Abstract
Activation of pancreatic digestive zymogens within the pancreatic acinar cell may be an early event in the development of pancreatitis. To detect such activation, an immunoblot assay has been developed that measures the relative amounts of inactive zymogens and their respective active enzyme forms. Using this assay, high doses of cholecystokinin or carbachol were found to stimulate the intracellular conversion of at least three zymogens (procarboxypeptidase A1, procarboxypeptidase B, and chymotrypsinogen 2) to their active forms. Thus, this conversion may be a generalized phenomenon of pancreatic zymogens. The conversion is detected within ten minutes of treatment and is not associated with changes in acinar cell morphology; it has been predicted that the lysosomal thiol protease, cathepsin B, may initiate this conversion. Small amounts of cathepsin B are found in the secretory pathway, and cathepsin B can activate trypsinogen in vitro; however, exposure of acini to a thiol protease inhibitor (E64) did not block this conversion. Conversion was inhibited by the serine protease inhibitor, benzamidine, and by raising the intracellular pH, using chloroquine or monensin. This limited proteolytic conversion appears to require a low pH compartment and a serine protease activity. After long periods of treatment (60 minutes), the amounts of the active enzyme forms began to decrease; this observation suggested that the active enzyme forms were being degraded. Treatment of acini with E64 reduced this late decrease in active enzyme forms, suggesting that thiol proteases, including lysosomal hydrolases, may be involved in the degradation of the active enzyme forms. These findings indicate that pathways for zymogen activation as well as degradation of active enzyme forms are present within the pancreatic acinar cell.
MeSH Terms
Animals
Benzamidines/pharmacology
Biological Transport
Carbachol/pharmacology
Carboxypeptidase B
Carboxypeptidases/metabolism
Carboxypeptidases A
Cholecystokinin/pharmacology
Chymotrypsinogen/metabolism
Cysteine Proteinase Inhibitors/pharmacology
Enzyme Activation/drug effects
Enzyme Precursors/metabolism
Hydrogen-Ion Concentration
Leucine/analogs & derivatives,pharmacology
Models, Biological
Pancreas/cytology,drug effects,metabolism
Pancreatitis/etiology
Protein Processing, Post-Translational/drug effects
Time Factors
Trypsin Inhibitors/pharmacology
Chemicals
Benzamidines
Cysteine Proteinase Inhibitors
Enzyme Precursors
Trypsin Inhibitors
Carbachol
Cholecystokinin
Chymotrypsinogen
Carboxypeptidases
Carboxypeptidases A
Carboxypeptidase B
Leucine
benzamidine
E 64
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Gorelick F S
Department of Medicine, Department of Veterans Affairs Medical Center, West Haven, Connecticut 06516.
Modlin I M
Leach S D
Carangelo R
Katz M
References (23)
23 references, click to expand
-
Hormone-induced pancreatitis.
Eur Surg Res. 1992;24 Suppl 1:29-39
PMID: 1601022
-
Effects of short-term pancreatic duct obstruction in rats.
Gastroenterology. 1991 Jan;100(1):196-202
PMID: 1700960
-
Evidence of intracellular activation of serine proteases in acute cerulein-induced pancreatitis in rats.
Scand J Gastroenterol. 1991 Feb;26(2):190-6
PMID: 1707179
-
Intracellular activation of digestive zymogens in rat pancreatic acini. Stimulation by high doses of cholecystokinin.
J Clin Invest. 1991 Jan;87(1):362-6
PMID: 1985109
-
Localization of lysosomal and digestive enzymes in cytoplasmic vacuoles in caerulein-pancreatitis.
Histochemistry. 1990;94(2):161-70
PMID: 2358374
-
The condensing vacuole of exocrine cells is more acidic than the mature secretory vesicle.
Nature. 1987 Mar 5-11;326(6108):77-9
PMID: 2434862
-
Experimental pancreatitis is mediated by low-affinity cholecystokinin receptors that inhibit digestive enzyme secretion.
Proc Natl Acad Sci U S A. 1989 Nov;86(22):8968-71
PMID: 2479032
-
Novel tool for the study of cholecystokinin-stimulated pancreatic enzyme secretion.
J Clin Invest. 1989 Jan;83(1):321-5
PMID: 2910915
-
Possible lysosomal activation of pancreatic zymogens. Activation of both human trypsinogens by cathepsin B and spontaneous acid. Activation of human trypsinogen 1.
Biol Chem Hoppe Seyler. 1988 May;369 Suppl:293-8
PMID: 3202969
-
The cell biology of experimental pancreatitis.
N Engl J Med. 1987 Jan 15;316(3):144-50
PMID: 3540666
-
Exocytosis occurs at the lateral plasma membrane of the pancreatic acinar cell during supramaximal secretagogue stimulation.
Gastroenterology. 1987 Feb;92(2):345-53
PMID: 3792771
-
Free proteolytic enzymes in pancreatic juice of patients with acute pancreatitis.
Am J Dig Dis. 1974 Jul;19(7):591-8
PMID: 4835329
-
Pancreatitis. The role of lysosomes.
Dig Dis Sci. 1984 Oct;29(10):934-8
PMID: 6383748
-
Intracellular aspects of the process of protein synthesis.
Science. 1975 Aug 1;189(4200):347-58
PMID: 1096303
-
Apical secretion of lysosomal enzymes in rabbit pancreas occurs via a secretagogue regulated pathway and is increased after pancreatic duct obstruction.
J Clin Invest. 1991 Mar;87(3):865-9
PMID: 1705567
-
The tryptic activation pathway of monomeric procarboxypeptidase A.
J Biol Chem. 1990 Apr 25;265(12):6949-53
PMID: 2324107
-
Phasic release of newly synthesized secretory proteins in the unstimulated rat exocrine pancreas.
J Cell Biol. 1987 Feb;104(2):243-52
PMID: 2433293
-
Activation of proteases in cerulein-induced pancreatitis.
Pancreas. 1989;4(5):565-71
PMID: 2478999
-
Mannose 6-phosphate receptors and their role in targeting proteins to lysosomes.
J Membr Biol. 1988 Jul;103(1):7-16
PMID: 2972840
-
Pathogenesis of acute pancreatitis.
Annu Rev Med. 1988;39:95-105
PMID: 3285793
-
Constitutive protein secretion from the exocrine pancreas of fetal rats.
J Biol Chem. 1987 Mar 15;262(8):3886-90
PMID: 3818669
-
Effects of in vivo cholinergic stimulation of rat exocrine pancreas.
Am J Physiol. 1983 Jun;244(6):G623-9
PMID: 6190409
-
L-trans-Epoxysuccinyl-leucylamido(4-guanidino)butane (E-64) and its analogues as inhibitors of cysteine proteinases including cathepsins B, H and L.
Biochem J. 1982 Jan 1;201(1):189-98
PMID: 7044372