Chirality in a quaternionic representation of the genetic code
C. Manuel Carlevaro, Ramiro M. Irastorza, Fernando Vericat

TL;DR
This paper extends a quaternionic model of the genetic code to include molecular chirality, enabling a unified algebraic representation of amino acid enantiomers and their role in protein folding.
Contribution
The authors incorporate chirality into a quaternionic genetic code model, linking enantiomeric bases and amino acids through conjugate quaternions and modeling protein folding.
Findings
Chirality is represented via conjugate quaternion subsets for enantiomeric bases.
A novel algorithm connects primary sequences to tertiary structures using type and order quaternions.
The model describes folding differences between L- and D-proteins based on quaternionic representations.
Abstract
A quaternionic representation of the genetic code, previously reported by the authors, is updated in order to incorporate chirality of nucleotide bases and amino acids. The original representation assigns to each nucleotide base a prime integer quaternion of norm 7 and involves a function that associates with each codon, represented by three of these quaternions, another integer quaternion (amino acid type quaternion) in such a way that the essentials of the standard genetic code (particulaty its degeneration) are preserved. To show the advantages of such a quaternionic representation we have, in turn, associated with each amino acid of a given protein, besides of the type quaternion, another real one according to its order along the protein (order quaternion) and have designed an algorithm to go from the primary to the tertiary structure of the protein by using type and order…
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Taxonomy
TopicsRNA and protein synthesis mechanisms · DNA and Nucleic Acid Chemistry · Bacterial Genetics and Biotechnology
