Literature DB >> 25123972

Lineage-specific evolution of cnidarian Wnt ligands.

Katrin Hensel1, Tamar Lotan, Steve M Sanders, Paulyn Cartwright, Uri Frank.   

Abstract

We have studied the evolution of Wnt genes in cnidarians and the expression pattern of all Wnt ligands in the hydrozoan Hydractinia echinata. Current views favor a scenario in which 12 Wnt sub-families were jointly inherited by cnidarians and bilaterians from their last common ancestor. Our phylogenetic analyses clustered all medusozoan genes in distinct, well-supported clades, but many orthologous relationships between medusozoan Wnts and anthozoan and bilaterian Wnt genes were poorly supported. Only seven anthozoan genes, Wnt2, Wnt4, Wnt5, Wnt6, Wnt 10, Wnt11, and Wnt16 were recovered with strong support with bilaterian genes and of those, only the Wnt2, Wnt5, Wnt11, and Wnt16 clades also included medusozoan genes. Although medusozoan Wnt8 genes clustered with anthozoan and bilaterian genes, this was not well supported. In situ hybridization studies revealed poor conservation of expression patterns of putative Wnt orthologs within Cnidaria. In polyps, only Wnt1, Wnt3, and Wnt7 were expressed at the same position in the studied cnidarian models Hydra, Hydractinia, and Nematostella. Different expression patterns are consistent with divergent functions. Our data do not fully support previous assertions regarding Wnt gene homology, and suggest a more complex history of Wnt family genes than previously suggested. This includes high rates of sequence divergence and lineage-specific duplications of Wnt genes within medusozoans, followed by functional divergence over evolutionary time scales.
© 2014 Wiley Periodicals, Inc.

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Year:  2014        PMID: 25123972     DOI: 10.1111/ede.12089

Source DB:  PubMed          Journal:  Evol Dev        ISSN: 1520-541X            Impact factor:   1.930


  6 in total

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2.  Transcription factor AP2 controls cnidarian germ cell induction.

Authors:  Timothy Q DuBuc; Christine E Schnitzler; Eleni Chrysostomou; Emma T McMahon; James M Gahan; Tara Buggie; Sebastian G Gornik; Shirley Hanley; Sofia N Barreira; Paul Gonzalez; Andreas D Baxevanis; Uri Frank
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Journal:  BMC Genomics       Date:  2015-02-14       Impact factor: 3.969

5.  A transcriptional time-course analysis of oral vs. aboral whole-body regeneration in the Sea anemone Nematostella vectensis.

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6.  Evolution of Gene Expression across Species and Specialized Zooids in Siphonophora.

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  6 in total

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