Molecular Evolution of the Myeloperoxidase Family

被引:0
|
作者
Hiromi Daiyasu
Hiroyuki Toh
机构
[1] Department of Bioinformatics,
[2] Biomolecular Engineering Research Institute,undefined
[3] 6-2-3,undefined
[4] Furuedai,undefined
[5] Suita 565-0874,undefined
[6] Japan,undefined
来源
关键词
Key words: Cyclooxygenase — Mosaic proteins — Heme;
D O I
暂无
中图分类号
学科分类号
摘要
Animal myeloperoxidase and its relatives constitute a diverse protein family, which includes myeloperoxidase, eosinophil peroxidase, thyroid peroxidase, salivary peroxidase, lactoperoxidase, ovoperoxidase, peroxidasin, peroxinectin, cyclooxygenase, and others. The members of this protein family share a catalytic domain of about 500 amino acid residues in length, although some members have distinctive mosaic structures. To investigate the evolution of the protein family, we performed a comparative analysis of its members, using the amino acid sequences and the coordinate data available today. The results obtained in this study are as follows: (1) 60 amino acid sequences belonging to this family were collected by database searching. We found a new member of the myeloperoxidase family derived from a bacterium. This is the first report of a bacterial member of this family. (2) An unrooted phylogenetic tree of the family was constructed according to the alignment. Considering the branching pattern in the obtained phylogenetic tree, together with the mosaic features in the primary structures, 60 members of the myeloperoxidase family were classified into 16 subfamilies. (3) We found two molecular features that distinguish cyclooxygenase from the other members of the protein family. (4) Several structurally deviated segments were identified by a structural comparison between cyclooxygenase and myeloperoxidase. Some of the segments seemed to be associated with the functional and/or structural differences between the enzymes.
引用
收藏
页码:433 / 445
页数:12
相关论文
共 50 条
  • [11] Molecular evolution of the junctophilin gene family
    Garbino, Alejandro
    van Oort, Ralph J.
    Dixit, Sayali S.
    Landstrom, Andrew P.
    Ackerman, Michael J.
    Wehrens, Xander H. T.
    PHYSIOLOGICAL GENOMICS, 2009, 37 (03) : 175 - 186
  • [12] Molecular evolution of the LNX gene family
    Michael Flynn
    Orthis Saha
    Paul Young
    BMC Evolutionary Biology, 11
  • [13] THE MOLECULAR WEIGHT OF MYELOPEROXIDASE
    EHRENBERG, A
    AGNER, K
    ACTA CHEMICA SCANDINAVICA, 1958, 12 (01): : 95 - 100
  • [14] Molecular evolution of the MAGUK family in metazoan genomes
    Aartjan JW te Velthuis
    Jeroen F Admiraal
    Christoph P Bagowski
    BMC Evolutionary Biology, 7
  • [15] Molecular and functional evolution of tachykinin peptide family
    Satake, Honoo
    Kawada, Tsuyoshi
    Aoyama, Masato
    Sakai, Tsubasa
    Minakata, Hiroyuki
    ZOOLOGICAL SCIENCE, 2005, 22 (12) : 1497 - 1497
  • [16] Molecular evolution of the transferrin family and associated receptors
    Lambert, Lisa A.
    BIOCHIMICA ET BIOPHYSICA ACTA-GENERAL SUBJECTS, 2012, 1820 (03): : 244 - 255
  • [17] Deciphering the molecular evolution of the ependymin protein family
    Suarez-Castillo, Edna C.
    Garcia-Arraras, Jose E.
    DEVELOPMENTAL BIOLOGY, 2006, 295 (01) : 424 - 424
  • [18] Molecular Evolution of the Primate α-/θ-Defensin Multigene Family
    Cheng, Dong-Qiang
    Li, Ying
    Huang, Jing-Fei
    PLOS ONE, 2014, 9 (05):
  • [19] Molecular evolution of the MAGUK family in metazoan genomes
    Velthuis, Aartjan J. W. te
    Admiraal, Jeroen F.
    Bagowski, Christoph P.
    BMC EVOLUTIONARY BIOLOGY, 2007, 7 (1)
  • [20] Counterion displacement in the molecular evolution of the rhodopsin family
    Terakita, A
    Koyanagi, M
    Tsukamoto, H
    Yamashita, T
    Miyata, T
    Shichida, Y
    NATURE STRUCTURAL & MOLECULAR BIOLOGY, 2004, 11 (03) : 284 - 289