Structure-guided aminoacylation and assembly of chimeric RNAs
Biorxiv : the Preprint Server for Biology
|March 11, 2024
Summary
Aminoacylated RNAs, not just for protein synthesis, could have predated it by forming amino acid-bridged structures. These primordial RNA structures may have driven the evolution of early enzymes.
Area of Science:
- Origin of life studies
- RNA world hypothesis
- Biochemistry
Background:
- Coded protein synthesis requires pre-existing aminoacylated transfer RNAs (tRNAs).
- The primordial function of aminoacylated RNAs remains an open question.
- Investigating RNA's role before protein synthesis is crucial for understanding early life evolution.
Conclusions:
- Aminoacylated RNAs could have served primordial functions, including nonenzymatic ligation and ribozyme assembly.
- The T-loop's role in amino acid bridging may have enhanced ribozyme catalysis.
- This provides a potential driving force for the evolution of aminoacyl-RNA synthetase enzymes before protein synthesis.
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