Only one workout helped older adults lose fat and keep muscle

Losing body fat is one thing. Losing fat while keeping the muscle that helps you stay strong and active is another, especially as you get older. Research suggests that one particular type of exercise may have an advantage when it comes to achieving both goals.

High-intensity interval training (HIIT), which involves alternating short bursts of demanding exercise with easier recovery periods, may be especially helpful for older adults who want to reduce fat without sacrificing lean muscle.

In a study published in Maturitas, researchers from the University of the Sunshine Coast compared three different exercise intensities. Although participants across the groups experienced modest fat loss, HIIT stood out for its ability to reduce fat while maintaining lean tissue.

“We found that high, medium and low intensity exercises all led to modest fat loss but only HIIT retained lean muscle,” said lead author and exercise physiologist Dr. Grace Rose of the University of the Sunshine Coast.

The results highlight an important distinction in healthy aging: losing weight is not necessarily the same as improving body composition.

Six Months of Exercise Revealed a Key Difference

The Australian research team investigated how workout intensity affects body composition, meaning the proportions of fat, muscle and other tissues that make up the body.

A total of 123 healthy older adults from the Greater Brisbane region participated in the trial. Their average age was 72, and their average body mass index was approximately 26kg/m2, which the researchers described as normal for adults over 65.

Participants completed three supervised gym sessions each week for six months. Each session lasted 45 minutes, and participants were assigned to high-intensity intervals, moderate-intensity exercise, or a low-intensity comparison group.

To track changes, researchers measured body composition at the beginning of the study, after three months, and again at six months. They used a specialized scanning technique that estimates fat and lean tissue throughout the body.

The findings revealed that exercise intensity made a difference.

Both high- and moderate-intensity training significantly reduced fat mass, with larger improvements than those seen in the low-intensity group. However, the two more demanding approaches differed in their effects on lean tissue.

“While moderate training reduced fat mass, it also caused a small decline in lean muscle,” Rose said.

Participants performing HIIT, meanwhile, reduced fat without experiencing the same decline in lean mass.

This could be particularly valuable later in life, when maintaining muscle becomes increasingly important for physical independence. Strong muscles help people climb stairs, get out of chairs, maintain balance, and carry out everyday activities.

One important distinction is that the scans measured lean tissue rather than muscle strength directly. Lean mass includes muscle but also other tissues and water, so changes in these measurements do not necessarily translate into equivalent changes in strength.

High-Intensity Exercise Also Reduced Abdominal Fat

The researchers found another potentially important benefit involving fat stored around the middle of the body.

“Both high and moderate intensities improved the composition of weight carried around the middle. Further analysis is needed of the low intensity results.”

The original study found improvements in visceral adipose tissue among both the high and moderate intensity groups.

Visceral fat is different from the fat that sits directly beneath the skin. It accumulates deeper in the abdomen, surrounding internal organs such as the liver and intestines.

Excessive amounts of this fat have been linked to insulin resistance, cardiovascular disease, and other metabolic problems.

According to Rose, these findings matter because body composition can influence the development and progression of chronic diseases as people age.

While body weight and body mass index provide useful general information, they do not reveal how much fat or muscle a person carries, or where that fat is stored.

Someone who loses fat while maintaining muscle may experience a more favorable change in body composition than someone who loses a similar amount of weight along with valuable lean tissue.

Still, the original researchers emphasized that the improvements were relatively small. They cautioned that the differences were not clearly clinically meaningful when compared with lower intensity exercise, particularly after accounting for measurement uncertainty.

Why HIIT May Help Aging Muscles Stay Strong

One possible explanation for HIIT’s advantage lies in the way it challenges the body.

Rather than exercising at the same pace throughout a workout, HIIT repeatedly pushes the cardiovascular system and working muscles through periods of intense effort, followed by easier activity.

University of the Sunshine Coast Associate Professor of Physiology and study co-author Mia Schaumberg explained how the training worked.

“High-intensity training in this study involved repeated short bursts, or intervals, of very hard exercise — where breathing is heavy and conversation is difficult — alternated with easier recovery periods.

“HIIT likely works better because it puts more stress on the muscles, giving the body a stronger signal to keep muscle tissue rather than lose it.”

This explanation is consistent with the idea that muscles adapt to the demands placed on them. When exercise provides a sufficiently challenging stimulus, the body has more reason to maintain the tissues needed to perform that activity.

Muscle preservation is especially important because aging is often accompanied by a gradual decline in muscle mass and strength. In more advanced cases, this can contribute to sarcopenia, a condition characterized by reduced muscle strength and quantity that can interfere with mobility and independence.

Schaumberg said the original research could help people make more informed decisions about exercise and healthy aging.

When the university publicized the findings in early 2026, she also highlighted their relevance to people setting fitness goals.

“With the festive season now behind most of us and New Year’s resolutions in full swing, this research can help inform people’s plans for healthy aging in 2026,” she said.

The research involved collaborators from UniSC’s Healthy Ageing Research Cluster and The University of Queensland.

