Tuesday, June 02, 2026

 

New reference map of the brain may transform how scientists detect disease


Created from brain scans of more than 54,000 people worldwide, the new model will help researchers detect subtle changes in neural pathways linked to aging, Alzheimer’s disease, and developmental conditions



Keck School of Medicine of USC

Statistical charts compiled from a large population allow brain abnormalities to be detected in new individuals. 

image: 

Statistical charts compiled from a large population allow brain abnormalities to be detected in new individuals.

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Credit: Stevens INI





Researchers at the USC Mark and Mary Stevens Neuroimaging and Informatics Institute (Stevens INI) at the Keck School of Medicine of USC have created one of the largest reference models ever developed for the human brain, using diffusion MRI scans from more than 54,000 people to chart how the brain’s communication pathways develop, mature, and decline across the lifespan.

Published in Nature Communications, the study provides the equivalent of “growth charts” for the brain’s white matter - the vast network of neural wiring that allows brain regions to communicate. The new tool offers researchers a new way to detect subtle patterns linked to aging, Alzheimer’s disease, schizophrenia risk, and other neurological and psychiatric conditions.

“Just as pediatric growth charts help clinicians determine whether a child’s height or weight is developing as expected, these brain charts provide a reference for how the brain’s neural pathways typically change over the lifespan,” said Julio E. Villalón-Reina, MD, PhD, a postdoctoral researcher at the Stevens INI and the study’s first author. “That gives us a powerful new way to identify when an individual’s brain wiring falls outside the expected range.”

White matter is essential for efficient communication throughout the brain. To study it, the team used diffusion MRI, an imaging method that tracks how water moves through brain tissue. Because water movement is shaped by microscopic features such as nerve fibers and myelin, the protective coating around them, diffusion MRI can reveal subtle changes in tissue organization not visible on standard brain scans. After compiling diffusion MRI data from 54,583 individuals across 19 international datasets, the researchers built statistical “growth and decline charts” for the brain’s neural pathways, the network of nerve fibers that connects different regions of the brain and allows them to communicate.

The researchers focused on four widely used measures of white matter microstructure across 21 major brain regions. By modeling how these measures vary by age and sex, they generated lifespan curves and percentile ranges that show what is typical at different stages of life. The results revealed that white matter follows distinct developmental and aging trajectories, with some measures reaching peak maturity in early adulthood and others later in midlife.

“Brain development and brain aging are not uniform processes,” Villalón-Reina said. “The brain’s neural pathways mature on distinct timelines, and some are more vulnerable to decline than others. Our model reveals this structure by merging data on a truly global scale.”

 

The team also discovered evidence for a longstanding theory of brain aging, sometimes described as “last in, first out.” According to this theory, brain pathways that develop last in childhood and adolescence tend to be more susceptible to decline in older age. The researchers observed that white matter regions that mature later did indeed decline faster in old age, offering new insight linking brain development and aging.

To demonstrate the model’s practical value, the researchers applied it to clinical datasets from people with mild cognitive impairment, dementia, and 22q11.2 deletion syndrome, a genetic condition that increases risk of schizophrenia. In each case, the model identified alterations in the brain’s circuitry that deviated from age-expected norms. Importantly, these deviations were not identical across individuals with the same diagnosis, highlighting the value of a person-specific approach.

“This monumental study took seven years to complete,” said Paul M. Thompson, PhD, associate director of the Stevens INI and senior author of the study. “The vast scale of the data and the fine scale of the brain features assessed means we can now evaluate your neural pathways relative to other people of the same age, sex, and demographics. We can see how your brain differs from what we would expect for a person of your age and sex, giving us a tool to use in clinical trials of treatments for dozens of brain diseases.”

When applied to people with dementia and mild cognitive impairment, the model detected atypical white matter patterns in brain regions involved in memory and interregional communication. In people with 22q11.2 deletion syndrome, it identified deviations in multiple key neural pathways, helping researchers discover which brain systems develop differently. The reference charts may also help researchers evaluate treatments by tracking whether a person’s white matter measures move closer to the expected range, or whether a treatment slows the shift away from healthy patterns over time. The charts will now be used to compare more than 30 brain diseases and conditions, offering a common framework for studying how different disorders emerge, progress, and respond to intervention.

