English

Origin of life in a digital microcosm

Populations and Evolution 2017-01-17 v1 Information Theory math.IT Adaptation and Self-Organizing Systems Molecular Networks

Abstract

While all organisms on Earth descend from a common ancestor, there is no consensus on whether the origin of this ancestral self-replicator was a one-off event or whether it was only the final survivor of multiple origins. Here we use the digital evolution system Avida to study the origin of self-replicating computer programs. By using a computational system, we avoid many of the uncertainties inherent in any biochemical system of self-replicators (while running the risk of ignoring a fundamental aspect of biochemistry). We generated the exhaustive set of minimal-genome self-replicators and analyzed the network structure of this fitness landscape. We further examined the evolvability of these self-replicators and found that the evolvability of a self-replicator is dependent on its genomic architecture. We studied the differential ability of replicators to take over the population when competed against each other (akin to a primordial-soup model of biogenesis) and found that the probability of a self-replicator out-competing the others is not uniform. Instead, progenitor (most-recent common ancestor) genotypes are clustered in a small region of the replicator space. Our results demonstrate how computational systems can be used as test systems for hypotheses concerning the origin of life.

Keywords

Cite

@article{arxiv.1701.03993,
  title  = {Origin of life in a digital microcosm},
  author = {Nitash C G and Thomas LaBar and Arend Hintze and Christoph Adami},
  journal= {arXiv preprint arXiv:1701.03993},
  year   = {2017}
}

Comments

20 pages, 7 figures. To appear in special issue of Philosophical Transactions of the Royal Society A: Re-Conceptualizing the Origins of Life from a Physical Sciences Perspective