More Recent Studies Reveal Additional Benefits of HIIT

Research published in 2026 has provided further insight into how HIIT affects older adults, although it also suggests that intense workouts are not necessarily superior in every situation.

One 2026 study, published in Medicine & Science in Sports & Exercise, investigated whether older adults could benefit from completing HIIT at home with remote supervision.

The study involved 20 adults aged 61 to 74 who exercised using a specialized machine that let them work their arms and legs without bearing their body weight.

After eight weeks of training, participants had lost an average of approximately 1.4 kilograms, or about 3 pounds, of fat mass. Their aerobic fitness also improved substantially.

Participants completed 96 percent of their scheduled workouts, and the researchers reported no exercise-related adverse events.

Although the trial was small, its findings suggest that appropriately supervised HIIT programs may offer benefits outside a conventional gym.

Another 2026 randomized trial, published in The Journals of Gerontology, Series A: Biological Sciences and Medical Sciences, compared HIIT with continuous moderate-intensity exercise in older adults living with HIV.

In that study, participants completed 16 weeks of exercise, with both groups also performing resistance training.

Unlike the original Australian study, both exercise groups experienced reductions in fat and increases in lean mass. The researchers found no statistically significant difference between the two groups in those body composition changes.

These results suggest that workout intensity is not the only factor that matters. Resistance training, which challenges muscles through weights or other forms of resistance, may also help preserve or increase lean tissue.

The populations and training programs differed, so the findings should not be treated as a direct contradiction of the Australian results.

Is HIIT Really the Best Exercise for Older Adults?

A broader scientific review published in the Journal of Clinical Medicine in August 2026 offers additional perspective.

Researchers examined 25 reports involving approximately 2,818 participants to assess how HIIT and other forms of interval training affect older adults.

The most consistent benefits involved cardiovascular fitness, including improvements in the body’s ability to use oxygen during exercise.

Some studies also reported improvements in physical function and metabolic health. However, the review did not establish that HIIT was consistently better than moderate-intensity exercise.

The researchers noted that differences between exercise programs, participant characteristics, and study methods made it difficult to identify a single optimal training approach.

Taken together, the findings suggest that HIIT can be a useful tool for healthy aging, but it is not the only way to improve fitness or protect muscle.

For adults over 65, the Centers for Disease Control and Prevention recommends a combination of aerobic exercise, muscle strengthening activities, and exercises that improve balance.

Higher intensity workouts may be appropriate for some older adults, but people who are inactive or have medical conditions may benefit from gradually building up their fitness and seeking guidance before beginning a demanding program.

The central message from the Australian study remains compelling: what happens to muscle during fat loss may be just as important as the amount of weight someone loses.

HIIT showed promise because it helped participants reduce body fat while maintaining lean tissue. Combined with newer findings, the research reinforces the value of exercise programs that support not just a lower number on the scale, but also the strength, fitness, and physical function needed for healthy aging.

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NASA astronauts splash down after 100 million miles in space

After spending more than seven months aboard the International Space Station, NASA’s SpaceX Crew-12 astronauts have safely returned to Earth. Their spacecraft splashed down Thursday in the Pacific Ocean near Los Angeles, bringing an extraordinary mission to a close.

The four astronauts spent 237 days in orbit, traveled more than 100 million miles, and completed thousands of trips around Earth while carrying out scientific experiments that could help shape future missions to the Moon and Mars.

NASA will host a news conference at 3:30 p.m. EDT on Thursday, Oct. 15, at Johnson Space Center in Houston, where returning crew members will discuss their experiences and research accomplishments.

“Jessica, Jack, Sophie, and Andrey spent 237 days living and working in orbit, traveled more than 100 million miles, advanced important science, and returned safely home because of the extraordinary expertise and competence of thousands across NASA, SpaceX, and our international partners,” said NASA Administrator Jared Isaacman. “Building the capability, experience, and confidence to do this repeatedly is exactly what will allow us to go farther, and I am grateful to Crew-12 and their families for their service to humanity’s greatest adventure.”

NASA Astronauts Return After 237 Days and 100 Million Miles

The returning crew included NASA astronauts Jessica Meir and Jack Hathaway, ESA (European Space Agency) astronaut Sophie Adenot, and Roscosmos cosmonaut Andrey Fedyaev.

Their spacecraft touched down in the Pacific at 8:34 a.m. PDT. SpaceX recovery teams aboard specialized vessels reached the capsule shortly afterward and brought the astronauts and spacecraft aboard.

Following routine medical evaluations, the crew members will be transported to shore before traveling to NASA’s Johnson Space Center in Houston.

“NASA’s activities supporting the International Space Station — transporting crew, conducting impactful research, and maintaining critical national assets — enable the science, engineering, and risk‑reduction needed for future missions across the solar system,” said Dana Weigel, manager of NASA’s Low Earth Orbit Program at the agency’s Johnson Space Center. “We’re grateful for the dedication across the human spaceflight team that makes this possible, and we’re thrilled to welcome Jessica, Jack, Sophie, and Andrey home.”

Over the course of their 237-day stay, the astronauts circled Earth more than 3,792 times, accumulating over 100 million miles of travel.