The models are also a publicly available resource that can be extended as additional brain imaging data become available. The methods are now being used to study neurological, psychiatric, and neurodevelopmental disorders by providing a common reference standard for white matter microstructure across the lifespan.

“This study demonstrates the power of large-scale, international data sharing to create tools the entire research community can use,” said Arthur W. Toga, PhD, director of the Stevens INI and Provost Professor at USC. “By establishing a lifespan framework for the brain’s communication pathways, this work opens new opportunities to detect subtle disease-related changes, compare conditions more rigorously, and move toward a more individualized understanding of brain health.”

About the study

The study, “Lifespan normative modeling of brain microstructure,” was published in Nature Communications. In addition to Villalón-Reina and Thompson, the study’s authors include Alyssa H. Zhu, Leila Nabulsi, Sophia I. Thomopoulos, Clara A. Moreau, Yixue Feng, Tamoghna Chattopadhyay, Sebastian Benavidez, Leila Kushan, John P. John, Himanshu Joshi, Iyad Ba Gari, Katherine E. Lawrence, Talia M. Nir, Neda Jahanshad, Carrie E. Bearden, Seyed Mostafa Kia, Andre F. Marquand and the Alzheimer’s Disease Neuroimaging Initiative.

This work was supported by grants from the National Institutes of Health, including the National Institute on Aging, the Fogarty International Center and the National Institute of Mental Health, as well as support from the Alzheimer’s Association, the European Research Council and the Wellcome Trust, and the Popovich Chair in Neurodegenerative Diseases.

 

U.S. overdose deaths dropped in 2024 amid uneven progress, study finds



Researchers found racial/ethnic gaps persist and overdose deaths involving only stimulants continued to rise, despite national declines overall



University of California - San Diego




Researchers from the University of California San Diego have found that U.S. overdose death rates declined dramatically between 2023 and 2024, marking the first recorded drop in all four waves of the nation’s overdose crisis. The study, published on June 2, 2026 in the journal Addiction, found that the nationwide decrease was largely driven by falling deaths involving illicit fentanyl, both alone and in combination with stimulants such as methamphetamine and cocaine. Despite the encouraging trend, researchers warn that overdose deaths involving stimulants without fentanyl, as well as xylazine-related deaths, continue to rise and racial disparities remain severe.

“We are seeing a historic shift in the overdose crisis,” said Joseph Friedman, MD, PhD, MPH, resident physician in the Department of Psychiatry at UC San Diego School of Medicine and the study’s first author. “But this is not the end. The substances involved are changing, some parts of the crisis are still growing, presenting new challenges. We need to avoid interpreting declining national numbers as a sign that the crisis has been solved.”

The researchers analyzed national overdose mortality data from the Centers for Disease Control and Prevention’s Wide-ranging ONline Data for Epidemiologic Research (WONDER) database, examining every recorded overdose death in the United States between 1999 and 2024. The team tracked trends by substance involvement and race and ethnicity, allowing them to map how the overdose crisis has evolved over time.

The study found that the national overdose death rate fell by 24.4% between 2023 and 2024, dropping to 23.7 deaths per 100,000 people. The decline was primarily linked to decreases in fentanyl-related deaths. Deaths involving fentanyl without stimulants fell from 31,193 in 2023 to 19,673 in 2024, while deaths involving fentanyl combined with stimulants dropped from 41,583 to 28,062.

Researchers describe the U.S. overdose epidemic as unfolding in four waves: prescription opioids, heroin, fentanyl and, most recently, fentanyl combined with stimulants such as methamphetamine or cocaine. The new findings show that the fourth wave — considered especially lethal because of use of multiple substances — declined for the first time in 2024.

At the same time, the study identified emerging warning signs. Deaths involving stimulants without fentanyl continued increasing, rising from 18,142 deaths in 2023 to 18,907 in 2024. These deaths accounted for 17.3% of overdose fatalities in 2023 but grew to 23.8% in 2024. Xylazine, a veterinary sedative increasingly found in the illicit drug supply, was also implicated in a growing share of fentanyl-related overdose deaths.

