Crystal structure of human procathepsin X:: A cysteine protease with the proregion covalently linked to the active site cysteine

被引:71
|
作者
Sivaraman, J
Nägler, DK
Zhang, RL
Ménard, R
Cygler, M
机构
[1] Natl Res Council Canada, Biotechnol Res Inst, Montreal, PQ H4P 2R2, Canada
[2] Prot Engineering Network Ctrs Excellence, Montreal, PQ, Canada
[3] Montreal Joint Ctr Struct Biol, Montreal, PQ, Canada
关键词
cysteine protease; proenzyme; crystal structure; active site; proregion;
D O I
10.1006/jmbi.1999.3410
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
Human cathepsin X is one of many proteins discovered in recent years through the mining of sequence databases. Its sequence shows clear homology to cysteine proteases from the papain family, containing the characteristic residue patterns, including the active site. However, the proregion of cathepsin X is only 38 residues long, the shortest among papain-like enzymes, and the cathepsin X sequence has an atypical insertion in the regions proximal to the active site. This protein was recently expressed and partially characterized biochemically. Unlike most other cysteine proteases from the papain family, procathepsin X is incapable of autoprocessing in vitro but can be processed under reducing conditions by exogenous cathepsin L. Atypically, the mature enzyme is primarily a carboxypeptidase and has extremely poor endopeptidase activity. We have determined the three-dimensional structure of the procathepsin X at 1.7 Angstrom resolution. The overall structure of the mature enzyme is characteristic for enzymes of the papain superfamily, but contains several novel features. Most interestingly, the short proregion binds to the enzyme with the aid of a covalent bond between the cysteine residue in the proregion (Cys10p) and the active site cysteine residue (Cys31). This is the first example of a zymogen in which the inhibition of enzyme's proteolytic activity by the proregion is achieved through a reversible covalent modification of the active site nucleophile. Such mode of binding requires less contact area between the proregion and the enzyme than observed in other procathepsins, and no auxiliary binding site on the enzyme surface is used. A three-residue insertion in a highly conserved region, just prior to the active site cysteine residue, confers a significantly different shape on the S' subsites, compared to other proteases from papain family. The 3D structure provides an explanation for the rather unusual carboxypeptidase activity of this enzyme and confirms the predictions based on homology modeling. Another long insertion in the cathepsin X amino acid sequence forms a P-hairpin pointing away from the active site. This insertion, thought to be an equivalent of cathepsin B occluding loop, is located on the side of the protein, distant from the substrate binding site. (C) 2000 Academic Press.
引用
收藏
页码:939 / 951
页数:13
相关论文
共 50 条
  • [31] Lysosomal cysteine protease, cathepsin B, is targeted to lysosomes by the mannose 6-phosphate-independent pathway in rat hepatocytes: Site-specific phosphorylation in oligosaccharides of the proregion
    Tanaka, Y
    Tanaka, R
    Kawabata, T
    Noguchi, Y
    Himeno, M
    JOURNAL OF BIOCHEMISTRY, 2000, 128 (01): : 39 - 48
  • [32] Identification of the active site and characterization of a novel sporulation-specific cysteine protease YabG from Bacillus subtilis
    Yamazawa, Ryuji
    Kuwana, Ritsuko
    Takeuchi, Kenji
    Takamatsu, Hiromu
    Nakajima, Yoshitaka
    Ito, Kiyoshi
    JOURNAL OF BIOCHEMISTRY, 2022, 171 (03): : 315 - 324
  • [33] Environment of the active site region of RseP, an Escherichia coli regulated intramembrane proteolysis protease, assessed by site-directed cysteine alkylation
    Koide, Kayo
    Maegawa, Saki
    Ito, Koreaki
    Akiyama, Yoshinori
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2007, 282 (07) : 4553 - 4560
  • [34] Substrate complex structure, active site labeling and catalytic role of the zinc ion in cysteine glycosidase
    Maruyama, Shun
    Sawano, Kota
    Amaki, Satoko
    Suzuki, Takehiro
    Narita, Satoru
    Kimura, Kenta
    Arakawa, Takatoshi
    Yamada, Chihaya
    Ito, Yukishige
    Dohmae, Naoshi
    Fujita, Kiyotaka
    Ishiwata, Akihiro
    Fushinobu, Shinya
    GLYCOBIOLOGY, 2022, 32 (02) : 171 - 180
  • [35] Synthesis and structure of a biomimetic model of the iron hydrogenase active site covalently linked to a ruthenium photosensitizer
    Ott, S
    Kritikos, M
    Åkermark, B
    Sun, LC
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2003, 42 (28) : 3285 - 3288
  • [36] THE GLUTAMINE HYDROLYSIS FUNCTION OF HUMAN GMP SYNTHETASE - IDENTIFICATION OF AN ESSENTIAL ACTIVE-SITE CYSTEINE
    NAKAMURA, J
    STRAUB, K
    WU, J
    LOU, L
    JOURNAL OF BIOLOGICAL CHEMISTRY, 1995, 270 (40) : 23450 - 23455
  • [37] Involvement of the Cys-Tyr cofactor on iron binding in the active site of human cysteine dioxygenase
    Sita Arjune
    Guenter Schwarz
    Abdel A. Belaidi
    Amino Acids, 2015, 47 : 55 - 63
  • [38] Involvement of the Cys-Tyr cofactor on iron binding in the active site of human cysteine dioxygenase
    Arjune, Sita
    Schwarz, Guenter
    Belaidi, Abdel A.
    AMINO ACIDS, 2015, 47 (01) : 55 - 63
  • [39] Crystal structure of human cystatin D, a cysteine peptidase inhibitor with restricted inhibition profile
    Alvarez-Fernandez, M
    Liang, YH
    Abrahamson, M
    Su, XD
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2005, 280 (18) : 18221 - 18228
  • [40] Crystal structure of the cysteine protease inhibitor 2 from Entamoeba histolytica: Functional convergence of a common protein fold
    Casados-Vazquez, Luz E.
    Lara-Gonzalez, Samuel
    Brieba, Luis G.
    GENE, 2011, 471 (1-2) : 45 - 52