ArticleLife (Basel, Switzerland)2020
Universal Codons with Enrichment from GC to AU Nucleotide Composition Reveal a Chronological Assignment from Early to Late Along with LUCA Formation.
Article in Life (Basel, Switzerland), 2020. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed.
- Primitive Oligomeric RNAs at the Origins of Life on Earth.International journal of molecular sciences · 2023Article
- On the Evolutionary History of the Twenty Encoded Amino Acids.Chemistry (Weinheim an der Bergstrasse, Germany) · 2022Review
- Determination of the Amino Acid Recruitment Order in Early Life by Genome-Wide Analysis of Amino Acid Usage Bias.Biomolecules · 2022Article
- The Combinatorial Fusion Cascade to Generate the Standard Genetic Code.Life (Basel, Switzerland) · 2021Article
- The Codon Usage in the Minimal Natural Cell.Origins of life and evolution of the biosphere : the journal of the International Society for the Study of the Origin of Life · 2021Article
- Review
- Evolution of the genetic code.Transcription · 2021Review
- Combinatorial Fusion Rules to Describe Codon Assignment in the Standard Genetic Code.Life (Basel, Switzerland) · 2020Article
- Origin of Life: The Point of No Return.Life (Basel, Switzerland) · 2020Article
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2 authors.
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Abstract
The emergence of a primitive genetic code should be considered the most essential event during the origin of life. Almost a complete set of codons (as we know them) should have been established relatively early during the evolution of the last universal common ancestor (LUCA) from which all known organisms descended. Many hypotheses have been proposed to explain the driving forces and chronology of the evolution of the genetic code; however, none is commonly accepted. In the current paper, we explore the features of the genetic code that, in our view, reflect the mechanism and the chronological order of the origin of the genetic code. Our hypothesis postulates that the primordial RNA was mostly GC-rich, and this bias was reflected in the order of amino acid codon assignment. If we arrange the codons and their corresponding amino acids from GC-rich to AU-rich, we find that: 1. The amino acids encoded by GC-rich codons (Ala, Gly, Arg, and Pro) are those that contribute the most to the interactions with RNA (if incorporated into short peptides). 2. This order correlates with the addition of novel functions necessary for the evolution from simple to longer folded peptides. 3. The overlay of aminoacyl-tRNA synthetases (aaRS) to the amino acid order produces a distinctive zonal distribution for class I and class II suggesting an interdependent origin. These correlations could be explained by the active role of the bridge peptide (BP), which we proposed earlier in the evolution of the genetic code.
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