For Meir and Fedyaev, Crew-12 marked their second journey into space. Hathaway and Adenot, meanwhile, completed their first space missions.

The crew launched on Feb. 13 at 5:15 a.m. EST, reaching and docking with the International Space Station the following day.

Space Station Experiments Could Help Future Moon and Mars Missions

Beyond the remarkable distance traveled, Crew-12 devoted hundreds of hours to scientific investigations designed to support future human exploration and improve life on Earth.

One research project explored ways to produce stem cells in space for potential use in cell-based medical treatments. Another demonstrated technology capable of producing IV fluids on demand, an ability that could become especially valuable during long-duration missions far from Earth.

The astronauts also investigated how pneumonia-causing bacteria may contribute to lasting heart damage. Understanding this relationship could offer new insights into cardiovascular health.

Other experiments focused on nutrition in space and how individual physical characteristics may influence blood flow during spaceflight. These studies could help researchers better understand the health risks astronauts face during extended stays in microgravity.

Together, the investigations provide valuable information about keeping humans healthy beyond Earth while testing technologies that may eventually support crewed expeditions to the Moon and Mars.

Historic Spacewalks Mark Crew-12 Mission

The mission also included significant milestones outside the space station.

Meir carried out four spacewalks during Crew-12, raising her career total to seven. That achievement places her third among NASA women for the most career spacewalks, behind former astronauts Peggy Whitson and Suni Williams.

Adenot also reached a historic milestone by completing three spacewalks. In doing so, she became the first French woman to venture outside the International Space Station.

With Crew-12 safely back on Earth, NASA has completed another extended mission that combined scientific research, international cooperation, and human spaceflight experience. The knowledge gained will contribute to preparations for more ambitious journeys beyond Earth’s orbit.

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October’s night sky is full of cosmic tricks and treats

October is bringing a spectacular lineup of celestial events, including a disappearing planet, two meteor showers, and a bright full Moon just in time for Halloween. As autumn days grow shorter and darkness arrives earlier, the night sky offers more opportunities to witness some remarkable astronomical sights.

NASA has highlighted four events worth watching this month, ranging from Jupiter briefly vanishing behind the Moon to shooting stars created by debris from Halley’s Comet. With crisp autumn evenings and a little luck, skywatchers can enjoy several of these displays without any special equipment.

Jupiter Disappears Behind the Moon on October 6

Before sunrise on Tuesday, October 6, skywatchers in parts of North America had an opportunity to witness an unusual celestial disappearing act. Jupiter, the largest planet in our solar system, slipped behind the Moon’s slender crescent and remained hidden for approximately an hour before coming back into view.

Astronomers call this phenomenon a lunar occultation. It happens when the Moon moves directly between Earth and a more distant object, temporarily blocking our view. Despite its mysterious-sounding name, occultation simply refers to one celestial object concealing another.

The event was visible to the naked eye, although binoculars offered a more detailed look. Observers using optical equipment could also potentially watch some of Jupiter’s moons disappear behind the lunar edge and emerge again.

Viewing opportunities depended on location, with the occultation visible across parts of eastern and central North America. The timing varied geographically, with the event occurring during the early morning hours, around 4 a.m. EDT in some locations.

Draconid Meteor Shower Peaks October 8 and 9

The next celestial attraction comes on the evening of Thursday, October 8, when the Draconid meteor shower reaches its peak. Favorable viewing beginning around 9 p.m. EDT, and the display continues into the early hours of Friday, October 9.

Unlike many meteor showers that are best observed after midnight, the Draconids offer a convenient opportunity to see shooting stars soon after nightfall. That makes them particularly appealing to casual observers who would rather not stay awake until dawn.

Conditions are especially promising this year because the Moon is approaching its new phase. With little moonlight to brighten the sky, even relatively faint meteors should be easier to detect.

The shower gets its name from Draco, a constellation representing a dragon. Although the name might sound like something from a Halloween horror story involving a certain famous vampire, it actually refers to the constellation from which the meteors appear to originate.

The Draconids are generally a modest display, typically producing only a handful of visible meteors each hour. For the best chance of spotting them, head somewhere away from bright city lights, allow your eyes to adjust to the darkness, and scan the open sky for brief streaks of light.

Orionid Meteor Shower Brings Debris From Halley’s Comet

Another opportunity to catch shooting stars arrives on October 21, when the Orionid meteor shower reaches its annual peak.

These meteors have a particularly fascinating origin. They are tiny fragments of material left behind by Halley’s Comet during its journeys through the solar system. When Earth travels through this trail of ancient comet debris, the particles enter our atmosphere at tremendous speeds, creating bright streaks of light as they burn up.

For observers in suburban areas with some artificial lighting, NASA estimates that approximately 3 to 6 meteors may be visible each hour. People watching from darker locations could see somewhat more.

The Orionids take their name from Orion, the famous hunter constellation, because their meteors appear to radiate from that region of the sky. Orion is also home to Betelgeuse, an enormous red supergiant star recognizable by its reddish appearance (but don’t say that name three times in a row!).

