Evolution of trypsinogen activation peptides

被引:93
作者
Chen, JM [1 ]
Kukor, Z
Le Maréchal, U
Tóth, M
Tsakiris, L
Raguénes, O
Férec, C
Sahin-Tóth, M
机构
[1] Univ Bretagne Occidentale, INSERM, Estab Francais Sang Bretagne, Brest, France
[2] Boston Univ, Goldman Sch Grad Dent, Dept Mol & Cell Biol, Boston, MA 02215 USA
[3] Semmelweis Univ, Dept Med Chem Mol Biol & Pathobiochem, Budapest, Hungary
[4] Ctr Hosp Univ Morvan, Brest, France
[5] Ctr Hosp Univ Melun, Serv Gastroenterol, Melun, France
关键词
activation peptide; chronic pancreatitis; comparative genomic analysis; human cationic trypsinogen; molecular evolution; missense mutation;
D O I
10.1093/molbev/msg183
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 activation peptide of mammalian trypsinogens contains a highly conserved tetra-aspartate sequence (D19-D20-D21-D22) preceding the K23-I24 scissile peptide bond, which is hydrolyzed as the first step in the activation process. Here, we examined the evolution and function of trypsinogen activation peptides through integrating functional characterization of disease-associated mutations with comparative genomic analysis. Activation properties of three chronic pancreatitis-associated activation peptide mutants (the novel D19A and the previously reported D22G and K23R) were simultaneously analyzed, for the first time, in the context of recombinant human cationic trypsinogen. A dramatic increase in autoactivation of cationic trypsinogen was observed in all three mutants, with D22G and K23R exhibiting the most marked increases. The physiological activator enteropeptidase activated the D19A mutant normally, activated the D22G mutant very poorly, and stimulated activation of the K23R mutant. The biochemical and structural data, taken together with a comprehensive sequence comparison, indicates that the tetra-aspartate sequence in mammalian trypsinogen activation peptides has evolved not only for optimal enteropeptidase recognition in the duodenum but also for efficient inhibition of trypsinogen autoactivation within the pancreas. Moreover, the use of lysine instead of arginine at the PI position of activation peptides also has an advantageous effect against trypsinogen autoactivation. Finally, fixed substitutions in the key residues of the trypsinogen activation peptide may suggest the evolution of new functions unrelated to digestion, as found in the group III trypsinogens of cold-adapted fishes.
引用
收藏
页码:1767 / 1777
页数:11
相关论文
共 80 条
[32]   EVOLUTIONARY SIMILARITIES BETWEEN PANCREATIC PROTEOLYTIC ENZYMES [J].
HARTLEY, BS ;
BROWN, JR ;
KAUFFMAN, DL ;
SMILLIE, LB .
NATURE, 1965, 207 (5002) :1157-&
[33]   EVOLUTION OF ENZYME STRUCTURE [J].
HARTLEY, BS .
PROCEEDINGS OF THE ROYAL SOCIETY SERIES B-BIOLOGICAL SCIENCES, 1979, 205 (1161) :443-452
[34]   COMPARISON OF AMINO TERMINAL SEQUENCES OF BOVINE, DOGFISH, AND LUNGFISH TRYPSINOGENS [J].
HERMODSON, MA ;
TYE, RW ;
REECK, GR ;
NEURATH, H ;
WALSH, KA .
FEBS LETTERS, 1971, 14 (04) :222-+
[35]   Trypsin from Pacifastacus leniusculus hepatopancreas:: Purification and cDNA cloning of the synthesized zymogen [J].
Hernández-Cortés, P ;
Cerenius, L ;
Garcia-Carreño, F ;
Söderhäll, K .
BIOLOGICAL CHEMISTRY, 1999, 380 (04) :499-501
[36]  
HUBER R, 1974, J MOL BIOL, V89, P73, DOI 10.1016/0022-2836(74)90163-6
[37]   Molecular cloning of trypsin cDNAs and trypsin gene expression in the salmon louse Lepeophtheirus salmonis (Copepoda: Caligidae) [J].
Johnson, SC ;
Ewart, KV ;
Osborne, JA ;
Delage, D ;
Ross, NW ;
Murray, HM .
PARASITOLOGY RESEARCH, 2002, 88 (09) :789-796
[38]   MOLECULAR-CLONING AND NUCLEOTIDE-SEQUENCE OF STREPTOMYCES-GRISEUS TRYPSIN GENE [J].
KIM, JC ;
CHA, SH ;
JEONG, ST ;
OH, SK ;
BYUN, SM .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1991, 181 (02) :707-713
[39]   Molecular cloning and sequencing of trypsin cDNAs from Penaeus vannamei (Crustacea, Decapoda): Use in assessing gene expression during the moult cycle [J].
Klein, B ;
LeMoullac, G ;
Sellos, D ;
VanWormhoudt, A .
INTERNATIONAL JOURNAL OF BIOCHEMISTRY & CELL BIOLOGY, 1996, 28 (05) :551-563
[40]   Presence of cathepsin B in the human pancreatic secretory pathway and its role in trypsinogen activation during hereditary pancreatitis [J].
Kukor, Z ;
Mayerle, J ;
Krüger, B ;
Tóth, M ;
Steed, PM ;
Halangk, W ;
Lerch, MM ;
Sahin-Tóth, M .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2002, 277 (24) :21389-21396