https://www.nature.com/articles/d41586-022-01303-z Skip to main content Thank you for visiting nature.com. You are using a browser version with limited support for CSS. To obtain the best experience, we recommend you use a more up to date browser (or turn off compatibility mode in Internet Explorer). In the meantime, to ensure continued support, we are displaying the site without styles and JavaScript. Advertisement Advertisement Nature * View all journals * Search * My Account Login * Explore content * About the journal * Publish with us Subscribe * Sign up for alerts * RSS feed 1. nature 2. news 3. article * NEWS * 11 May 2022 Origin of life theory involving RNA-protein hybrid gets new support Structure that links amino acids suggests that early organisms could have been based on an RNA-protein mix. * Davide Castelvecchi 1. Davide Castelvecchi View author publications You can also search for this author in PubMed Google Scholar * Twitter * Facebook * Email You have full access to this article via your institution. Download PDF Coloured TEM of ribosomes translating MRNA strand. Carell and colleagues were inspired by ribosomes -- shown here translating a strand of RNA.Credit: Omikron/Science Photo Library Chemists say they have solved a crucial problem in a theory of life's beginnings, by demonstrating that RNA molecules can link short chains of amino acids together. The findings, published on 11 May in Nature^1, support a variation on the 'RNA world' hypothesis, which proposes that before the evolution of DNA and the proteins it encodes, the first organisms were based on strands of RNA, a molecule that can both store genetic information -- as sequences of the nucleosides A, C, G and U -- and act as a catalyst for chemical reactions. The discovery "opens up vast and fundamentally new avenues of pursuit for early chemical evolution", says Bill Martin, who studies molecular evolution at Heinrich Heine University Dusseldorf in Germany. [d41586-022] How biologists are creating life-like cells from scratch In an RNA world, the standard theory says, life could have existed as complex proto-RNA strands that were able to both copy themselves and compete with other strands. Later, these 'RNA enzymes' could have evolved the ability to build proteins and ultimately to transfer their genetic information into more-stable DNA. Exactly how this could happen was an open question, partly because catalysts made of RNA alone are much less efficient than the protein-based enzymes found in all living cells today. "Although [RNA] catalysts were discovered, their catalytic power is lousy," says Thomas Carell, an organic chemist at Ludwig Maximilian University of Munich in Germany. RNA ribosome While investigating this conundrum, Carell and his collaborators were inspired by the part that RNA plays in how all modern organisms build proteins: a strand of RNA encoding a gene (typically copied from a sequence of DNA bases) passes through a large molecular machine called a ribosome, which builds the corresponding protein one amino acid at a time. Unlike most enzymes, the ribosome itself is made of not only proteins, but also segments of RNA -- and these have an important role in synthesizing proteins. Moreover, the ribosome contains modified versions of the standard RNA nucleosides A, C, G, and U. These exotic nucleosides have long been seen as possible vestiges of a primordial broth. Carell's team built a synthetic RNA molecule that included two such modified nucleosides by joining two pieces of RNA commonly found in living cells. At the first of the exotic sites, the synthetic molecule could bind to an amino acid, which then moved sideways to bind with the second exotic nucleoside adjacent to it. The team then separated their original RNA strands and brought in a fresh one, carrying its own amino acid. This was in the correct position to form a strong covalent bond with the amino acid previously attached to the second strand. The process continued step by step, growing a short chain of amino acids -- a mini-protein called a peptide -- that grew attached to the RNA. The formation of bonds between amino acids requires energy, which the researchers provided by priming the amino acids with various reactants in the solution. [d41586-022] Ancient worm fossil rolls back origins of animal life "This is a very exciting finding," says Martin, "not only because it maps out a new route to RNA-based peptide formation, but because it also uncovers new evolutionary significance to the naturally occurring modified bases of RNA." The results point to an important part played by RNA at the origins of life, but without requiring RNA alone to self-replicate, Martin adds. Loren Williams, a biophysical chemist at the Georgia Institute of Technology in Atlanta, agrees. "If the origins of RNA and the origins of protein are linked, and their emergence is not independent, then the math shifts radically in favour of an RNA-protein world and away from an RNA world," he says. To show that this is a plausible origin of life, scientists must complete several further steps. The peptides that form on the team's RNA are composed of a random sequence of amino acids, rather than one determined by information stored in the RNA. Carell says that larger RNA structures could have sections that fold into shapes that 'recognize' specific amino acids at specific sites, producing a well-determined structure. And some of these complex RNA-peptide hybrids could have catalytic properties, and be subject to evolutionary pressure to become more efficient. "If the molecule can replicate, you have something like a mini organism," says Carell. doi: https://doi.org/10.1038/d41586-022-01303-z References 1. Muller, F. et al. Nature https://doi.org/10.1038/ s41586-022-04676-3 (2022). 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Download PDF Related Articles * [d41586-022] Ancient worm fossil rolls back origins of animal life * [d41586-022] Scientists glimpse oddball microbe that could help explain rise of complex life * [d41586-022] How biologists are creating life-like cells from scratch * [d41586-022] How DNA and RNA subunits might have formed to make the first genetic alphabet * Four new DNA letters double life's alphabet Subjects * Molecular biology * Evolution * Chemistry Advertisement Sign up to Nature Briefing An essential round-up of science news, opinion and analysis, delivered to your inbox every weekday. Email address [ ] [ ] Yes! Sign me up to receive the daily Nature Briefing email. I agree my information will be processed in accordance with the Nature and Springer Nature Limited Privacy Policy. Sign up * Close Nature Briefing Sign up for the Nature Briefing newsletter -- what matters in science, free to your inbox daily. 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