There is one potential obstacle to this year’s display. The Moon will be in its waxing gibbous phase, meaning more than half of its visible surface will be illuminated. Its brightness could make some of the dimmer meteors difficult to spot.

Fortunately, viewing conditions should improve after the Moon sets at approximately 3 a.m. local time. By then, Orion will also be higher in the sky, creating a better opportunity to catch meteors during the hours before sunrise.

October’s Hunter’s Moon Lights Up the Halloween Sky

October’s final major celestial highlight is the Hunter’s Moon, which reaches its full phase on October 26 in Universal Time. For observers in much of North America, the Moon will appear full on the evening of Sunday, October 25.

The name Hunter’s Moon comes from traditions associated with the changing autumn season. As crops were harvested, fields became more open, and daylight hours shortened, hunters could take advantage of the bright moonlight to locate and follow animals after sunset.

The Moon will remain a prominent feature of the night sky in the days following its full phase. As Halloween approaches, it will gradually transition into a waning gibbous Moon, with its illuminated portion slowly decreasing each night.

Its lingering glow will provide a fitting backdrop for the final evenings of October, bringing NASA’s month of celestial tricks and treats to a memorable close.

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ADHD and autism at risk of over-diagnosis, says government review

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Harry says he ‘slipped into depression’ after leaving UK

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Scientists accidentally discover a genetic code that breaks the rules of life

A routine experiment involving a microscopic organism from a freshwater pond led scientists to an extraordinary genetic discovery. The tiny creature was found to interpret DNA instructions in a way researchers had never documented before, challenging a long held assumption about how the genetic code works.

The surprise came when scientists examined a previously unknown protist called Oligohymenophorea sp. PL0344. Two genetic signals that ordinarily tell cells to stop making proteins had taken on completely different functions. Even more remarkably, the signals had been reassigned to two different amino acids, breaking a pattern scientists believed was closely linked by evolution.

The discovery, published in PLOS Genetics in October 2023, revealed an unexpected level of flexibility in one of life’s most fundamental biological systems. Subsequent research has uncovered additional genetic code variations in related microorganisms, suggesting that many more surprises could be waiting in the microscopic world.

An Accidental Genetic Discovery in a Freshwater Pond

Dr. Jamie McGowan, who was a postdoctoral scientist at the Earlham Institute, made the discovery while studying a protist collected from a pond at Oxford University Parks in England.

The project had originally been designed to test a DNA sequencing method capable of analyzing extremely small quantities of genetic material, potentially from just one cell. McGowan worked alongside scientists at the Earlham Institute and a research group led by Professor Thomas Richards at the University of Oxford.

Rather than investigating genetic code evolution, the researchers were trying to improve the tools available for studying organisms that are difficult to grow and analyze in laboratories.

But when they assembled and examined the organism’s genome, they noticed something unexpected. The protist belonged to a previously unidentified species, and its genetic instructions appeared to operate according to an unusual set of rules.

Dr. McGowan said: “It’s sheer luck we chose this protist to test our sequencing pipeline, and it just shows what’s out there, highlighting just how little we know about the genetics of protists.”

What Are Protists, and Why Are They So Unusual?

Protists are among the most diverse and least understood groups of organisms on Earth. Many consist of just one cell and are too small to see without a microscope. Familiar examples include amoebas, various algae, and diatoms, which are microscopic organisms often found in aquatic environments.

However, not all protists are tiny. The broad category also includes organisms such as kelp, slime molds, and red algae, some of which grow into large, complex structures.

The group is so varied that scientists generally define its members by excluding other major branches of life.

“The definition of a protist is loose — essentially it is any eukaryotic organism which is not an animal, plant, or fungus,” said Dr. McGowan. “This is obviously very general, and that’s because protists are an extremely variable group.

“Some are more closely related to animals, some more closely related to plants. There are hunters and prey, parasites and hosts, swimmers and sitters, and there are those with varied diets while others photosynthesize. Basically, we can make very few generalizations.”

Eukaryotes are organisms whose cells contain a nucleus, a specialized compartment that houses most of their genetic material. Humans, other animals, plants, fungi, and protists all belong to this broad category.

The organism at the center of the discovery belongs to a group of protists called ciliates. These creatures typically swim using tiny hair-like structures known as cilia, which move in coordinated patterns to propel them through water.

Ciliates are widespread in freshwater and marine environments. They are also particularly interesting to geneticists because some have evolved unusual ways of interpreting DNA instructions.

How the Genetic Code Tells Cells When to Stop

To understand why this discovery was so unexpected, it helps to know how cells turn genetic information into proteins.

DNA acts like an instruction manual, storing the information that cells need to build and maintain their structures. However, those instructions must be translated into physical molecules before they can carry out biological functions.

The process begins when a section of DNA is copied into messenger RNA, a molecule that carries genetic instructions to the cell’s protein-producing machinery.

A structure called the ribosome then reads the RNA sequence three letters at a time. Each group of three letters is known as a codon, and most codons specify one of the amino acids that serve as the building blocks of proteins.