Researchers warn that if these trends continue, stimulants such as methamphetamine and cocaine may soon surpass opioids as the defining addiction-related public health challenge in the U.S.

“Overdose deaths are only one part of the picture,” said Steffanie Strathdee, PhD, senior author of the study and professor of medicine at UC San Diego School of Medicine. “Stimulants are also associated with long-term cardiovascular, neurological and psychiatric harms that can devastate individuals and communities.”

The researchers also found substantial racial and ethnic disparities. Non-Hispanic Black individuals experienced the largest decline in overdose death rates between 2023 and 2024, with rates falling by 29.3%. However, the overdose death rate for Black Americans remained more than 1.5 times higher than the national average in 2024. Meanwhile, Non-Hispanic American Indian and Alaska Native populations had the highest overdose death rate of any group studied, at 50.8 deaths per 100,000 people — more than double the national average.

The study also showed that cocaine-related deaths disproportionately affected Black Americans, while methamphetamine-related deaths disproportionately affected American Indian and Alaska Native communities. Xylazine-related overdose deaths were also especially elevated among Black Americans.

Researchers say the causes of the recent decline in overdose deaths are likely complex and multifactorial. Possible explanations include a reduced number of susceptible individuals, greater awareness of fentanyl risks, expanded availability of naloxone, changes in drug use behavior and possible disruptions in the illicit fentanyl supply chain. The authors caution that provisional 2024 mortality data could still change slightly as final records become available.

Even with the recent decline, overdose deaths in the United States remain extraordinarily high compared with other countries. Even with the recent decline, overdose deaths in the United States remain a global outlier. Researchers note that approximately 80,000 people died from drug overdoses in the U.S. in 2024 — far more than would be expected if the country had overdose death rates comparable to Western Europe. Researchers say continued investment in addiction treatment, harm reduction programs and targeted public health interventions will be essential to sustaining progress and reducing persistent inequities.

“National trends can improve while vulnerable communities continue to suffer disproportionately,” Friedman said. “The next phase of the response needs to focus not only on lowering overall deaths, but on making sure those gains reach the populations that have been hit hardest.”

Read the full study: Charting the Decline of the Fourth Wave: US Overdose Deaths by Race, Ethnicity and Substance Involvement

Additional co-authors on the study include: Annick Borquez, PhD, and Tommi L. Gaines, DrPH, from UC San Diego; Joseph J. Palamar, PhD, from NYU Grossman School of Medicine; Daniel Ciccarone, MD, from UC San Francisco; Chelsea L. Shover, PhD, from UCLA. 

The study was funded, in part, by the National Institute of Drug Abuse (1U01DA063078-01, R01DA054190, R01DA057630, K01DA05771, R33DA061260, DP2DA049295). 

Palamar reported receiving personal fees from the Washington-Baltimore High Intensity Drug Trafficking Areas program, Elsevier, Wiley, Rutgers University, Arizona State University, the University of Southern California, the Substance Abuse and Mental Health Services Administration, Queensland University, the National Network of Public Health Institutes, Alta Mira Recovery programs and Dartmouth University, and nonfinancial support from NIH/NIDA, the University of Florida, Rx Summit, the American College of Neuropsychopharmacology and the Reagan-Udall Foundation for the FDA during the conduct of the study. Ciccarone reports personal fees from Emergent Biosciences outside the submitted work. All other authors declare no conflict of interest.

UN warns world to prepare for El Nino extreme weather

Geneva (AFP) – There is an 80-percent chance of the warming El Nino phenomenon developing between June and August, increasing the risk of extreme weather events, the World Meteorological Organization said Tuesday.



Issued on: 02/06/2026 - FRANCE24

El Nino warms surface temperatures in the central and eastern equatorial Pacific Ocean © MARTIN BERNETTI / AFP

"Fuelled by unusually warm ocean waters in the tropical Pacific, El Nino conditions are developing and are set to influence global temperature and rainfall patterns," the United Nations' WMO weather and climate agency said.

Forecasts from the WMO global network "indicate a pronounced shift toward El Nino conditions, with probabilities reaching 80 percent for June-August", the Geneva-based organisation said.

El Nino is a natural climate phenomenon that warms surface temperatures in the central and eastern equatorial Pacific Ocean, bringing worldwide changes in winds, pressure and rainfall patterns.

