Scientists Designed a Virtual Alien Lifeform to Hunt for Extraterrestrials
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The Abstract<br>Scientists Designed a Virtual Alien Lifeform to Hunt for Extraterrestrials
Becky Ferreira
Aug 6, 2026<br>at 12:49 PM
A model of a microbe cell revealed that methane-producing organisms could potentially emerge on a wide variety of exoplanets, which can inform the search for extraterrestrial life.
Photo by NASA Hubble Space Telescope / Unsplash
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Scientists have designed a virtual model of an alien cell and dropped it onto a hypothetical exoplanet to see how it behaves, an approach that could help astronomers recognize signs of extraterrestrial life on distant worlds, according to a recent study published in Monthly Notices of the Royal Astronomical Society.<br>The results revealed new insights about how microbes that produce methane gas, known as methanogens, might evolve on different exoplanets, such as Earth-sized ocean worlds or a class of hypothetical giant âHycean planetsâ that host global oceans and hydrogen-rich atmospheres.<br>Predicting the impacts that methanogens might have on their environments could help scientists recognize potential signs of life, known as biosignatures, in the skies of worlds outside of our solar system.<br>Whereas many past studies have speculated about what forms of life might evolve on a particular type of exoplanet, this approach flips the idea on its head by starting with a general cell model and then considering how it might evolve in different biospheres.<br>âThis is a kind of plausible life that's very unconstrained by Earth-based conditions,â said Arwen Nicholson, an astrophysicist at Exeter University who led the study, in a call with 404 Media. âWe can put it into different environments, and then see: What other effects does it have?â<br>The idea, she explained, is to simplify one aspect of the hugely complex search for alien life .<br>âThis is a generalized idea of what biology would roughly do that we can then put in different places to try and start getting biosignature predictions ideally for different planets, or to understand what we're seeing from the telescopes,â said Nicholson.<br>Itâs possible that the first lifeforms to emerge on Earth were methanogens that thrived some four billion years ago when our planet was far more depleted in oxygen. These microbes still exist in a wide variety of ecological niches today. Unlike photosynthetic life, which requires sunlight for energy, methanogens can run on chemical energy in a process known as chemosynthesis. As a result, methanogens are adaptable and provide a useful model for considering the emergence of life in a diverse array of habitats, including dark regions that receive no direct starlight.<br>âWe do know that the Earth's early biosphere did have this big component of it that was producing methane and consuming methane,â Nicholson said. âThat gives us a starting point to look at other planets. It's a reaction we know works. It works on Earth, and it's something that is thought to work in environments that are very different to Earth.â<br>To that end, the team developed a baseline model of a spherical methanogen microbial cell and tinkered with different cell sizes, life cycles, and environmental effects that might evolve in various alien biospheres.<br>The results revealed a host of insights, including that a planetâs levels of hydrogen and methane are sensitive to the microbeâs particular features. In this way, âlife will act to âeraseâ abiotic aspects of their environmentâ by transforming the composition of gasses in the atmosphere in ways that could be detectable to astronomers, according to the study.<br>The team also speculated that resource competition on alien worlds would likely favor methanogens that are smaller and longer-lived, which could outcompete similar species that are shorter-lived, larger, or require more energy. But while these clues may help scientists spot likely biosignatures in the future, it will be a challenge to actually predict what sort of lifeform is producing those signals.<br>âYou could have different life forms in your ocean and they would look the same in terms of a biosignature,â Nicholson said. âYou could have a single film of some algae covering the whole ocean, or a little amoeba, or maybe something else. I thought that was quite interesting. It almost frees us up from making too many assumptions of what alien life would look like, because how are we going to know?â<br>âWe can use spherical microbes as a representation, but even if we found a biosignature, even if it all made sense, and we found life, we still wouldn't actually know...