Order:
  1.  25
    How exaptations facilitated photosensory evolution: Seeing the light by accident.Gregory S. Gavelis, Patrick J. Keeling & Brian S. Leander - 2017 - Bioessays 39 (7):1600266.
    Exaptations are adaptations that have undergone a major change in function. By recruiting genes from sources originally unrelated to vision, exaptation has allowed for sudden and critical photosensory innovations, such as lenses, photopigments, and photoreceptors. Here we review new or neglected findings, with an emphasis on unicellular eukaryotes (protists), to illustrate how exaptation has shaped photoreception across the tree of life. Protist phylogeny attests to multiple origins of photoreception, as well as the extreme creativity of evolution. By appropriating genes and (...)
    Direct download (2 more)  
     
    Export citation  
     
    Bookmark   3 citations  
  2.  40
    Masters of miniaturization: Convergent evolution among interstitial eukaryotes.Rebecca J. Rundell & Brian S. Leander - 2010 - Bioessays 32 (5):430-437.
    Marine interstitial environments are teeming with an extraordinary diversity of coexisting microeukaryotic lineages collectively called “meiofauna.” Interstitial habitats are broadly distributed across the planet, and the complex physical features of these environments have persisted, much like they exist today, throughout the history of eukaryotes, if not longer. Although our general understanding of the biological diversity in these environments is relatively poor, compelling examples of developmental heterochrony (e.g., pedomorphosis) and convergent evolution appear to be widespread among meiofauna. Therefore, an improved understanding (...)
    Direct download (4 more)  
     
    Export citation  
     
    Bookmark   2 citations  
  3.  32
    Macroevolution of complex cytoskeletal systems in euglenids.Brian S. Leander, Heather J. Esson & Susana A. Breglia - 2007 - Bioessays 29 (10):987-1000.
    Euglenids comprise a group of single‐celled eukaryotes with diverse modes of nutrition, including phagotrophy and photosynthesis. The level of morphological diversity present in this group provides an excellent system for demonstrating evolutionary transformations in morphological characters. This diversity also provides compelling evidence for major events in eukaryote evolution, such as the punctuated effects of secondary endosymbiosis and mutations in underlying developmental mechanisms. In this essay, we synthesize evidence for the origin, adaptive significance and diversification of the euglenid cytoskeleton, especially pellicle (...)
    Direct download (3 more)  
     
    Export citation  
     
    Bookmark