It typically takes place every two to seven years and lasts around nine to 12 months.

The effects of El Nino © Nicholas SHEARMAN / AFP


Conditions oscillate between El Nino and its opposite La Nina, with neutral conditions in between.

The likelihood of El Nino developing by November is "near or above 90 percent", and most forecast models suggest it will be "at least moderate -- and possibly strong", the WMO said in its quarterly El Nino/La Nina update.

WMO chief Celeste Saulo said the world needed to get ready for an El Nino which could "exacerbate drought and heavy rainfall and increase the risk of heatwaves both on land and in the ocean".

The WMO says that even a moderate El Nino makes some weather and climate extremes more likely.

The last El Nino contributed to making 2023 the second-hottest year on record and 2024 the all-time high at around 1.55C above the 1850-1900 pre-industrial average.
'Urgent climate warning': Guterres

In late April to mid-May, the sea-surface temperature in the central-eastern Equatorial Pacific -- the area used as a monitoring reference -- was approaching El Nino thresholds, the WMO said, with sub-surface temperatures more than 6C above average.

Meanwhile, the Southern Oscillation Index -- the atmospheric component of El Nino -- is also consistent with the phenomenon developing.


El Nino is likely to develop in the coming months, forecasters say © Omar KAMAL / AFP


The WMO said there was no evidence that climate change increases the frequency or intensity of El Nino events.

However, the agency believes it can amplify the associated effects, because a warmer ocean and atmosphere increase the availability of energy and moisture for extreme weather events, such as heatwaves and heavy rainfall.

"El Nino is arriving on our doorstep," UN chief Antonio Guterres said in a video message.

"The world must treat it as the urgent climate warning it is. El Nino conditions will pour fuel on the fire of a warming world.

WMO climate prediction chief Wilfran Moufouma Okia said temperatures typically spike up to 12 months after an El Nino event © Fabrice COFFRINI / AFP



"The only effective response is climate action equal to the crisis -- ending the addiction to fossil fuels, accelerating the shift to renewables, protecting the most vulnerable, and delivering early warning systems for all."

Saulo said 128 countries now have multi-hazard early-warning systems in place, with the UN target being universal coverage by the end of 2027.
Temperatures above normal

While El Nino typically peaks between November and February, the resulting spike in temperatures typically comes later down the line.

The World Meteorological Organization has its headquarters in Geneva, Switzerland © Fabrice COFFRINI / AFP

Next month's forecast is likely to be more accurate as to the onset of El Nino and its strength.

The WMO said that for June to August, forecasts project "a nearly universal dominance of above normal temperatures in nearly all parts of the globe".

This increases the risk of compounding hazards in some regions and accelerating the onset of drought conditions where rainfall is reduced, it said.

Saulo said El Nino would have "cascading impacts", with a warming ocean in the tropics resulting in effects on global trade.

These go from "variability of the climate, into the economy and security of the people. That's why this information is so relevant and so important", she told reporters.

The WMO hopes advance warning will guide preparedness, especially in climate-sensitive sectors like agriculture, water management, energy and health.

Tegucigalpa, the capital of Honduras, and its surrounding areas are already facing a severe drought © JOHNY MAGALLANES / AFP

Regional climate centres are predicting "below-normal" rainfall during the critical June-September rainy season in the northern Greater Horn of Africa; below-average monsoon rainfall in south Asia; and drier and warmer summer conditions in central America.

During the northern hemisphere summer, warm waters associated with El Nino can fuel hurricanes in the central and eastern Pacific, while hindering their development in the Atlantic Ocean.

© 2026 AFP

 

El Niño: Almost everywhere will face above average summer temperatures, WMO warns

FILE - People walk through a part of the Amazon River that shows signs of drought in Santa Sofia, on the outskirts of Leticia, Colombia, Oct. 20, 2024.
Copyright AP Photo/Ivan Valencia

By Angela Symons
Published on

El Niño is a naturally occurring weather phenomenon but its effects are worse because of climate change.

El Niño will hit this summer with 80 per cent certainty, according to the latest forecast by the World Meteorological Organization (WMO) – and Europe should brace for more extreme heat, with some areas at heightened risk of drought and flooding.

