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November 21, 2003Science1,776 citations

The Origins of Genome Complexity

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MLMichael LynchJCJohn S. Conery

Key Points

  • The aim is to understand how genome complexity increases from prokaryotes to multicellular eukaryotes and the processes involved.
  • Analysis of complete genomic sequences from various phylogenetic lineages.
  • Identification of increases in gene number, spliceosomal introns, and mobile genetic elements.
  • Consideration of population size changes in relation to organism size.
  • Increased gene number linked to the retention of duplicate genes.
  • Abundant spliceosomal introns and mobile genetic elements signify a shift towards complexity.
  • Nonadaptive processes laid the groundwork for natural selection to further enhance phenotypic complexity.

Abstract

Complete genomic sequences from diverse phylogenetic lineages reveal notable increases in genome complexity from prokaryotes to multicellular eukaryotes. The changes include gradual increases in gene number, resulting from the retention of duplicate genes, and more abrupt increases in the abundance of spliceosomal introns and mobile genetic elements. We argue that many of these modifications emerged passively in response to the long-term population-size reductions that accompanied increases in organism size. According to this model, much of the restructuring of eukaryotic genomes was initiated by nonadaptive processes, and this in turn provided novel substrates for the secondary evolution of phenotypic complexity by natural selection. The enormous long-term effective population sizes of prokaryotes may impose a substantial barrier to the evolution of complex genomes and morphologies.

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Cite This Study

Lynch et al. (2003) studied this question.

synapsesocial.com/papers/69b87b588ad116708fe8686chttps://doi.org/10.1126/science.1089370
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