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PubMed · 5902811

Amylase.

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P Green. 1966. Amylase.. https://pubmed.ncbi.nlm.nih.gov/5902811/

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Influence of X-ray on the autophagic-lysosomal system in rat pancreatic acini.

Lysosomes have an important role in radiation injury of cells and tissues. Activation of autophagy is frequently observed in different types of pathological tissue degeneration. In radiation response it increases in some cases, and lysosomes are responsible for regulated degradation of the autophagic vacuoles. Lysosomes are also involved in ionizing radiation induced cell death. In apoptosis lysosomes degrade content of the phagocytotic vacuoles derived from engulfed apoptotic blebs. On the other hand lysosomal enzymes discharged from disintegrated cells have a key role in induction of necrotic changes. In this work we investigate autophagy and lysosomal protein degradation in the relatively radiation insensitive exocrine pancreatic acini in vivo and in vitro. Type of cell death induced by X-ray was also examined in relation to the changes of the lysosomal processes. In 5h after 16 Gy in vivo whole body irradiation we observed significant increase in the cytoplasmic volume fraction of autophagic vacuoles and in the number of apoptotic cells in vivo. But in the acini isolated from irradiated rats we could not detect a change in the lysosomal degradation of intracellular proteins. Therefore irradiation probably influences the autophagy in an earlier step than lysosomal degradation. Extended necrotic lesions were not observed in vivo as long as 48 h. Isolated pancreatic acini usually contain more autophagic vacuoles than in vivo, but we could not observe additional increase in autophagy after 8 Gy, in vitro irradiation. Lysosomal degradation of intracellular proteins was also unaltered after 8 Gy, in vitro irradiation. Other biochemical functional parameters of the isolated pancreatic acini, like protein synthesis and amylase secretion were not changed either after 8 Gy, in vitro X-ray treatment. These results indicate that pancreatic acinar cells in vitro have a high tolerance to irradiation. The observed in vivo radiation induced changes of the exocrine pancreas are possibly indirectly induced by injuries of more sensitive mechanisms.

Amylases↗

Glutathione might exert an important function in caerulein-stimulated amylase release in isolated rat pancreatic acini.

AIMS: The effect of different modes of thiol depletion on pancreatic exocrine secretory function and potential mechanisms of interference with the secretory process in pancreatic acinar cells were investigated. METHODOLOGY: After incubation with three thiol-modulating agents (L-buthionine sulfoximine, ethacrynic acid, and diamide) for 30 minutes, caerulein-stimulated amylase release and cholecystokinin (CCK) receptor binding characteristics were assessed in isolated rat pancreatic acini. The level of thiol groups (glutathione and protein thiols) and cytosolic-free calcium were measured in pancreatic acinar cells. RESULTS: All three thiol-modulating agents decreased caerulein (10(-10)M)-stimulated amylase release and the level of pancreatic acinar glutathione in a dose-dependent fashion without a marked increase in cell damage. Diamide also diminished the level of protein thiols. Ethacrynic acid and diamide, but not L-buthionine sulfoximine, inhibited the caerulein (10(-9)M)-induced Ca(2+) mobilization in pancreatic acinar cells. None of the three thiol-modulating agents altered the CCK receptor binding characteristics. CONCLUSION: The present findings strongly suggest an important role of glutathione in the secretory process in pancreatic acinar cells and in the secretory blockade observed in acute pancreatitis. A decrease in caerulein-induced Ca(2+) mobilization might participate in the inhibition of amylase release by some oxidative agents, but it is not the prominent cause in general.

Amylases↗

Expression and regulation of calpain in rat pancreatic acinar cells.

INTRODUCTION: Calpains, cytosolic Ca(2+)-dependent cysteine proteases, are expressed in a variety of mammalian cells and have been found to participate in stimulus-secretion coupling in platelets and alveolar cells. AIMS: In pancreatic acinar cells, expression of calpains and their role in the secretory process have not yet been elucidated. Both subjects, therefore, were examined in the current study. METHODOLOGY: mu-calpain and m-calpain were detected immunochemically. Calpain activation was measured by fluorescence spectrophotometry and single-cell fluorometry using Suc-Leu-Leu-Val-Tyr-AMC as substrate. Amylase secretion and cell damage, characterized by lactate dehydrogenase release, were measured by colorimetric assays. RESULTS: Immunochemistry revealed cytoplasmic localization of both calpain isoforms. Immediately after increasing the cytosolic Ca(2+) concentration with ionomycin, a marked dose-dependent protease activation and cellular damage were observed. Inhibition of ionomycin-mediated enzyme activation through preincubation of cells with Ca(2+)-free medium, BAPTA-AM, or Z-Leu-Leu-Tyr-CHN(2) significantly reduced cell injury. Cholecystokinin (100 pM) also induced proteolytic activity, preceding cholecystokinin-stimulated amylase secretion. Protease activity and amylase release were significantly inhibited by Z-Leu-Leu-Tyr-CHN(2 ) retreatment. CONCLUSION: Calpains are expressed in pancreatic acinar cells and may participate in stimulus-secretion coupling. In addition, our study indicates that pathologic calpain activation may contribute to Ca(2+)-mediated acinar cell damage.

Amylases↗