Literature DB >> 25871511

A New Nomenclature of Xenopus laevis Chromosomes Based on the Phylogenetic Relationship to Silurana/Xenopus tropicalis.

Yoichi Matsuda1, Yoshinobu Uno, Mariko Kondo, Michael J Gilchrist, Aaron M Zorn, Daniel S Rokhsar, Michael Schmid, Masanori Taira.   

Abstract

Xenopus laevis (XLA) is an allotetraploid species which appears to have undergone whole-genome duplication after the interspecific hybridization of 2 diploid species closely related to Silurana/Xenopus tropicalis (XTR). Previous cDNA fluorescence in situ hybridization (FISH) experiments have identified 9 sets of homoeologous chromosomes in X. laevis, in which 8 sets correspond to chromosomes 1-8 of X. tropicalis (XTR1-XTR8), and the last set corresponds to a fusion of XTR9 and XTR10. In addition, recent X. laevis genome sequencing and BAC-FISH experiments support this physiological relationship and show no gross chromosome translocation in the X. laevis karyotype. Therefore, for the benefit of both comparative cytogenetics and genome research, we here propose a new chromosome nomenclature for X. laevis based on the phylogenetic relationship and chromosome length, i.e. XLA1L, XLA1S, XLA2L, XLA2S, and so on, in which the numbering of XLA chromosomes corresponds to that in X. tropicalis and the postfixes 'L' and 'S' stand for 'long' and 'short' chromosomes in the homoeologous pairs, which can be distinguished cytologically by their relative size. The last chromosome set is named XLA9L and XLA9S, in which XLA9 corresponds to both XTR9 and XTR10, and hence, to emphasize the phylogenetic relationship to X. tropicalis, XLA9_10L and XLA9_10S are also used as synonyms.

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Year:  2015        PMID: 25871511     DOI: 10.1159/000381292

Source DB:  PubMed          Journal:  Cytogenet Genome Res        ISSN: 1424-8581            Impact factor:   1.636


  26 in total

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3.  Navigating Xenbase: An Integrated Xenopus Genomics and Gene Expression Database.

Authors:  Christina James-Zorn; Virgilio Ponferrada; Malcolm E Fisher; Kevin Burns; Joshua Fortriede; Erik Segerdell; Kamran Karimi; Vaneet Lotay; Dong Zhuo Wang; Stanley Chu; Troy Pells; Ying Wang; Peter D Vize; Aaron Zorn
Journal:  Methods Mol Biol       Date:  2018

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5.  Subfunctionalization of Paralogous Aryl Hydrocarbon Receptors from the Frog Xenopus Laevis: Distinct Target Genes and Differential Responses to Specific Agonists in a Single Cell Type.

Authors:  Scott H Freeburg; Eric Engelbrecht; Wade H Powell
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6.  Xenbase: Core features, data acquisition, and data processing.

Authors:  Christina James-Zorn; Virgillio G Ponferrada; Kevin A Burns; Joshua D Fortriede; Vaneet S Lotay; Yu Liu; J Brad Karpinka; Kamran Karimi; Aaron M Zorn; Peter D Vize
Journal:  Genesis       Date:  2015-07-16       Impact factor: 2.487

7.  Neural transcription factors bias cleavage stage blastomeres to give rise to neural ectoderm.

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8.  Transcriptomic insights into genetic diversity of protein-coding genes in X. laevis.

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9.  Generation of a Xenopus laevis F1 albino J strain by genome editing and oocyte host-transfer.

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Journal:  Dev Biol       Date:  2016-03-15       Impact factor: 3.582

Review 10.  Xenopus genomic data and browser resources.

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