Literature DB >> 16172396

Monomeric inducible nitric oxide synthase localizes to peroxisomes in hepatocytes.

P A Loughran1, D B Stolz, Y Vodovotz, S C Watkins, R L Simmons, T R Billiar.   

Abstract

Hepatocytes are capable of repeated inducible NO synthase (iNOS) expression, which occurs under inflammatory and stress conditions. This iNOS expression regulates a number of cellular functions as well as cell viability. To better understand the posttranslational mechanisms that regulate the fate of iNOS in these cells, we characterized the iNOS distributed within peroxisomes. The selective permeabilization of membranes (plasma vs. peroxisomal) confirmed that there are cytosolic and peroxisomal pools of iNOS in cytokine-stimulated hepatocytes and that the iNOS protein associates with peroxisome. Detergent solubilization of the membrane fraction released iNOS to the soluble fraction. iNOS localized to membrane fraction is predominantly monomeric, but dimerization is partially reconstituted rapidly upon incubation with tetrahydrobiopterin. The reconstituted iNOS exhibits a lower specific activity than iNOS isolated from the soluble pool. Depletion of intracellular tetrahydrobiopterin with an inhibitor of de novo pterin synthesis resulted in a predominance of monomeric iNOS without a greater relative distribution of iNOS to the peroxisomal pool. Thus, iNOS exists in a least two pools in hepatocytes: a soluble pool composed of both active dimer and monomer and a peroxisomal pool of monomeric iNOS. iNOS might localize to peroxisomes in long-lived cells such as hepatocytes as a protective mechanism to remove incompetent enzyme.

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Year:  2005        PMID: 16172396      PMCID: PMC1216830          DOI: 10.1073/pnas.0503926102

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  32 in total

1.  Direct interaction of endothelial nitric-oxide synthase and caveolin-1 inhibits synthase activity.

Authors:  H Ju; R Zou; V J Venema; R C Venema
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Authors:  D K Ghosh; C Wu; E Pitters; M Moloney; E R Werner; B Mayer; D J Stuehr
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Authors:  J E Brenman; D S Chao; H Xia; K Aldape; D S Bredt
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Authors:  Y Vodovotz; N S Kwon; M Pospischil; J Manning; J Paik; C Nathan
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7.  Competition for tetrahydrobiopterin between phenylalanine hydroxylase and nitric oxide synthase in rat liver.

Authors:  C M Pastor; D Williams; T Yoneyama; K Hatakeyama; S Singleton; E Naylor; T R Billiar
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8.  Vesicle membrane association of nitric oxide synthase in primary mouse macrophages.

Authors:  Y Vodovotz; D Russell; Q W Xie; C Bogdan; C Nathan
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9.  Characterization of the signal peptide at the amino terminus of the rat peroxisomal 3-ketoacyl-CoA thiolase precursor.

Authors:  T Tsukamoto; S Hata; S Yokota; S Miura; Y Fujiki; M Hijikata; S Miyazawa; T Hashimoto; T Osumi
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10.  An oligomeric protein is imported into peroxisomes in vivo.

Authors:  J A McNew; J M Goodman
Journal:  J Cell Biol       Date:  1994-12       Impact factor: 10.539

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