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  1. Organic cofactors participated more frequently than transition metals in redox reactions of primitive proteins.Hong-Fang Ji, Lei Chen & Hong-Yu Zhang - 2008 - Bioessays 30 (8):766-771.
    Protein redox reactions are one of the most basic and important biochemical actions. As amino acids are weak redox mediators, most protein redox functions are undertaken by protein cofactors, which include organic ligands and transition metal ions. Since both kinds of redox cofactors were available in the pre‐protein RNA world, it is challenging to explore which one was more involved in redox processes of primitive proteins? In this paper, using an examination of the redox cofactor usage of putative ancient proteins, (...)
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  • Simultaneous origin of homochirality, the genetic code and its directionality.Robert Root-Bernstein - 2007 - Bioessays 29 (7):689-698.
    The origin of homochirality in molecules characterizing living systems has remained a mystery since Pasteur's recognition of the problem some 150 years ago.2-5 Most theories also assume that homochirality emerged in one class of molecules (e.g. ribose) from which it was enriched in other molecules (e.g. amino acids) as well.2-5 I propose a novel, experimentally testable hypothesis describing a process by which selective chirality in amino acids and ribonucleotides emerged simultaneously and hand-in-hand with the origin and directionality of the genetic (...)
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  • On the formation of Asp‐tRNAAsn by aspartyl‐tRNA synthetases.J. Tze-Fei Wong - 2005 - Bioessays 27 (12):1309-1309.
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  • Coevolution theory of the genetic code: is the precursor–product hypothesis invalid?Brian K. Davis - 2005 - Bioessays 27 (12):1308-1308.
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