As amino acids are connected, they form a chain that can fold into a three-dimensional structure. The resulting protein may function as an enzyme, provide structural support, transport molecules, or perform countless other cellular tasks.

In DNA notation, a protein-coding sequence commonly begins with a start codon (ATG) and ends with a stop codon (normally TAA, TAG, or TGA).

These stop codons work like punctuation marks. They tell the ribosome that it has reached the end of the instructions for a particular protein and should release the completed chain.

When the instructions are copied into RNA, the letter T is replaced by U. Consequently, the corresponding stop codons in RNA are written as UAA, UAG, and UGA.

Across most forms of life, these signals have maintained the same basic functions for an extraordinarily long period of evolutionary history.

But nature has occasionally found ways around the usual rules.

Scientists Find Two Genetic Stop Signals With Different Meanings

Researchers have known for decades that some organisms use modified versions of the genetic code. These variations are uncommon across life as a whole, but ciliates are particularly rich in examples.

In certain ciliates, stop codons have evolved to specify amino acids instead of terminating protein production.

Until relatively recently, one pattern appeared especially consistent. Two of the conventional stop codons, TAA and TAG, almost always retained the same meaning. When their functions changed, both generally came to specify the same amino acid.

This suggested that the two signals were constrained to evolve together.

“In almost every other case we know of, TAA and TAG change in tandem,” explained Dr. McGowan. “When they aren’t stop codons, they each specify the same amino acid.”

The genome of Oligohymenophorea sp. PL0344 told a different story.

Instead of functioning as stop signals, TAA and TAG appeared to encode entirely different amino acids. TAA specified lysine, while TAG specified glutamic acid.

Both amino acids are common components of proteins, but they have different chemical properties and biological roles.

Meanwhile, TGA remained the organism’s only conventional stop codon.

The findings represented the first reported example of a genetic code in which both TAA and TAG had been reassigned to encode two different amino acids.

That distinction matters because it shows that the evolutionary relationship between the two codons is not as restrictive as scientists had assumed.

“This is extremely unusual,” Dr. McGowan said. “We’re not aware of any other case where these stop codons are linked to two different amino acids. It breaks some of the rules we thought we knew about gene translation — these two codons were thought to be coupled.

How This Microscopic Organism Makes the Unusual Code Work

Further investigation revealed clues about how the protist manages to function with its unconventional genetic instructions.

The researchers identified specialized transfer RNA genes associated with the reassigned codons. Transfer RNA molecules act as interpreters during protein production, helping match the instructions in messenger RNA with the correct amino acids.

Their presence supported the conclusion that the unusual genetic code was a genuine feature of the organism rather than a sequencing error.

The team also found an unexpectedly high number of TGA stop codons in DNA regions immediately following protein-coding sequences.

These additional stop signals could act as a backup system. If the ribosome accidentally continues reading beyond the intended end of a protein, a second stop codon may prevent it from extending the protein too far.

That protection could be particularly valuable in an organism that relies on only one of the three conventional stop codons.

Although the researchers could not establish exactly how the unusual code evolved, the findings demonstrated that the machinery responsible for translating genetic information can be far more adaptable than previously appreciated.

Follow-Up Research Reveals More Genetic Code Surprises

The original discovery also opened the door to a broader question: How many other microorganisms are using genetic codes that scientists have not yet recognized?

In December 2024, McGowan and colleagues published additional findings in PLOS Genetics showing that unusual genetic code changes had occurred independently in several other ciliate lineages.

The team investigated genetic information from a group of ciliates known as Phyllopharyngea, including genomic data gathered through the TARA Oceans project, an international effort to study marine life and its genetic diversity.

Their analysis identified three previously uncultivated ciliate species in which UAG, normally a stop codon, appeared to specify leucine instead.

These organisms came from samples associated with the Arctic and Southern Oceans.

The researchers also examined existing genomic datasets and identified two additional ciliates, Hartmannula sinica and Trochilia petrani, in which UAG appeared to encode glutamine.

Evolutionary comparisons suggested that these changes arose independently on at least three occasions.

Importantly, the genetic codes were not identical to the unusual system found in Oligohymenophorea sp. PL0344. In the five ciliates examined in the 2024 research, UAA remained a stop signal while UAG had acquired a different meaning.

Even so, the findings provided further evidence that these two genetic signals do not always have to evolve together.

Rather than being an isolated curiosity, the original discovery had helped illuminate a much wider pattern of genetic code flexibility among ciliates.

Scientists Are Still Uncovering Hidden Protist Diversity

The search for unexpected biology in microscopic organisms has continued beyond the genetic code itself.

In March 2026, researchers from the Earlham Institute and the University of Oxford reported another discovery made possible by techniques designed to sequence individual cells.

Their study, published in Microbial Genomics, investigated Bodo, a group of common protists found in freshwater, brackish water, and soil.

By analyzing just seven uncultured cells, the scientists identified three previously unrecognized evolutionary lineages, each associated with its own distinct bacterial partner living inside the organism.

The work did not demonstrate the same genetic code changes found in PL0344. Instead, it showed how much biological diversity can remain hidden when researchers rely primarily on organisms that are easy to cultivate in laboratories.