Over the past week, parts of Western Europe suffered record-breaking spring temperatures as a powerful heat dome formed. Spells like this are likely to become more intense, longer and more frequent as El Niño takes hold – and scientists warn it could stretch all the way to 2028.

Although the strength of the weather phenomenon is still uncertain, WMO models suggest it will be at least moderate, and possibly strong, with a 90 per cent chance of it continuing until at least November.

“The world must treat it as the urgent climate warning it is. El Niño conditions will pour fuel on the fire of a warming world,” says UN Secretary-General António Guterres.

‘Prepare for hotter than normal temperatures’

Fuelled by unusually warm ocean waters in the tropical Pacific, El Niño is expected to leave virtually nowhere untouched, with above-average temperatures forecast around the globe for June to August.

“We need to prepare for a potentially strong El Niño event – which will exacerbate drought and heavy rainfall and increase the risk of heatwaves both on land and in the ocean,” says WMO Secretary-General Celeste Saulo.

The most recent El Niño, in 2023-24, was one of the five strongest on record and contributed to 2024 becoming the world’s hottest year on record. According to the European State of the Climate 2024 report, published jointly by the Copernicus Climate Change Service and the WMO, Europe experienced dramatic and contrasting conditions that year: while the east faced dry, scorching heat, the west endured heavy rainfall and flooding.

This year, “impacts will hit even harder, travel even farther, and cross borders with devastating speed,” Guterres warns.

The UN has previously cautioned that there is an 86 per cent chance the coming years will smash 2024’s heat record, with climate scientists warning that a “whole range of extreme weather events” are brewing as a strong El Niño collides with accelerating global warming.

While climate change is not thought to increase El Niño’s frequency or intensity, it can amplify its effects. A warmer ocean and atmosphere increases the availability of energy and moisture for extreme weather events such as heatwaves and heavy rainfall.

How long could El Niño last?

Sea-surface temperatures began approaching El Niño thresholds in late April to mid-May this year, according to WMO observations. Subsurface temperatures across the tropical Pacific are running more than 6°C above average, providing a substantial reservoir of heat feeding the surface warming.

The powerful naturally-occurring weather pattern typically forms every two to seven years and lasts around nine to 12 months. It usually reaches its peak intensity between November and February, with impacts on global temperatures often strongest in the second year after development.

Its effects vary depending on intensity, duration, the time of year it develops, and how it interacts with other climate variables.

This year, above-average temperatures are forecast by WMO nearly everywhere in June, July and August. Below-average rainfall is expected across South Asia, the Greater Horn of Africa and Central America, where drier and warmer conditions are anticipated during critical growing and rainy seasons.

“Advance seasonal forecasts and early warnings are vital to save lives and cushion the impact on our economies and our communities,” says Saulo. The time for informed decision-making, planning and preparedness is now, the WMO adds.

Guterres urges action on the human-caused elements of climate extremes, calling for “ending the addiction to fossil fuels and accelerating the shift to renewables”.


Amazon rainforest emits new stress-defense molecules during El Niño drought



New study by the Max Planck Institute for Chemistry shows: The forest chemically adapts to extreme drought – and continues responding long after the stress ends



Max Planck Institute for Chemistry

Amazon rainforest: Air samples collected directly above the forest canopy 

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A 80-meter measurement tower near the ATTO research station in the Brazilian rainforest, 93 miles northeast of Manaus. At a height of 23 meters, directly above the forest canopy, the research team collected air samples every one and a half to three hours.

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Credit: Dom Jack, Max Planck Institute for Chemistry





  • During the 2023–2024 El Niño the most severe drought ever recorded in the Amazon basin tree emissions of sesquiterpenes surged by 122 percent, while isoprene and monoterpenes barely changed.
  • The study also detected unexpected emissions of sesquiterpene alcohols in the wet season after the drought, suggesting the forest’s stress-defense metabolism stays active long after the immediate stress has passed.

The Amazon rainforest responded to the most severe drought ever recorded in the basin with an unexpected defense mechanism. Researchers at the Max Planck Institute for Chemistry in Mainz, Germany, found that during and after the intense 2023-2024 El Niño cycle, the most intense drought ever recorded in the region, vegetation significantly changed its chemical emissions to cope with environmental stress. The study was published in Nature Communications Earth & Environment.

