caused by nerve damage in the brain appear. The fact that these patterns only show at an early stage and are no longer activated when the disease has progressed further also makes it interesting to focus on the mechanisms to find future treatments,” says Annikka Polster, Assistant Professor at the Department of Life Sciences at Chalmers, who led the study.

Why Blood-Based Testing Matters

Scientists around the world have been searching for reliable early indicators of Parkinson’s disease, including markers found through brain imaging and spinal fluid analysis. However, none of these approaches has yet led to a validated screening test suitable for widespread use before symptoms begin.

“In our study, we highlighted biomarkers that likely reflect some of the early biology of the disease and showed they can be measured in blood. This paves the way for broad screening tests via blood samples: a cost-effective, easily accessible method,” says Polster.

Blood Tests Could Reach Healthcare Within Years

The next phase of the research will focus on understanding exactly how these early biological mechanisms work and on developing tools that make them easier to detect.

The researchers estimate that within five years, blood tests designed to identify Parkinson’s disease at an early stage could begin to be tested in healthcare systems. Over the longer term, the findings may also support the development of treatments aimed at slowing or preventing the disease.

“If we can study the mechanisms as they happen, it could provide important keys to understanding how they can be stopped and which drugs might be effective. This may involve new drugs, but also drug repurposing, where we can use drugs developed for diseases other than Parkinson’s because the same gene activities or mechanisms are active,” says Polster.

More About the Scientific Article

The study Longitudinal assessment of DNA repair signature trajectory in prodromal versus established Parkinson’s disease has been published in npj Parkinson’s Disease. The authors are Danish Anwer, Nicola Pietro Montaldo, Elva Maria Novoa-del-Toro, Diana Domanska, Hilde Loge Nilsen and Annikka Polster. The researchers work at Chalmers University of Technology, Sweden, and Oslo University Hospital, Norway.

The research has been funded by Chalmers Health Engineering Area of Advance, Sweden, the Michael J Fox Foundation, the Research Council of Norway, NAISS (National Academic Infrastructure for Supercomputing in Sweden) and the Swedish Research Council.

More About Parkinson’s Disease

Parkinson’s disease is a neurological disorder that interferes with the brain’s ability to control movement. It progresses slowly and most often begins after the age of 55 — 60. Parkinson’s is the second most common neurodegenerative disease worldwide, after Alzheimer’s disease. More than 10 million people have been diagnosed globally, and that number is projected to more than double by 2050.

Sources: The Swedish Parkinson’s Association, The BMJ, global projection study, 2024

Parkinson’s Disease Symptoms and Progression

Early symptoms

  • REM sleep behavior disorder: The person acts out dreams during REM sleep, often with movements or sounds.
  • Reduced sense of smell
  • Constipation
  • Depression
  • Anxiety

Motor symptoms later in the disease

  • Slow movements
  • Rigidity and instability
  • Tremors
  • Involuntary muscle contractions
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