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Gene Evolution - Fast or Slow?02:05

Gene Evolution - Fast or Slow?

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The genomes of eukaryotes are punctuated by long stretches of sequence which do not code for proteins or RNAs. Although some of these regions do contain crucial regulatory sequences, the vast majority of this DNA serves no known function. Typically, these regions of the genome are the ones in which the fastest change, in evolutionary terms, is observed, because there is typically little to no selection pressure acting on these regions to preserve their sequences.
In contrast, regions which code...
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Mutations in Microorganisms01:18

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Mutations are heritable changes in an organism’s genome involving alterations in the base sequence of DNA or RNA. These changes can influence cellular processes and phenotypic traits, potentially transforming the unaltered wild type into a mutant form. Such changes, termed forward mutations, are pivotal in shaping the genetic diversity of organisms.RNA viruses exhibit the highest mutation rates due to the absence of robust proofreading mechanisms during genome replication. In contrast,...
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Viral Mutations00:36

Viral Mutations

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A mutation is a change in the sequence of bases of DNA or RNA in a genome. Some mutations occur during replication of the genome due to errors made by the polymerase enzymes that replicate DNA or RNA. Unlike DNA polymerase, RNA polymerase is prone to errors because it is not capable of “proofreading” its work. Viruses with RNA-based genomes, like HIV, therefore accrue mutations faster than viruses with DNA-based genomes. Because mutation and recombination provide the raw material...
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Gene Conversion02:08

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Other than maintaining genome stability via DNA repair, homologous recombination plays an important role in diversifying the genome. In fact, the recombination of sequences forms the molecular basis of genomic evolution. Random and non-random permutations of genomic sequences create a library of new amalgamated sequences. These newly formed genomes can determine the fitness and survival of cells. In bacteria, homologous and non-homologous types of recombination lead to the evolution of new...
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Spontaneous and Induced Mutations01:30

Spontaneous and Induced Mutations

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Spontaneous mutations arise infrequently during DNA replication due to errors in the process. A key factor behind these errors is tautomeric shifts in nitrogenous bases, where bases transition from keto to enol forms or amino to imino forms. This shift can alter base-pairing rules, leading to mutations. Additionally, reactive oxygen species (ROS) arising from aerobic metabolism can damage DNA, resulting in depurination (loss of a purine base) or depyrimidination (loss of a pyrimidine base).
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Mutations01:39

Mutations

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Related Experiment Video

Updated: Oct 16, 2025

Following the Dynamics of Structural Variants in Experimentally Evolved Populations
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Following the Dynamics of Structural Variants in Experimentally Evolved Populations

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A mutational hotspot that determines highly repeatable evolution can be built and broken by silent genetic changes.

James S Horton1, Louise M Flanagan2, Robert W Jackson3

  • 1Milner Centre for Evolution, Department of Biology & Biochemistry, University of Bath, Claverton Down, Bath, BA2 7AY, UK. j.s.horton@bath.ac.uk.

Nature Communications
|October 20, 2021
PubMed
Summary

Silent mutations can create or eliminate genetic hotspots, influencing bacterial evolution. This study shows how a few synonymous changes in Pseudomonas fluorescens alter mutation patterns and adaptive outcomes.

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Area of Science:

  • Evolutionary biology
  • Microbial genetics

Background:

  • Mutational hotspots are crucial for repeatable evolution but are difficult to study.
  • Understanding the forces shaping mutation rate heterogeneity is key to evolutionary insights.

Purpose of the Study:

  • To investigate the role of silent genetic variation in creating and breaking deterministic mutational hotspots.
  • To determine how synonymous mutations affect evolutionary trajectories in Pseudomonas fluorescens.

Main Methods:

  • Comparative analysis of two Pseudomonas fluorescens variants (AR2 and Pf0-2x) with differing evolutionary pathways.
  • Site-specific swapping of synonymous mutations within the ntrB gene locus.
  • Assessing the impact of these swaps on mutational hotspot determinism and bacterial motility restoration.

Main Results:

  • The AR2 strain exhibits a highly deterministic mutational hotspot for motility restoration (>95% repeatability).
  • The Pf0-2x strain shows divergent evolution due to multiple mutations, lacking a deterministic hotspot.
  • Six synonymous variations in the ntrB locus were identified as responsible for this disparity, with site-swapping experiments confirming their ability to build (0% to 80%) and break (>95% to 0%) the hotspot.

Conclusions:

  • Silent genetic variation, specifically synonymous mutations, plays a significant role in shaping adaptive evolution by controlling mutational hotspot determinism.
  • The ntrB locus in Pseudomonas fluorescens serves as a model system to demonstrate how subtle genetic changes can profoundly alter evolutionary predictability.