Together with the genetic code discoveries, these findings demonstrate the value of examining microorganisms that have received relatively little scientific attention.

Better sequencing technologies could reveal additional unconventional genetic codes, unexpected relationships between organisms, and previously unknown ways that cells function.

Nature May Have More Genetic Rules to Break

For scientists, unusual genetic codes offer more than biological curiosities. They provide opportunities to investigate why the genetic code is so consistent across most forms of life and how evolutionary changes can sometimes alter its fundamental instructions.

Understanding these natural variations could also inform efforts in synthetic biology, where researchers attempt to modify genetic codes to give cells new capabilities or enable them to produce proteins with unusual properties.

However, the evolutionary forces responsible for the extraordinary diversity of genetic codes among ciliates remain incompletely understood.

What began as a routine sequencing experiment ultimately revealed that even some of biology’s most familiar rules have remarkable exceptions.

As McGowan observed:

“Scientists attempt to engineer new genetic codes — but they are also out there in nature. There are fascinating things we can find, if we look for them.

“Or, in this case, when we are not looking for them.”

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NASA is searching for hidden caves to build its first Moon base

NASA is moving closer to establishing humanity’s first Moon base with the selection of three scientific investigations designed to answer some of the biggest questions about living on the lunar surface. The missions will search for underground caves that could shelter astronauts, investigate hidden deposits of lunar ice, and monitor environmental hazards that could threaten future explorers.

The new instruments and technologies were selected through NASA’s Payloads and Research Investigations on the Surface of the Moon (PRISM) program. They will be delivered to the lunar surface through the agency’s CLPS (Commercial Lunar Payload Services) initiative as part of its Moon Base Program.

Each investigation will address a different challenge of establishing a lasting human presence on the Moon. Researchers will examine potential natural shelters, identify resources that astronauts could use, and study dangerous conditions that future habitats and equipment will need to withstand. Together, the findings will support NASA’s Artemis and Moon Base programs as the agency works toward long-term lunar exploration.

“NASA Science is building the ultimate interplanetary survival guide to ensure that science goes first to the lunar surface to provide our future astronaut crews with the vital information, resources, and safety precautions needed ahead of time to survive the night on the Moon,” said Nicky Fox, associate administrator, Science Mission Directorate, at NASA Headquarters in Washington. “These PRISM selections will directly help NASA minimize risks to our astronauts while maximizing our agency goals as we set up humanity’s first lunar outpost in preparation for sending the first astronauts to Mars.”

Monitoring Moonquakes and Other Lunar Hazards

The first investigation, Lunar Environment Monitoring Station — South Pole (LEMS-SP), will establish an autonomous station to track environmental conditions and potential threats over an extended period.

One of its tasks will be detecting micrometeoroids, tiny pieces of space debris that strike the lunar surface. Unlike Earth, the Moon lacks a substantial atmosphere capable of burning up most incoming objects, making these impacts a concern for future equipment and habitats.

The station will also measure the abundance of volatiles, substances that readily turn into gas, within the Moon’s extremely thin outer layer of gases. Tracking these materials will help scientists better understand how the lunar environment changes over time.

Another important instrument will be a short-period seismometer, designed to detect vibrations and seismic activity, including moonquakes. These measurements could reveal hazards that NASA must consider when designing structures and installing sensitive equipment on the lunar surface.

By collecting information about impacts, seismic activity, and the surrounding environment, LEMS-SP could help engineers develop safer and more reliable infrastructure for a permanent Moon base.

The investigation will be led by Dr. Mehdi Benna of the University of Maryland, Baltimore County.

Searching for Hidden Caves Beneath the Moon

The second investigation will explore one of the Moon’s most intriguing possibilities: enormous underground passages that could serve as natural shelters for astronauts.

Known as Geophysical Instruments for Marius Lunar pit Investigation (GIMLI), the mission will examine the Marius Hills Pit, an opening in the lunar surface that may connect to an extensive underground lava tube.

Lava tubes form when the outer surface of flowing lava cools and hardens while molten rock continues moving beneath it. Once the lava drains away, it can leave behind hollow tunnels. Scientists believe similar formations may exist beneath parts of the Moon’s volcanic terrain.

GIMLI will use geophysical measurements to investigate what lies beneath the pit and determine whether it connects to a larger underground passage. The findings will also provide new insights into the volcanic processes that shaped the lunar landscape.

If large underground spaces are confirmed, they could offer an important advantage for future human exploration.

The lunar surface is exposed to intense temperature changes, harmful ionizing radiation, and frequent impacts from tiny space rocks. Underground lava tubes could provide more stable temperatures and natural shielding from these dangers.

Instead of relying entirely on protective structures built on the surface, future astronauts might be able to use some of the Moon’s existing geological formations as shelters.

Confirming the presence and size of these underground spaces could therefore influence where NASA considers placing future habitats and how those habitats are designed.

Dr. Nathaniel Putzig of the Planetary Science Institute will serve as the principal investigator for GIMLI.

Hunting for Hidden Ice and Usable Moon Resources

The third investigation will focus on another resource that could be essential to a lasting human presence on the Moon: water ice.

