Wills Peter R
Department of Physics, University of Auckland, Auckland PB 92019, New Zealand.
Entropy (Basel). 2023 Aug 31;25(9):1281. doi: 10.3390/e25091281.
The origin of genetic coding is characterised as an event of cosmic significance in which quantum mechanical causation was transcended by constructive computation. Computational causation entered the physico-chemical processes of the pre-biotic world by the incidental satisfaction of a condition of reflexivity between polymer sequence information and system elements able to facilitate their own production through translation of that information. This event, which has previously been modelled in the dynamics of Gene-Replication-Translation systems, is properly described as a process of self-guided self-organisation. The spontaneous emergence of a primordial genetic code between two-letter alphabets of nucleotide triplets and amino acids is easily possible, starting with random peptide synthesis that is RNA-sequence-dependent. The evident self-organising mechanism is the simultaneous quasi-species bifurcation of the populations of information-carrying genes and enzymes with aminoacyl-tRNA synthetase-like activities. This mechanism allowed the code to evolve very rapidly to the ~20 amino acid limit apparent for the reflexive differentiation of amino acid properties using protein catalysts. The self-organisation of semantics in this domain of physical chemistry conferred on emergent molecular biology exquisite computational control over the nanoscopic events needed for its self-construction.
遗传编码的起源被视为具有宇宙意义的事件,在该事件中,量子力学因果关系通过建设性计算得以超越。计算因果关系通过聚合物序列信息与能够通过该信息的翻译促进自身产生的系统元素之间的自反性条件的偶然满足,进入了前生物世界的物理化学过程。这一事件此前已在基因复制 - 翻译系统的动力学中得到建模,恰当地描述为一个自我引导的自组织过程。从依赖RNA序列的随机肽合成开始,在核苷酸三联体和氨基酸的双字母字母表之间自发出现原始遗传密码是很容易实现的。明显的自组织机制是具有氨酰 - tRNA合成酶样活性的信息携带基因和酶群体的同时准物种分叉。这种机制使密码能够非常迅速地进化到约20种氨基酸的极限,这对于使用蛋白质催化剂进行氨基酸性质的自反性分化而言是明显的。物理化学这一领域中语义的自组织赋予了新兴分子生物学对其自我构建所需的纳米级事件的精确计算控制。