Astronomers have identified some strange stars in the Milky Way that may have once belonged to a different galaxy.

By studying the chemistry of these stars and their motion close to the galactic disk, the researchers found that the stars’ home galaxy, nicknamed “Loki,” might have merged with our galaxy about 10 billion years ago.

You may like

Massive galaxies are not born whole. They are assembled over billions of years through mergers with smaller galaxies, which are sometimes absorbed. In the early universe, shortly after the Big Bang, matter clumped into clouds of gas that collapsed into the first primitive galaxies. These small systems then fell into one another, merged and gradually built up into the large structures we see today.

In the new study, published March 23 in the Monthly Notices of the Royal Astronomical Society, astronomers identified 20 old, very-metal-poor stars orbiting unusually close to the galactic disk — the flat, rotating region of the Milky Way where most stars, including the sun, reside — and examined whether a past merger might explain what they were seeing.

dark matter became part of the growing young Milky Way. Because of this, computer simulations suggest that stars from the earliest mergers are expected to be found deeper inside the Milky Way today, while stars from galaxies that merged later are more likely to be scattered farther out in the galactic halo — a vast, spherical region that extends beyond the bright disk.

However, very few metal-poor stars have been found in the inner regions of the Milky Way to test this idea. So, when the team identified 20 metal-poor stars orbiting close to the galactic disk, they wondered whether the stars could be remnants of an ancient merger.

A map of the Milky Way show possible stars clusters from galaxy mergers

The Milky Way is suspected to have merged with up to a dozen or more dwarf galaxies over its 12-billion-year history. This Gaia telescope map shows the locations of star clusters from suspected mergers in purple.

(Image credit: ESA/Gaia/DPAC)

Anirudh Chiti, an astrophysicist at Stanford University who was not part of the study, told Live Science that the new discovery shows promise.

“The chemical abundance analysis is intriguing, and part of the argument rests on the fact that the chemistry of the stars seems more clustered than those in the Milky Way halo,” Chiti wrote in an email. “This is a nice example of the kind of discovery that those samples could turn up or verify.”

Still, the new findings fall short of certainty. Sestito acknowledged that more observations are needed to confirm them.

“Our work is surely limited in terms of the number of observed stars,” Sestito said. Observing stars with high-resolution spectroscopy is time-intensive — each star requires around four hours of telescope time, which is why the current sample is small.

Because researchers are still in the early stages of exploring the chemical signatures of the lowest-metallicity stars in the Milky Way disk, it remains plausible that these stars belong to a subgroup of stars or substructure within the Milky Way, Chiti noted. “I’m looking forward to what future work mapping the chemistry of large samples of very metal-poor stars in the Milky Way disk may show,” he said.

To confirm the nature of Loki, the team would need to observe its stars and other non-Loki targets with the same telescope setup to better understand the differences between this system and other parts of the Milky Way halo.

With upcoming advanced spectroscopic facilities, astronomers will be able to observe hundreds of stars with available high-quality data on their trajectories and chemical abundances. Sestito thinks the search should not be limited to the halo. The hidden systems in the inner regions of the galaxy could hold clues to the primitive galaxies of the young universe, though detecting them in the crowded disk would be challenging.

Sestito, F., Fernández-Alvar, E., Brooks, R., Olson, E., Carigi, L., Jofré, P., De Brito Silva, D., Eldridge, C. J. L., Vitali, S., Venn, K. A., Hill, V., Ardern-Arentsen, A., Kordopatis, G., Martin, N. F., Navarro, J. F., Starkenburg, E., Tissera, P. B., Jablonka, P., Lardo, C., . . . Amayo, A. (2026). An ancient system hidden in the Galactic plane? Monthly Notices of the Royal Astronomical Society, 548(2). https://doi.org/10.1093/mnras/stag563