The Depth Imager with Spectral and Color Optics (DISCO) payload is designed to make the first direct measurements from the lunar surface of ice preserved inside small, exceptionally cold regions known as micro-cold traps.

These areas can remain cold enough for ice to persist because they receive little or no direct sunlight. Identifying where the ice is located, how much exists, and how it is distributed could help scientists understand whether it can become a practical resource for future lunar missions.

Water brought from Earth is expensive to transport into space. Finding accessible ice on the Moon could eventually allow astronauts to obtain water locally and potentially process it into oxygen and hydrogen for other uses.

DISCO will also investigate the physical properties of the lunar surface.

One challenge is understanding what happens when a spacecraft lands. Rocket exhaust can blast dust and loose material away from the ground, potentially affecting nearby equipment and structures.

Researchers will also examine the stability of the terrain to better understand how safely astronauts, robotic vehicles, and other equipment can move across the surface.

Combining these measurements will help NASA develop safer landing and surface operations while advancing technologies that could turn lunar ice into a useful resource for the Moon Base Program.

Dr. Ariel Deutsch of NASA’s Ames Research Center in California’s Silicon Valley will lead the DISCO investigation.

Building the Foundation for Humanity’s First Moon Base

Together, the three investigations will address some of the most important challenges of establishing a sustained human presence beyond Earth.

LEMS-SP will help scientists understand environmental threats, GIMLI will investigate whether underground lava tubes could provide natural protection, and DISCO will examine potential water resources and the behavior of the lunar surface.

The results could influence everything from the placement of future habitats to the design of equipment and the development of systems that allow astronauts to make use of resources already available on the Moon.

“Each new PRISM selection strengthens our ability to deliver ambitious, transformative science to the lunar surface,” said Brad Bailey, director of the Exploration Science Strategy Integration Office in NASA’s Science Mission Directorate. “These investigations exemplify how Artemis and Moon Base are expanding the frontier of lunar exploration, advancing innovative technologies, deepening our understanding of the Moon’s environment, and paving the way for future astronaut missions.”

NASA is working to increase the frequency of its lunar missions as it prepares to establish a Moon base. These missions will deliver scientific instruments and new technologies intended to expand American leadership in space science, support a sustained lunar presence, and prepare for more ambitious human exploration.

The agency’s CLPS initiative plays a central role in that effort by partnering with American companies to transport scientific, exploration, and technology payloads to the Moon’s surface and orbit.

Beyond helping astronauts live and work on the Moon, the knowledge gained from these investigations could prove essential to NASA’s longer-term goal of sending humans to Mars.

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‘I was blamed for my baby’s death, now NHS needs to change’

Neil and Katie Russell are working with the hospital where their daughter died on the scheme.

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Scientists warn a popular vitamin D supplement may have a hidden downside

A common vitamin D supplement may have an unexpected effect inside the body. Research published in 2025 found that taking vitamin D2 can reduce levels of vitamin D3, the form humans naturally make when skin is exposed to sunlight.

That distinction matters because vitamin D2 and vitamin D3 are often treated as interchangeable sources of the same nutrient. Both can increase overall vitamin D status, but a growing body of evidence indicates that D3 is generally more effective at raising and maintaining the main form of vitamin D measured in the blood. Current guidance from the U.S. National Institutes of Health reflects that evidence, noting that D3 tends to raise vitamin D levels more and keep them elevated for longer than D2.

Vitamin D is essential for helping the body absorb calcium and maintain healthy bones. It also plays roles in muscle, nerve, and immune function. In the UK, people are advised to consider taking 10 micrograms (µg) of vitamin D each day during the darker months, when sunlight is generally too weak for the skin to make enough of the vitamin.

Vitamin D2 and D3 Are Not Quite the Same

Vitamin D supplements generally contain one of two forms. Vitamin D2, also called ergocalciferol, is commonly produced from fungi or yeast exposed to ultraviolet light. Vitamin D3, or cholecalciferol, is the same form produced in human skin after exposure to ultraviolet B radiation from sunlight.

Traditionally, vitamin D3 in supplements has often come from lanolin obtained from sheep’s wool. However, animal-free D3 made from sources such as lichen is also available, an important consideration for people following vegan or plant-based diets.

Once vitamin D enters the body, it goes through several processing steps. The liver converts it into 25-hydroxyvitamin D, the form doctors commonly measure in blood tests to estimate a person’s vitamin D status. Vitamin D2 produces 25-hydroxyvitamin D2, while vitamin D3 produces 25-hydroxyvitamin D3.

It is this D3-derived form that researchers found could fall after people took vitamin D2.

Vitamin D2 Was Linked to a Drop in Vitamin D3

The 2025 study, published in Nutrition Reviews by researchers from the University of Surrey, John Innes Centre and Quadram Institute Bioscience, brought together evidence from randomized controlled trials to examine this effect more closely.

Researchers reviewed 20 studies, with 11 providing data suitable for the main meta-analysis. Compared with people who did not receive vitamin D2, those taking D2 had significantly lower concentrations of 25-hydroxyvitamin D3. Depending on how the results were analyzed, the average reduction was roughly 9 to 18 nanomoles per liter.

