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Reduced hepatic iron uptake from rat aglycotransferrin

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Summary

Rat aglycotransferrin (rAgTf) was produced from the disialosyl diantennary fraction of rat transferrin (rTf) by treatment with peptide:N-glycosidase F. Following removal of the enzyme by gel filtration and isolation of the deglycosylated protein by lectin chromatography, rAgTf was compared to rTf both in vitro and in vivo. No significant differences were found between the two proteins with respect to affinity for iron and kinetics of Fe release from the N-lobe and C-lobe. The fluorescence emission spectrum of apo-rTf was red-shfited by approximately 3 nm relative to diferric rTf; however, no spectral difference was detected between rTf and rAgTf when the analogous forms (apo or diferric) were compared. Plasma clearance of radioactive iron administered to rats as either rTf or rAgTf was comparable. Reticulocytes took up iron from rAgTf slightly faster than from rTf. In contrast, Fe acquisition by the liver from rAgTf was significantly reduced relative to rTf. This finding contrasts sharply with earlier observations with asialotransferrin (rAgTf) and provides a basis for discounting charge loss as the mechanism of enhanced hepatic Fe uptake from rAgTf. It is suggested that the glycan complement of rTf, while unimportant for interaction of the protein with specific receptors, probably plays a role in the interaction with low-affinity hepatic binding sites.

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References

  • Aisen P, Leibman A (1968) Citrate-mediated exchange of Fe3+ among transferrin molecules. Biochem Biophys Res Commun 32:220–226

    PubMed  Google Scholar 

  • Ashwell G, Harford J (1982) Carbohydrate-specific receptors of the liver. Annu Rev Biochem 51:531–554

    PubMed  Google Scholar 

  • Bailey S, Evans RW, Garrett RC, Gorinsky B, Hasnain S, Horsburgh C, Jhoti H, Lindley PF, Mydin A, Sarra R, Watson JL (1988) Molecular structure of serum transferrin at 3.3-Å resolution. Biochemistry 27:5804–5812

    PubMed  Google Scholar 

  • Charlwood PA (1973) Comparison of the sedimentation and gelfiltration behaviour of human apotransferrin and its copper and iron complexes. Biochem J 133:749–754

    PubMed  Google Scholar 

  • Cole ES, Glass J (1983) Transferrin binding and iron uptake in mouse hepatocytes. Biochim Biophys Acta 762:102–110

    PubMed  Google Scholar 

  • Dacie JV, Lewis SM (1975) Practical haematology, 5th edn, Churchill Livingston, Edinburgh

    Google Scholar 

  • Evans RW, Williams J (1978) Studies of the binding of different iron donors to human serum transferrin and isolation of ironbinding fragments from the N- and C-terminal regions of the protein. Biochem J 173:543–552

    PubMed  Google Scholar 

  • Hemmaplardh D, Morgan EH (1976) Transferrin uptake and release by reticulocytes treated with proteolytic enzymes and neuraminidase. Biochim Biophys Acta 426:385–398

    PubMed  Google Scholar 

  • Iacopetta BJ, Yeoh GCT, Morgan EH (1981) Transferrin receptors and iron uptake during erythroid cell development. Biochim Biophys Acta 687:204–210

    Google Scholar 

  • Kornfeld S (1968) The effects of structural modifications on the biological activity of human transferrin. Biochemistry 7:945–954

    PubMed  Google Scholar 

  • Lakowicz JR (1983) Principles of fluorescence spectroscopy. Plenum Press, New York

    Google Scholar 

  • Morgan EH, Baker E (1988) Role of transferrin receptors and endocytosis in iron uptake by hepatic and erythroid cells. Ann NY Acad Sci 526:65–82

    PubMed  Google Scholar 

  • Morgan EH, Huebers H, Finch CA (1978) Differences between the binding sites for iron binding and release in human and rat transferrin. Blood 52:1219–1228

    PubMed  Google Scholar 

  • Page MA, Baker E, Morgan EH (1984) Transferrin and iron uptake by rat hepatocytes in culture. Am J Physiol 246:G26-G33

    PubMed  Google Scholar 

  • Regoeczi E (1983) Iodogen-catalyzed iodination of transferrin. Int J Peptide Protein Res 22:422–433

    Google Scholar 

  • Regoeczi E, Chindemi PA, Debanne MT (1984) Transferrin glycans: a possible link between alcoholism and hepatic siderosis. Alcohol Clin Exp Res 8:287–292

    PubMed  Google Scholar 

  • Regoeczi E, Chindemi PA, Rudolph JR, Spik G, Montreuil J (1987) The chromatographic heterogeneity of rat transferrin on immobilized concanavalin A and lentil lectin. Biochem Cell Biol 65:948–954

    PubMed  Google Scholar 

  • Regoeczi E, Bolyos M, Chindemi PA (1989) Rat aglycotransferrin and human monoglycotransferrin: production and metabolic properties. Arch Biochem Biophys 268:637–642

    PubMed  Google Scholar 

  • Rudolph JR, Regoeczi E, Chindemi PA, Debanne MT (1986) Preferential hepatic uptake of iron from rat asialotransferrin: possible engagement of two receptors. Am J Physiol 251:G398-G404

    PubMed  Google Scholar 

  • Schreiber G, Dryburgh H, Millership A, Matsuda Y, Inglis A, Phillips J, Edwards K, Maggs J (1979) The synthesis and secretion of rat transferrin. J Biol Chem 254:12013–12019

    PubMed  Google Scholar 

  • Sibille JC, Octave JN, Schneider YJ, Trouet A, Crichton RR (1982) Transferrin protein and iron uptake by cultured hepatocytes. FEBS Lett 150:365–369

    PubMed  Google Scholar 

  • Spik G, Coddeville B, Montreuil J (1988) Comparative study of the primary structures of sero-, lacto- and ovotransferrin glycans from different species. Biochimie 70:1459–1469

    PubMed  Google Scholar 

  • Tarentino AL, Gomez CM, Plummer TH Jr (1985) Deglycosylation of asparagine-linked glycans by peptide:N-glycosidase F. Biochemistry 24:4656–4661

    Google Scholar 

  • West MC (1986) Current ideas on the significance of protein glycosylation. Mol Cell Biochem 72:3–20

    PubMed  Google Scholar 

  • Young SP, Aisen P (1981) Transferrin receptors and the uptake and release of iron by isolated hepatocytes. Hepatology 1:114–119

    PubMed  Google Scholar 

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Hu, WL., Chindemi, P.A. & Regoeczi, E. Reduced hepatic iron uptake from rat aglycotransferrin. Biol Metals 4, 90–94 (1991). https://doi.org/10.1007/BF01135384

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