Comparative genetics and evolution of annexin A13 as the founder gene of vertebrate annexins

被引:40
作者
Iglesias, JM
Morgan, RO
Jenkins, NA
Copeland, NG
Gilbert, DJ
Fernandez, MP
机构
[1] Univ Oviedo, Dept Biochem & Mol Biol, E-33006 Oviedo, Spain
[2] NCI, Mammalian Genet Lab, ABL Basic Res Program, Frederick Canc Res & Dev Ctr, Frederick, MD USA
关键词
annexin gene family; gene duplication; gene organization; genetic mapping; molecular evolution; phylogenetic analysis;
D O I
10.1093/oxfordjournals.molbev.a004120
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Annexin A 13 (ANXA13) is believed to be the original founder gene of the 12-member vertebrate annexin A family, and it has acquired an intestine-specific expression associated with a highly differentiated intracellular transport function. Molecular characterization of this subfamily in a range of vertebrate species was undertaken to assess coding region conservation, gene organization, chromosomal linkage, and phylogenetic relationships relevant to its progenitor role in the structure-function evolution of the annexin gene superfamily. Protein diagnostic features peculiar to this subfamily include an alternate isoform containing a KGD motif, an elevated basic amino acid content with polyhistidine expansion in the 5'-translated region, and the conservation of 15% core tetrad residues specific to annexin A13 members. The 12 coding exons comprising the 58-kb human ANXA13 gene were deduced from BAC clone sequencing, whereas internal repetitive elements and neighboring genes in chromosome 8q24.12 were identified by contig analysis of the draft sequence from the human genome project. A unique exon splicing pattern in the annexin A13 gene was corroborated by coanalysis of mouse, rat, zebrafish, and pufferfish genomic DNA and determined to be the most distinct of all vertebrate annexins. The putative promoter region was identified by phylogenetic footprinting of potential binding sites for intestine-specific transcription factors. Mouse annexin A13 cDNA was used to map the gene to an orthologous linkage group in mouse chromosome 15 (between Sdc2 and Myc by backcross analysis), and the zebrafish cDNA permitted its localization to linkage group 24. Comparative analysis of annexin A 13 from nine species traced this gene's speciation history and assessed coding region variation, whereas phylogenetic analysis showed it to be the deepest-branching vertebrate annexin, and computational analysis estimated the gene age and divergence rate. The unique, conserved aspects of annexin A13 primary structure, gene organization, and genetic maps identify it as the probable common ancestor of all vertebrate annexins, beginning with the sequential duplication to annexins A7 and All approximately 700 MYA. before the emergence of chordates.
引用
收藏
页码:608 / 618
页数:11
相关论文
共 47 条
  • [31] Ancient large-scale genome duplications:: Phylogenetic and linkage analyses shed light on chordate genome evolution
    Pébusque, MJ
    Coulier, F
    Birnbaum, D
    Pontarotti, P
    [J]. MOLECULAR BIOLOGY AND EVOLUTION, 1998, 15 (09) : 1145 - 1159
  • [32] Perutelli Paolo, 1995, Recenti Progressi in Medicina, V86, P168
  • [33] Apical membrane targeting of Nedd4 is mediated by an association of its C2 domain with annexin XIIIb
    Plant, PJ
    Lafont, F
    Lecat, S
    Verkade, P
    Simons, K
    Rotin, D
    [J]. JOURNAL OF CELL BIOLOGY, 2000, 149 (07) : 1473 - 1483
  • [34] Zebrafish comparative genomics and the origins of vertebrate chromosomes
    Postlethwait, JH
    Woods, IG
    Ngo-Hazelett, P
    Yan, YL
    Kelly, PD
    Chu, F
    Huang, H
    Hill-Force, A
    Talbot, WS
    [J]. GENOME RESEARCH, 2000, 10 (12) : 1890 - 1902
  • [35] MatInd and MatInspector: New fast and versatile tools for detection of consensus matches in nucleotide sequence data
    Quandt, K
    Frech, K
    Karas, H
    Wingender, E
    Werner, T
    [J]. NUCLEIC ACIDS RESEARCH, 1995, 23 (23) : 4878 - 4884
  • [36] Evolutionary rates of duplicate genes in fish and mammals
    Robinson-Rechavi, M
    Laudet, V
    [J]. MOLECULAR BIOLOGY AND EVOLUTION, 2001, 18 (04) : 681 - 683
  • [37] Characterization and repeat analysis of the compact genome of the freshwater pufferfish Tetraodon nigroviridis
    Roest Crollius, H
    Jaillon, O
    Dasilva, C
    Ozouf-Costaz, C
    Fizames, C
    Fischer, C
    Bouneau, L
    Billault, A
    Quetier, F
    Saurin, W
    Bernot, A
    Weissenbach, J
    [J]. GENOME RESEARCH, 2000, 10 (07) : 939 - 949
  • [38] Sambrook J., 1989, MOL CLONING
  • [39] IDENTIFICATION AND PARTIAL SEQUENCE-ANALYSIS OF NOVEL ANNEXINS IN LYTECHINUS-PICTUS OOCYTES
    SHEN, WJ
    AVERY, J
    TOTTY, NF
    HSUAN, JJ
    WHITAKER, M
    MOSS, SE
    [J]. BIOCHEMICAL JOURNAL, 1994, 304 : 911 - 916
  • [40] DIVERGENT STRUCTURE OF THE HUMAN SYNEXIN (ANNEXIN-VII) GENE AND ASSIGNMENT TO CHROMOSOME-10
    SHIRVAN, A
    SRIVASTAVA, M
    WANG, MG
    CULTRARO, C
    MAGENDZO, K
    MCBRIDE, OW
    POLLARD, HB
    BURNS, AL
    [J]. BIOCHEMISTRY, 1994, 33 (22) : 6888 - 6901