Evolutionary lines of cysteine peptidases

被引:272
作者
Barrett, AJ [1 ]
Rawlings, ND [1 ]
机构
[1] Babraham Inst, MRC, Mol Enzymol Lab, Cambridge CB2 4AT, England
关键词
clan; cysteine protease; evolution; secondary structure;
D O I
10.1515/BC.2001.088
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
The proteolytic enzymes that depend upon a cysteine residue for activity have come from at least seven different evolutionary origins, each of which has produced a group of cysteine peptidases with distinctive structures and properties. We show here that the characteristic molecular topologies of the peptidases in each evolutionary line can be seen not only in their three-dimensional structures, but commonly also in the two-dimensional structures, Clan CA contains the families of papain (C1), calpain (C2), streptopain (C10) and the ubiquitin-specific peptidases (C12, C19), as well as many families of viral cysteine endopeptidases, Clan CD contains the families of clostripain (C11), gingipain R (C25), legumain (C13), caspase-1 (C14) and separin (C50), These enzymes have specificities dominated by the interactions of the S1 subsite. Clan CE contains the families of adenain (C5) from adenoviruses, the eukaryotic Ulp1 protease (C48) and the bacterial YopJ proteases (C55), Clan CF contains only pyroglutamyl peptidase I(C15), The picornains (C3) in dan PA have probably evolved from serine peptidases, which still form the majority of enzymes in the dan. The cysteine peptidase activities in clans PB and CH are autolytic only, In conclusion, we suggest that although almost all the cysteine peptidases depend for activity on catalytic dyads of cysteine and histidine, it is worth noting some important differences that they have inherited from their distant ancestral peptidases.
引用
收藏
页码:727 / 733
页数:7
相关论文
共 25 条
  • [11] Structural and biochemical features distinguish the foot-and-mouth disease virus leader proteinase from other papain-like enzymes
    Guarné, A
    Hampoelz, B
    Glaser, W
    Carpena, X
    Torma, J
    Fita, I
    Skern, T
    [J]. JOURNAL OF MOLECULAR BIOLOGY, 2000, 302 (05) : 1227 - 1240
  • [12] Crystal structure of a hedgehog autoprocessing domain: Homology between hedgehog and self-splicing proteins
    Hall, TMT
    Porter, JA
    Young, KE
    Koonin, EV
    Beachy, PA
    Leahy, DJ
    [J]. CELL, 1997, 91 (01) : 85 - 97
  • [13] DICTIONARY OF PROTEIN SECONDARY STRUCTURE - PATTERN-RECOGNITION OF HYDROGEN-BONDED AND GEOMETRICAL FEATURES
    KABSCH, W
    SANDER, C
    [J]. BIOPOLYMERS, 1983, 22 (12) : 2577 - 2637
  • [14] THIOL PROTEASES - COMPARATIVE STUDIES BASED ON THE HIGH-RESOLUTION STRUCTURES OF PAPAIN AND ACTINIDIN, AND ON AMINO-ACID SEQUENCE INFORMATION FOR CATHEPSIN-B AND CATHEPSIN-H, AND STEM BROMELAIN
    KAMPHUIS, IG
    DRENTH, J
    BAKER, EN
    [J]. JOURNAL OF MOLECULAR BIOLOGY, 1985, 182 (02) : 317 - 329
  • [15] A new protease required for cell-cycle progression in yeast
    Li, SJ
    Hochstrasser, M
    [J]. NATURE, 1999, 398 (6724) : 246 - 251
  • [16] *NC IUBMB, 1999, ENZ NOM PEPT NOM PRE
  • [17] Disruption of signaling by Yersinia effector YopJ, a ubiquitin-like protein protease
    Orth, K
    Xu, ZH
    Mudgett, MB
    Bao, ZQ
    Palmer, LE
    Bliska, JB
    Mangel, WF
    Staskawicz, B
    Dixon, JE
    [J]. SCIENCE, 2000, 290 (5496) : 1594 - 1597
  • [18] Protein splicing of inteins and hedgehog autoproteolysis: Structure, function, and evolution
    Perler, FB
    [J]. CELL, 1998, 92 (01) : 1 - 4
  • [19] Polgar L., 1989, MECH PROTEASE ACTION
  • [20] RAWLINGS ND, 1998, HDB PROTEOLYTIC ENZY, P546