Sesquiterpenes act as stress signals and protective compounds

The research team measured the forest’s release of biogenic volatile organic compounds, or BVOCs, which are carbon-based molecules naturally emitted by vegetation. The results were striking. While isoprene and monoterpenoid levels showed little influence from El Niño conditions of drought and heat, emissions of sesquiterpenes increased by 122% over the course of the event. Sesquiterpenes are reactive airborne molecules that trees produce as stress signals and protective substances. A well-known example is caryophyllene, a peppery-smelling compound found in cloves and black pepper.

Even more surprisingly, the study detected unexpected emissions of less volatile sesquiterpene alcohols, including beta-eudesmol, alpha-eudesmol, and gamma-eudesmol, during the wet season after the drought peak. These findings suggest an adaptive response to oxidative stress, revealing how vegetation metabolically adjusts to adverse conditions. Interestingly the change persisted long after the immediate stressor has passed. "Our results show that severe drought shifts the atmosphere toward lower-volatility and more reactive compounds”, explains Joseph Byron, the study’s first author and a researcher at the Max Planck Institute for Chemistry. "This reflects underlying metabolic changes as the rainforest attempts to mitigate damage from abiotic stress." Project leader Jonathan Williams added “between El Nino events, which occur every 2-7 years, the rainforest can revert to the original non-stressed emissions. However, climate models suggest that El Nino events will increase in frequency and intensity in this century, so these emissions may become a permanent feature of the region, altering the overlying atmospheric chemistry”.

Air samples collected directly above the forest canopy

The researchers collected canopy air samples at the Amazon Tall Tower Observatory (ATTO), 150 km northeast of Manaus, Brazil. Using sorbent cartridges, they gathered samples every 1.5 to 3 hours at 23 meters on an 80-meter tower. In the laboratory in Mainz, they later analyzed them offline using gas chromatography and mass spectrometry.

The findings build on earlier work by the same team on chemical indicators of stress in the Amazon rainforest. In their previous research, they identified specific mirror molecules, or enantiomers, that can serve as indicators of stress within the rainforest ecosystem (see related press release: Mirror image molecules reveal drought stress in the Amazon rainforest). The current study expands this understanding by showing which specific reactive volatile compounds are produced directly as part of the forest’s defense response during extreme climate events.

Implications for climate change and rainforest resilience

Understanding these chemical responses is very important, as climate change is predicted to make El Niño events more intense and persistent. The shift toward more reactive compounds could have significant implications for atmospheric chemistry and the overall resilience of the Amazon rainforest.

Background ATTO

ATTO is a German-Brazilian joint project which was launched in 2009. It is managed by the Max Planck Institutes for Biogeochemistry in Jena and for Chemistry in Mainz, as well as by the Brazilian INPA and the Amazon State University (UEA) in Manaus. The project is funded by the German Federal Ministry of Education and Research (BMBF), the Ministério da Ciência, Tecnologia e Inovações (MCTI), the Max Planck Society and the Brazilian organizations including FAPEAM and individual researchers bring funding from other scientific funding agencies. 

More on ATTO: https://www.mpic.de/3538403/ATTO



 

From flat moss to forests and flowers: New discovery may explain how plants conquered land



Researchers from the University of Copenhagen have identified a previously unknown protein that may help explain how plants managed to colonize land more than 400 million years ago




University of Copenhagen

Moss during three-dimensional growth 

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Images of moss during three-dimensional growth. Left: abnormal bud development in when RAK1 is not present. Right: normal bud formation.

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Credit: Photos: Laura Moody






If plants had never learned to grow in multiple directions, our world would look very different. No trees, flowers or other complex plants – and therefore no animals or humans.

New research from the University of Copenhagen now suggests that a specific protein in moss may have been crucial for this key step in plant evolution – a step that made life on land possible. Around 470 million years ago, plant cells developed the ability to divide into three dimensions and grow upwards and sideways. Until then, as aquatic organisms, they had only grown in a two-dimensional flat form, limiting how complex they could evolve.

