An interstellar energetic and non-aqueous pathway to peptide formation
Abstract
The origin of the molecular building blocks of life is a central question in science. A few -amino acids such as glycine, the simplest proteinogenic amino acid, have been detected in meteorites and comets, indicating an extraterrestrial origin for some prebiotic molecules. However, the formation of peptides, short chains of -amino acids linked by peptide bonds, under astrophysical conditions has remained unresolved. Here we show that the building blocks of proteins can form in interstellar ice analogues exposed to ionising radiation, without the presence of liquid water. Using isotopically labelled glycine irradiated with protons at cryogenic temperatures, we detect the formation of glycylglycine, the simplest dipeptide, along with deuterated and non-deuterated water as by-products. Peptide bond formation is confirmed by infrared spectroscopy and high-resolution mass spectrometry, which also reveal the production of other complex organic species. These findings demonstrate a non-aqueous route to peptide formation under space-like conditions and suggest that such molecules could form in the cold interstellar medium and be incorporated into forming planetary systems. Our results challenge aqueous-centric models of early biochemical evolution and broaden potential settings for the origins of life.
Keywords
Cite
@article{arxiv.2607.26814,
title = {An interstellar energetic and non-aqueous pathway to peptide formation},
author = {Alfred Thomas Hopkinson and Ann Mary Wilson and Joe Pitfield and Alejandra Traspas Muiña and Richárd Rácz and Duncan V. Mifsud and Péter Herczku and Gergő Lakatos and Béla Sulik and Zoltán Juhász and Sándor Biri and Robert W. McCullough and Nigel J. Mason and Carsten Scavenius and Liv Hornekær and Sergio Ioppolo},
journal= {arXiv preprint arXiv:2607.26814},
year = {2026}
}
Comments
22 pages, 6 figures