New Experiment Reveals Moss Can Endure Long-Term Exposure to Space Elements

A group of Japanese scientists conducted experiments on the model moss species protenema (larval mosses), brood cells (specialized stem cells activated under stress), and sporophytes (protected spores). They investigated Physcomitrium patent to identify the most resilient spores under simulated space conditions, which were then sent to the external environment of the International Space Station (ISS). After nine months in space, over 80% of the spores survived and maintained their capacity to germinate. These findings highlight the potential of land plants like Physcomitrium patent to endure extreme environments when studied in space.



Physcomitrium patent spores demonstrate remarkable resilience to simulated space conditions. Image credit: Meng et al., doi: 10.1016/j.isci.2025.113827.

With the recent rapid changes in the global environment, exploring new avenues for the survival of life beyond Earth has become essential.

Understanding how Earth-origin organisms adapt to extreme and unfamiliar conditions, such as those found in space, is crucial for expanding human habitats on the Moon and Mars.

Researching the survival limits of organisms in both terrestrial and extraterrestrial conditions enhances our comprehension of their adaptability and prepares us for the challenges of ecosystem maintenance.

“Most living organisms, including humans, cannot endure even a brief exposure to the vacuum of space,” explains Dr. Tomomichi Fujita, a researcher at Hokkaido University.

“Yet, the moss spores maintained their vitality even after nine months of direct exposure.”

“This offers astonishing evidence that life forms evolved on Earth possess unique cellular mechanisms to withstand the challenges of space.”

In this study, Dr. Fujita and colleagues examined Physcomitrium patent, a well-studied moss commonly referred to as spread earth moss, under simulated space conditions, which included high levels of ultraviolet radiation, extreme temperature fluctuations, and vacuum settings.

They assessed three structures: Physcomitrium patent — protenema, brood cell, and sporophyte — to determine which is best suited for survival in space.

“We anticipated that the combination of space-related stressors, like vacuum, cosmic radiation, extreme temperature changes, and microgravity, would result in greater damage than any isolated stressor,” remarked Dr. Fujita.

The research revealed that UV light posed the greatest threat to survival, with sporophytes exhibiting the highest resilience among the three moss structures.

Young moss could not tolerate elevated UV levels or extreme temperatures.

Although brood cell viability was significant, the encased spores demonstrated a resistance to UV light that was 1,000 times greater.

These spores survived and germinated after enduring temperatures as low as -196 degrees Celsius for over a week and withstanding heat up to 55 degrees Celsius for a month.

The scientists proposed that the protective structures surrounding the spores may absorb UV light while physically and chemically shielding the spores inside from damage.

This resilience is likely the result of evolutionary adaptations. Moss plants, which evolved from aquatic to terrestrial species approximately 500 million years ago, have survived multiple mass extinctions.

In March 2022, the researchers sent hundreds of sporophytes aboard the Cygnus NG-17 spacecraft to the ISS.

Upon arrival, astronauts affixed the sporophyte samples to the ISS’s exterior, exposing them to space for a total of 283 days.

The spores made their return trip to Earth aboard SpaceX CRS-16, which was returned to the laboratory for analysis in January 2023.

“We had anticipated the survival rate to be nearly zero, but the results were the opposite: the majority of spores survived,” said Dr. Fujita.

“We were truly astounded by the remarkable durability of these tiny plant cells.”

Over 80% of the spores successfully completed the intergalactic journey, with nearly all of them—except for 11%—able to germinate upon returning to the lab.

The research team measured chlorophyll levels in the spores, discovering that all types exhibited normal levels, apart from a 20% reduction in chlorophyll a. Though chlorophyll a is sensitive to changes in light, this decrease did not appear to hinder the spores’ health.

“This study exemplifies the incredible resilience of life that has developed on Earth,” said Dr. Fujita.

Curious about the duration spores could survive in space, the researchers utilized pre- and post-expedition data to formulate a mathematical model.

They projected that the encased spores could endure up to 5,600 days, or around 15 years, under space conditions.

However, they emphasize that this estimate requires further validation through larger datasets to more accurately assess how long moss can thrive in space.

“Ultimately, we hope that this research paves the way for developing ecosystems in extraterrestrial environments like the Moon and Mars,” Dr. Fujita concluded.

“We desire that our moss research can serve as a foundation.”

For further details, refer to the published paper in iscience.

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Meng Chang Hyun et al. The extreme environmental resistance and space survivability of moss, Physcomitrium patent. iscience, published online on November 20, 2025. doi: 10.1016/j.isci.2025.113827

Source: www.sci.news

Research Shows Moss Can Endure 9 Months in Space

Mosses are believed to have evolved from ancestral plants that transitioned from aquatic environments to terrestrial habitats approximately 450 million years ago.