The newly identified protein likely arose through evolution by combining two previously existing proteins into a single protein. The researchers do not yet know exactly when this fusion occurred, but it may have played a role in the early transition of plants to life on land.

“We have identified a protein that has never been seen before and that has very special properties. It helps us gain a better understanding of how land plants function,” explains one of the study’s authors, Eleazar Rodriguez, Associate Professor in Functional Genomics at the Department of Biology.

If you look at a tree today, its growth depends on fundamental biological mechanisms that emerged early in plant evolution. These include how cells divide in different directions, how cells obtain energy for growth, and how proteins are regulated within the cell.

These are the mechanisms that the researchers now provide new insight into, dating back roughly 470 million years.

“Without the ability to grow in three dimensions, the landscape would look very different. We would not see trees and shrubs grow the way they do today. Life on land would likely have remained much more limited,” says Thomas Juel Ammitsøe, postdoc and co–first author of the study.

Removing the newly discovered protein

The researchers identified the previously unknown protein, named RAK1, in a moss species. The protein is a fusion between two types of proteins already known – a signaling protein (kinase) and an acetyltransferase. When present, it has a specific effect in the moss: by influencing the cell’s energy metabolism, it enables cells to divide in multiple directions and form buds and shoots.

This became clear when the researchers compared two versions of the same moss. In one, RAK1 was present; in the other, it had been removed.

“We observed that cells in the moss lacking RAK1 did not divide properly and formed defective buds. This shows that RAK1 may have been crucial for enabling the moss to grow efficiently,” explains the study’s co–first author, assistant professor Cloe De Luxan Hernandez.

Proteins are the workers of the cell

Moss represents some of the earliest land plants that began to grow on Earth. Until now, the explanation for how moss developed the ability to grow in three dimensions has focused on gene regulation – specifically that certain genes are switched on and off at the right time.

The researchers from the University of Copenhagen now build on this explanation by showing that simply turning genes on and off is not sufficient. The newly discovered RAK1 helps coordinate the metabolic balance needed for three-dimensional growth.

The discovery of RAK1 highlights that evolution does not always invent something entirely new – sometimes it simply combines existing elements in new ways.

“Our findings suggest that the transition from flat to three-dimensional plant growth depends not only on gene regulation, but also on precise metabolic control during stem cell division and bud formation,” says Eleazar Rodriguez.

The discovery therefore provides not only new knowledge about moss, but also insight into fundamental mechanisms underlying growth in living organisms.

Like human stem cells, moss stem cells depend on tightly controlled metabolism during growth and division. Our findings suggest that RAK1 is part of this regulatory system,” concludes Eleazar Rodriguez.

 

[[ Fact box 1: Moss as an ideal model system

Mosses represent some of the earliest land plants on Earth and are thought to have evolved from algae-like ancestors that originally lived in water.

Moss is widely used in research to study plant development because of its relatively simple organization and evolutionary position as the first type of land plant.

In this study, the researchers used the model moss Physcomitrium patens, one of the most well-studied moss species.

 

Fact box 2: Difference between two-dimensional and three-dimensional growth

Moss can grow in flat structures made up of thread-like filaments, characteristic of two-dimensional growth. In this stage, cells divide in two directions, allowing the moss to spread across the surface.

When cells switch to three-dimensional growth, they begin to divide in multiple directions and form buds. These give rise to more complex structures, enabling the moss to grow upwards and form more complex organs such as leaves.

 

Fact box 3: How the researchers studied RAK1

The researchers identified a protein, RAK1, which is a fusion between a signaling protein (kinase) and an acetyl transferase.

They then compared moss with and without RAK1.

They found that moss lacking RAK1 was unable to divide effectively in multiple dimensions.

In contrast, the presence of RAK1 enabled cells to respond to signals and develop properly into three-dimensional structures.

RAK1 acts as a link between cellular signaling and intracellular chemical regulation, enabling cells to transition to three-dimensional growth.

 

Fact box 4: About the study

The results are published in the journal New Phytologist, which focuses on plant science research.

A total of 18 researchers contributed to the study.

The study was conducted as part of a broader international collaborative effort involving researchers from Austria, England, Germany and Japan.

Read the study ]]