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  • 1
    Electronic Resource
    Electronic Resource
    Springer
    Journal of gastroenterology 30 (1995), S. 731-738 
    ISSN: 1435-5922
    Keywords: stellate cell ; endothelin ; fibrosis
    Source: Springer Online Journal Archives 1860-2000
    Topics: Medicine
    Notes: Abstract To elucidate the role played by hepatic sinusoidal cells in the regulation of the circulatory status in the liver, the effect of endothelins (ETs) on primarycultured stellate cells was examined. Kinetic analysis with125I-labeled ET-1 revealed that stellate cells have ET receptors with a Kd value of 141 pM and a Bmax of 12.3 fmol/105 cells. ET-1,-2, and-3 dose-dependently increased inositol monophosphate (InsP) levels in stellate cells with an EC50 of 0.53, 1.63, and 1.88 nM, respectively. Binding of125I-labeled ET-1 to stellate cells and the ET-enhanced InsP formation were suppressed by preincubating the cells with 10 nM of unlabeled ET-1 or ET-3 for more than 3 h, indicating down-regulation and desensitization of ET receptors by homologous ligands. Binding of ETs to surface receptors induced a marked contraction of stellate cells. Stellate cells rapidly reacted to ETs, as detected by the flexible silicone-rubber-membrane method; 78%, 73%, and 58% of the stellate cells contracted 2.5 min after the addition of 10 nM of ET-1, ET-2, or ET-3, respectively. On the other hand, ETs also triggered a long-lasting contraction of the cells, as revealed with hydrated collagen gels. The ET-induced contraction of stellate cells decreased the diameter of the collagen lattice by about 60%, and this action was inhibited either by cytochalasin B or by H-7, a protein kinase C inhibitor. These and other results suggest that ETs induced cell contraction by some mechanism that involved protein kinase C.
    Type of Medium: Electronic Resource
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  • 2
    ISSN: 1573-4943
    Keywords: glutathione ; redox state ; GSH metabolism ; transport
    Source: Springer Online Journal Archives 1860-2000
    Topics: Chemistry and Pharmacology
    Notes: Abstract Glutathione is one of the most abundant naturally occurring thiols in living organisms and is synthesized in its reduced from (GSH). GSH has been known to play a fundamental role in cellular events in different cells and tissues, including protection of organisms against oxidative stress. The two peptide linkages of GSH are sequentially degraded by γ-glutamyltransferase and peptidases that hydrolyze the cysteinylglycine bond; all these enzymes are localized on the outer surface of cell membranes. The turnover of GSH in animals can be understood on the basis of the following three factors: (1) synthesis of GSH occurs exclusively intracellularly, while its degradation occurs predominantly extracellularly; (2) plasma membranes of many tissues and cells have secretory transport systems for GSH and its derivatives; (3) levels of the transferase, a key enzyme for GSH degradation, differ from one tissue to another. Thus, GSH released from tissues with low transferase activity (such as the liver) must be transferred for its rapid turnover to tissues with high enzyme activity (such as the kidney). Further studies on the states of thiol compounds transported via the circulation should be relevant to the understanding of the full scope and physiological significance of the interorgan cooperation of GSH metabolism. Many enzymes and proteins have free SH and disulfide groups within molecules. Function, stability, and in vivo fate of these macromolecules could be affected significantly by their redox state. Although cells and tissues have enzymic defense mechanisms against oxidative stress, the mechanism by which the homeostasis of the redox state of extracellular compartments (such as plasma, urine, bile, etc.) is maintained remains obscure. Plasma mercaptoalbumin (M-Alb) has 17 disulfide bonds and one free cysteinyl residue (Cys-34). This free thiol group can form mixed disulfides with low-molecular weight compounds, such as GSH and cysteine, to generate nonmercaptoalbumin (NM-Alb). Thus, when titrated by several different thiol reagents, less than 1 mole of free SH group (0.4–0.7) was usually detected per mole albumin. The ratio of M-Alb to NM-Alb in plasma samples varies significantly from one sample to another. Many plasma proteins in nonalbumin fractions also formed mixed disulfides with GSH and cysteine. The extent of mixed disulfide formation and the ratio of M-Alb to NM-Alb appeared to change markedly, depending on the redox state of the organisms. The present paper describes the mode of interorgan metabolism and transport of GSH and related compounds, the mechanism by which the redox state of albumin and other plasma proteins is controlled, and their biological significance in healthy and diseased conditions in normal and analbuminemic mutant rats.
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  • 3
    ISSN: 1573-2568
    Keywords: stellate cell ; myofibroblastic cells ; cAMP ; 3-isobutyl-1-methylxanthine ; α-smooth muscle actin
    Source: Springer Online Journal Archives 1860-2000
    Topics: Medicine
    Notes: Abstract Stellate cells isolated from rat liver and cultured on uncoated plastic plates in serumcontaining medium started proliferating and transforming to myofibroblastic cells. However, stellate cells did not proliferate when cultured in the presence of 3-isobutyl-1-methylxanthine or dibutyryl cAMP (dBcAMP). These substances significantly reduced [3H]thymidine incorporation of the proliferating cells. Morphologically, stellate cells cultured in the presence of 3-isobutyl-1-methylxanthine or dibutyryl cAMP kept well-developed processes and lipid droplets while untreated cells exhibited myofibroblastic characteristics. Western blot analysis and immunocytochemical studies revealed that 3-isobutyl-1-methylxanthine and dBcAMP suppressed the expression ofα-smooth muscle actin in stellate cells. 3-isobutyl-1-methylxanthine increased the cellular levels of cAMP from a basal value of 0.7 ± 0.1 to 8.5 ± 1.7 pmol/well in stellate cells. Thus, 3-isobutyl-1-methylxanthine and dBcAMP inhibit the myofibroblastic transformation of stellate cellsin vitro in some cAMP-related mechanism.
    Type of Medium: Electronic Resource
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