Importantly, that does not mean vitamin D2 simply removes vitamin D from the body or that taking it is necessarily harmful. Vitamin D2 itself raises 25-hydroxyvitamin D2 and can contribute to total vitamin D status. Instead, the surprising finding is that increasing one form appears to coincide with a reduction in the other.

Emily Brown, PhD Research Fellow and Lead Researcher of the study from the University of Surrey’s Nutrition, Exercise, Chronobiology & Sleep Discipline, said:

“Vitamin D supplements are important, especially between October and March, when our bodies cannot make vitamin D from sunlight in the UK. However, we discovered that vitamin D2 supplements can actually decrease levels of vitamin D3 in the body, which is a previously unknown effect of taking these supplements. This study suggests that subject to personal considerations, vitamin D3 supplements may be more beneficial for most individuals over vitamin D2.”

Why Would Vitamin D2 Lower Vitamin D3?

Scientists do not yet have a definitive explanation.

One possibility involves the body’s mechanisms for regulating vitamin D. When concentrations of vitamin D metabolites rise, the body may accelerate the breakdown and removal of these compounds to keep levels under control. Researchers have proposed that increasing vitamin D2 could therefore increase the disposal of existing 25-hydroxyvitamin D3.

Earlier experiments have also suggested that the relationship may work in both directions, with D3 supplementation sometimes reducing D2-derived metabolites. Exactly how important this balancing effect is for health remains unresolved.

Professor Cathie Martin, Group Leader at the John Innes Centre, said:

“This meta-analysis highlights the importance of ensuring plant-based vitamin D3 is accessible in the UK.”

That goal has become increasingly practical because plant-based and animal-free sources of vitamin D3 are now available, including D3 derived from lichen.

D3 May Affect the Immune System Differently

The findings also fit with earlier work suggesting that D2 and D3 may not have identical effects beyond their ability to raise vitamin D levels.

A study published in Frontiers in Immunology and led by Professor Colin Smith from the University of Surrey examined how supplementation affected gene activity in the blood. The researchers found substantial differences between the responses to D2 and D3, including changes involving the immune system. In particular, vitamin D3 appeared to stimulate activity associated with type I interferon signaling, while vitamin D2 did not.

Type I interferons are signaling proteins that help alert cells when an infection is developing and form an important part of the body’s early defenses against viruses and other pathogens.

Professor Colin Smith said:

“We have shown that vitamin D3, but not vitamin D2, appears to stimulate the type I interferon signaling system in the body — a key part of the immune system that provides a first line of defense against bacteria and viruses. Thus, a healthy vitamin D3 status may help prevent viruses and bacteria from gaining a foothold in the body.”

The immune findings are intriguing, but they should not be interpreted as proof that taking D3 will prevent a particular infection. Changes in gene activity and immune signaling do not necessarily translate directly into fewer illnesses, and larger clinical studies are needed to establish what the differences mean for everyday health.

Newer Evidence Adds an Important Caveat

Research published since the 2025 analysis makes the picture more nuanced.

A separate 2026 systematic review and meta-analysis examined 26 randomized trials involving vitamin D2. It found that D2 supplementation significantly reduced parathyroid hormone levels and produced a small increase in blood calcium, demonstrating that D2 continues to have meaningful biological effects even though it may reduce circulating D3.

That finding is important because the reduction in D3 should not be confused with evidence that D2 is ineffective. Current NIH information continues to state that both D2 and D3 can increase overall blood levels of vitamin D. The difference is that the accumulated evidence favors D3 for producing a larger increase and maintaining that increase for longer.

This is also consistent with previous meta-analyses comparing the two forms directly. One analysis of 24 studies found D3 was more effective than D2 at improving overall vitamin D status, while another focused on frequent dosing reached a similar conclusion.

Scientists Still Need to Know What the Difference Means

The central unanswered question is not whether D2 can reduce circulating D3. The randomized trial evidence strongly suggests that it can. What remains uncertain is whether that reduction produces meaningful differences in health outcomes.

Researchers say additional studies are needed to determine how D2 and D3 are metabolized, whether their effects on immune function meaningfully differ, and whether D3 should become the preferred form for routine supplementation when there is no individual reason to use D2.

Professor Martin Warren, Chief Scientific Officer at the Quadram Institute, said:

“Vitamin D deficiency represents a significant public health concern, especially during the winter months with significant deficiency across the UK population. This collaborative research effort aligns well with the Quadram Institute’s mission to deliver healthier lives through food innovation to enhance the nutrient density of the food we eat. Tackling this with the most effective form of vitamin D supplementation or fortification is of the utmost importance to the health of the nation.”

For now, the evidence increasingly suggests that the label on a vitamin D supplement matters. D2 and D3 can both contribute to vitamin D status, but they are not necessarily metabolically interchangeable, and D3 appears to have an advantage when the goal is raising and sustaining vitamin D levels. What scientists still need to establish is whether those biochemical differences translate into important differences in long-term health.

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