Published August 19, 2025 | Published
Journal Article Open

Life's homochirality: Across a prebiotic network

  • 1. ROR icon Harvard-Smithsonian Center for Astrophysics
  • 2. ROR icon University of Cambridge

Abstract

For centuries, scientists have been puzzled by the mystery of life's biomolecular homochirality—the single-handedness of biological compounds. Sugars and nucleic acids are right-handed, while amino acids are left-handed in biological systems. Likewise, certain metabolites are homochiral, though their handedness varies. However, efforts to address the homochirality problem have often focused on a single compound, a single molecular class, or invoke an extraterrestrial origin. Here, we emphasize the importance of achieving homochirality across an entire prebiotic chemical network and explore a terrestrial pathway for its emergence. This pathway is supported by recent experimental results from several independent studies, as well as analyses of pristine asteroid materials. Our analysis identifies the genome as a key site for achieving network-scale homochirality on early Earth and addresses the opposite handedness of D -nucleic acids and L -peptides in biology through nonenzymatic, stereoselective coded peptide synthesis.

Copyright and License

© 2025 the Author(s). Published by PNAS. This open access article is distributed under Creative Commons Attribution License 4.0 (CC BY).

Acknowledgement

We are grateful to John Sutherland for his invaluable contributions to our original model and for his careful review of the present manuscript. We also thank Daniel Glavin, Ziwei Liu, and Jack Szostak for highlighting key references and for their insightful comments. We further thank Jack Szostak for his thought-provoking remarks on ribozyme-catalyzed metabolism.

Files

ozturk-sasselov-2025-life-s-homochirality-across-a-prebiotic-network.pdf
Files (612.4 kB)

Additional details

Created:
September 10, 2025
Modified:
September 10, 2025