Literature DB >> 21079359

Thiol-oxidation reduces the release of amylase induced by β-adrenergic receptor activation in rat parotid acinar cells.

Ming-Yu Guo1, Keitaro Satoh, Bing Qi, Takanori Narita, Osamu Katsumata-Kato, Miwako Matsuki-Fukushima, Junko Fujita-Yoshigaki, Hiroshi Sugiya.   

Abstract

In parotid acinar cells, the activation of β-adrenergic receptors induces the accumulation of intracellular cAMP, and consequently provokes the exocytotic release of amylase, a digestive enzyme. The cellular redox status plays a pivotal role in regulating various cellular functions. Cellular redox imbalance caused by the oxidation of cellular antioxidants, as a result of oxidative stress, induces significant biological damage. In this study, we examined the effects of diamide, a thiol-oxidizing reagent, on amylase release by rat parotid acinar cells. In cells treated with diamide, the formation of cAMP and the release of amylase induced by the β-agonist isoproterenol (IPR) were partially reduced. The inhibitory effect of diamide on the IPR-induced release of amylase could be abrogated by reduced glutathione or dithiothreitol. Diamide had no effect on the amylase release induced by forskolin, an adenylate cyclase activator, or by mastoparan, a heterotrimeric GTPbinding protein activator. In cells treated with diamide, the binding affinity for [(3)H]DHA, but not the number of binding sites, was reduced. These results suggest that β-adrenergic receptor function is reduced by thiol-oxidation, which inhibits amylase secretion by parotid acinar cells.

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Year:  2010        PMID: 21079359     DOI: 10.2220/biomedres.31.293

Source DB:  PubMed          Journal:  Biomed Res        ISSN: 0388-6107            Impact factor:   1.203


  1 in total

1.  Particulate matter promotes in vitro receptor-recognizable low-density lipoprotein oxidation and dysfunction of lipid receptors.

Authors:  Natalia Manzano-León; Jaime Mas-Oliva; Laura Sevilla-Tapia; Rocío Morales-Bárcenas; Jesús Serrano; Marie S O Neill; Claudia M García-Cuellar; Raúl Quintana; Inés Vázquez-López; Alvaro R Osornio-Vargas
Journal:  J Biochem Mol Toxicol       Date:  2013-01-07       Impact factor: 3.642

  1 in total

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