Literature DB >> 9503022

Genomic locations of ANX11 and ANX13 and the evolutionary genetics of human annexins.

R O Morgan1, D W Bell, J R Testa, M P Fernandez.   

Abstract

We have reconstructed a molecular genetic history of human annexins to chronicle their origins and dispersal throughout the genome. This involved the completion of chromosomal mapping, determination of ancestral relationships, and estimation of gene duplication dates. Fluorescence in situ hybridization localized human annexin XI (ANX11) to 10q22.3-q23.1 and annexin XIII (ANX13) to 8q24.1-q24.2. Orthologous annexins showed minor rate variation when calibrated to species separation times given by the fossil record, but paralogous subfamilies have diverged at fivefold variable rates. The rates and extents of sequence divergence were used to predict a mean separation time of 450 million years between vertebrate annexins, although their common ancestor may have emanated from invertebrate stock. Annexins XIII and VII formed a phylogenetically early clade, and annexins II and VIa were the most divergent members of two distinct clades. ANX6 may have been created by tandem duplication about 500 million years ago (Mya) and duplicated again to form ANX5 400 Mya, whereas ANX4 and ANX8 are proposed to be sequential duplication products from annexin XI. Vertebrate annexins thus proliferated via a cascade of gene duplications in higher metazoa to form at least three diverging groups of ubiquitous and structurally related genes. These can be distinguished by their dispersed genomic locations as well as their individual patterns of expression and partially differentiated functions.

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Year:  1998        PMID: 9503022     DOI: 10.1006/geno.1997.5148

Source DB:  PubMed          Journal:  Genomics        ISSN: 0888-7543            Impact factor:   5.736


  8 in total

1.  Structure-function relationship in annexin A13, the founder member of the vertebrate family of annexins.

Authors:  Javier Turnay; Emilio Lecona; Sara Fernández-Lizarbe; Ana Guzmán-Aránguez; María Pilar Fernández; Nieves Olmo; Maria Antonia Lizarbe
Journal:  Biochem J       Date:  2005-08-01       Impact factor: 3.857

2.  Structural and functional characterization of recombinant mouse annexin A11: influence of calcium binding.

Authors:  Emilio Lecona; Javier Turnay; Nieves Olmo; Ana Guzmán-Aránguez; Reginald O Morgan; Maria-Pilar Fernandez; Ma Antonia Lizarbe
Journal:  Biochem J       Date:  2003-07-15       Impact factor: 3.857

3.  Functional analysis of the human annexin A5 gene promoter: a downstream DNA element and an upstream long terminal repeat regulate transcription.

Authors:  M T Carcedo; J M Iglesias; P Bances; R O Morgan; M P Fernandez
Journal:  Biochem J       Date:  2001-06-01       Impact factor: 3.857

4.  Evolution of the neuropeptide Y receptor family: gene and chromosome duplications deduced from the cloning and mapping of the five receptor subtype genes in pig.

Authors:  A Wraith; A Törnsten; P Chardon; I Harbitz; B P Chowdhary; L Andersson; L G Lundin; D Larhammar
Journal:  Genome Res       Date:  2000-03       Impact factor: 9.043

5.  Mouse annexin V genomic organization includes an endogenous retrovirus.

Authors:  M I Rodriguez-Garcia; R O Morgan; M R Fernandez; P Bances; M P Fernandez
Journal:  Biochem J       Date:  1999-01-01       Impact factor: 3.857

6.  Annexins induce curvature on free-edge membranes displaying distinct morphologies.

Authors:  Theresa Louise Boye; Jonas Camillus Jeppesen; Kenji Maeda; Weria Pezeshkian; Vita Solovyeva; Jesper Nylandsted; Adam Cohen Simonsen
Journal:  Sci Rep       Date:  2018-07-09       Impact factor: 4.379

7.  Annexin 11 is required for midbody formation and completion of the terminal phase of cytokinesis.

Authors:  Alejandra Tomas; Clare Futter; Stephen E Moss
Journal:  J Cell Biol       Date:  2004-06-14       Impact factor: 10.539

Review 8.  The annexins.

Authors:  Stephen E Moss; Reg O Morgan
Journal:  Genome Biol       Date:  2004-03-31       Impact factor: 13.583

  8 in total

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