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Related Concept Videos

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Related Experiment Video

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Manipulation of Ploidy in Caenorhabditis elegans
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Interaction among ploidy, breeding system and lineage diversification.

Rosana Zenil-Ferguson1, J Gordon Burleigh2, William A Freyman3

  • 1Department of Biology, University of Hawai'i Mānoa, Honolulu, HI, 96822, USA.

The New Phytologist
|October 17, 2019
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Summary

Breeding systems, not ploidy, drive diversification in Solanaceae. Polyploidy commonly arises from direct self-incompatibility breakdown via whole genome duplication, influencing plant evolution.

Keywords:
SSE modelsbreeding systemsdiploidizationdiversificationploidypolyploidyself-incompatibility

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Area of Science:

  • Evolutionary Biology
  • Plant Sciences
  • Phylogenetics

Background:

  • Macroevolutionary patterns are influenced by traits affecting speciation and extinction rates.
  • Identifying these traits is challenging due to character diversity and phylogenetic data complexities.
  • Ploidy and breeding systems are hypothesized drivers of angiosperm diversification.

Purpose of the Study:

  • To investigate the association of ploidy, breeding system, and their interaction with diversification rates in Solanaceae.
  • To determine which factors best explain diversification patterns within the Solanaceae family.
  • To elucidate the evolutionary pathways leading to polyploidy in Solanaceae.

Main Methods:

  • Fitting 29 diversification models to extensive trait and phylogenetic data.
  • Analyzing speciation and extinction rate differences in relation to ploidy and breeding system.
  • Comparing stochastic diversification models with trait interactions and hidden states.

Main Results:

  • Diversification patterns in Solanaceae are better explained by breeding system and an unobserved factor, not ploidy.
  • The most frequent route to polyploidy involves direct breakdown of self-incompatibility through whole genome duplication.
  • Complex trait interactions and hidden states improve understanding of macroevolutionary patterns.

Conclusions:

  • Breeding system is a key determinant of diversification in Solanaceae.
  • Whole genome duplication directly impacting self-incompatibility is the primary pathway to polyploidy.
  • Advanced diversification models are crucial for deciphering macroevolutionary dynamics in plants.