This organism is known for its remarkable hardiness, thriving in diverse locations, from the frigid Antarctic tundra to the lofty peaks of the Himalayas, as well as in volcanic lava fields and various aquatic settings.

Fujita expressed his admiration for its extraordinary resilience.

“It got me thinking: Could this resilient little plant endure the harsh conditions of space?” he remarked.

His research team focused on a specific type of moss known as Physcomitrium patent. They conducted experiments in a laboratory simulating a space environment, exposing the moss to extreme temperatures, vacuum conditions, and elevated levels of ultraviolet radiation.

They concluded that the moss’ sporophyte, which contains the encapsulated spores that act as reproductive structures, stands the best chance of survival in space due to its ability to endure high levels of ultraviolet light. The spores were able to germinate after enduring scorching conditions of 131 degrees Fahrenheit for a month and frigid temperatures of minus 320 degrees Fahrenheit for over a week.

In March 2022, researchers dispatched hundreds of moss sporophytes to the International Space Station using a cargo spacecraft from Northrop Grumman. Astronauts attached the sporophyte samples to the station’s exterior and left them exposed for 283 days.

The moss samples were subsequently returned to Earth on a SpaceX cargo mission in January 2023.

The team discovered that over 80% of the spores survived their nine-month journey outside the space station, with nearly 90% successfully re-germinating in their Earth-based laboratory.

Source: www.nbcnews.com

Moss Spores Thrive and Germinate After 283 Days in Space Exposure

This moss sprouted from spores that were exposed to space for nine months

Tomomichi Fujita

On March 4, 2022, astronauts placed 20,000 moss spores outside the International Space Station, where they endured extreme space conditions for 283 days. Following their retrieval, the spores were brought back to Earth in a SpaceX capsule for scientists to attempt germination. Remarkably, these attempts proved successful.

Mosses, one of the oldest land plants, are renowned for thriving in some of the planet’s harshest environments, such as Antarctica, volcanic terrains, and arid deserts. Tomomichi Fujita was part of the research team from Hokkaido University in Japan that conducted this groundbreaking experiment.

“We were curious whether these spores could withstand conditions in one of the most extreme environments imaginable: outer space,” he remarks.

Numerous studies have simulated the survival of various mosses and plants under extraterrestrial conditions, particularly those anticipated on Mars. However, this marks the first instance where researchers examined whether a specific type of moss can endure the actual conditions of space. The spores originated from the species Physcomitrium Patent.

A control group of spores that remained on Earth exhibited a 97 percent germination rate, comparable to another group of spores that were shielded from the damaging ultraviolet rays while still in space.

Astoundingly, over 80 percent of the spores that faced the totality of space—its vacuum, extreme temperatures, microgravity, ultraviolet light, and cosmic radiation—survived and grew into healthy plants. Researchers predict that some spores could remain viable in space for as long as 15 years based on these experimental results.

“Opening the sample felt akin to unlocking a biological time capsule: life that has endured the void of space and returned to full functionality,” Fujita expresses.

Prior to the experiment, the researchers had already assessed other living components of the moss, such as its filaments, under simulated conditions. They discovered that other life stages of this moss succumb to environmental factors like UV radiation, extreme temperature fluctuations, high salinity, and dehydration within days to weeks.

However, the spores appeared to withstand all these adversities. This is particularly impressive given that the spores outside the space station faced simultaneous attacks, while the Earth-based tests evaluated only one stressor at a time.

Fujita noted that the multilayered spore wall encasing the reproductive tissue acts as a “passive shield against harsh spatial conditions.”

He likens the spores to residing within their own spaceship, suggesting this might be an adaptive feature they developed to deal with the extreme environmental pressures present during the early stages of terrestrial life, hundreds of millions of years ago.

“Spores are, in essence, compact life capsules that lie dormant but are ready to reactivate when conditions are favorable,” he states. “It feels like evolution has given them their own survival pods designed to travel across time and space.”

Fujita cautioned that this research does not confirm the presence of extraterrestrial life, but it does bolster the concept that once life appears, it can be incredibly resilient. “The ability of terrestrial life to thrive under space-like conditions suggests that the fundamental building blocks of life might be more abundant and persistent than we typically assume.”

David Eldridge and fellow researchers from the University of New South Wales in Sydney emphasize that the ultimate test is not merely whether the spores can germinate on Earth, but if they can thrive in space.

“The critical point is to evaluate the growth rates of these taxa in space and determine if they can reproduce,” he concludes.

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Source: www.newscientist.com