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Giardia duodenalis: a freeze-fracture, fracture-flip and cytochemistry study

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Abstract

The freeze-fracture technique was used to study the structural organization of the membranes of trophozoites of the protozoonGiardia duodenalis. No special array of intramembranous particles was observed in the membrane lining the protozoon body or the flagella. A large globular protuberance located in the ventral region displayed several small circular indentations similar to those seen in the dorsal region. These also occurred on the parasite surface as revealed in fracture-flip replicas. A large number of vesicles were observed below the plasma membrane; they corresponded to an acidic compartment as indicated by fluorescence microscopy of acridine orange-stained cells and contained acid phosphatase as indicated by cytochemistry. In addition, goldlabeled macromolecules (albumin, peroxidase, transferrin, and low-density lipoprotein) accumulated in the vesicles. These observations suggest that the peripheral vesicles of trophozoites are part of the endosomal-lysosomal system ofG. duodenalis.

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References

  • Aguas AP, Pinto da Silva P (1989) Bimodal redistribution of surface transmembrane glycoproteins during Ca2+-dependent secretion (acrosome reaction) in boar spermatozoa. J Cell Sci 93:467–579

    Google Scholar 

  • Anderson Forsman C, Pinto da Silva P (1988) Fracture-flip: new high resolution images of cell surfaces after carbon stabilization of freeze-fractured membranes. J Cell Sci 90:531–541

    Google Scholar 

  • Benchimol M, Elias CA, De Souza W (1982)Tritrichomonas foetus: fine structure of freeze-fractured membranes. J Protozool 29:348–353

    Google Scholar 

  • Besterman JM, Low LB (1983) Endocytosis: a review of mechanisms and plasma membrane dynamics. Biochem J 210:1–13

    Google Scholar 

  • Bockman A, Winborn WB (1968) Electron microscopic localization of exogenous ferritin within vacuoles ofGiardia muris. J Protozool 15:26–30

    Google Scholar 

  • Cheissin EM (1964) Ultrastructure ofLamblia duodenalis. J Protozool 11:91–98

    Google Scholar 

  • Crossley R, Holberton D (1985) Assembly of 2.5 mm filaments from giardin, a protein associated with cytoskeletal microtubules inGiardia. J Cell Sci 76:205–231

    Google Scholar 

  • De Souza W (1989) Components of the cell surface of trypanosomatids. Prog Protistol 3:87–184

    Google Scholar 

  • Feely DE, Dyer JK (1987) Localization of acid phosphatase activity inGiardia lamblia andGiardia muris trophozoites. J Protozool 34:80–83

    Google Scholar 

  • Friend DS (1966) The fine structure ofGiardia muris. J Cell Biol 29:317–331

    Google Scholar 

  • Gillon J (1984) Giardiasis: review of epidemiology, pathogenic mechanisms and host responses. Q J Med LIII:29–39

    Google Scholar 

  • Gilula NB, Satir P (1972) The ciliary necklace. A ciliary membrane specialization. J Cell Biol 53:494–509

    Google Scholar 

  • Greenberg J, Howel KE (1989) Membrane traffic in endocytosis: insight from cell-free assays. Annu Rev Cell Biol 5:453–481

    Google Scholar 

  • Holberton DV (1973) Fine structure of the ventral disk apparatus and the mechanism of attachment in the flagellateGiardia muris. J Cell Biol 13:11–41

    Google Scholar 

  • Hulstaert CE, Kalicharan D, Hardonk MJ (1983) Cytochemical demonstration of phosphatases in the rat liver by a ceriumbased method in combination with osmium tetroxide and potassium ferrocyanide post-fixation. Histochemistry 78:71–79

    Google Scholar 

  • Keister DB (1983) Axenic cultivation ofGiardia lamblia in TY1-S-33 medium supplemented with bile. Trans R Soc Trop Med Hyg 77:487–488

    Google Scholar 

  • Kornfeld S, Mellman I (1989) The biogenesis of lysosomes. Annu Rev Cell Biol 5:483–525

    Google Scholar 

  • Kulda J, Nonynkova E (1978) Giardia and giardiasis In: Kreier JP (ed) Parasitic protozoa, vol 2. Academic Press, New York, pp 69–138

    Google Scholar 

  • Meyer EA (1970) Isolation and axenic cultivation ofGiardia trophozoites from the rabbit, chinchilla and cat. Exp Parasitol 27:179–183

    Google Scholar 

  • Meyer EA (1976)Giardia lamblia: isolation and axenic cultivation. Exp Parasitol 39:101–105

    Google Scholar 

  • Owen RL, Nemanic PC, Steven DP (1979) Ultrastructural observations on giardiasis in a murine model: I. Intestinal distribution, attachment, and relationship to the immne system ofGiardia muris. Gastroenterology 76:757–769

    Google Scholar 

  • Pimenta PFP, De Souza W, Souto-Padrón T, Pinto da Silva P (1989a) The cell surface ofTrypanosoma cruzi: a fracture flip, replica-staining label fracture survey. Eur J Cell Biol 50:263–271

    Google Scholar 

  • Pimenta PFP, Silva RP, Sacks D, Pinto da Silva P (1989b) Cell surface nanoanatomy ofLeishmania major as revealed by fracture-flip. A surface meshwork of 44 nm fusiform filaments identifies infective developmental stage promastigotes. Eur J Cell Biol 48:180–190

    Google Scholar 

  • Pinto da Silva P (1987) Topology dynamics and molecular cytochemistry of integral membrane proteins: a freeze-fracture view. In: Harris N Jr, Horne RW (eds) Electron microscopy of proteins, vol 6. Academic Press, London, pp 2–138

    Google Scholar 

  • Pinto da Silva P, Branton D (1970) Membrane splitting in freezeetching. Covalently bound ferritin as a membrane marker. J Cell Biol 45:598–605

    Google Scholar 

  • Shapiro SZ, Webster P (1989) Coated vesicles from the protozoan parasiteTrypanosoma brucei: purification and characterization. J Protozool 36:344–345

    Google Scholar 

  • Slot JW, Geuze HJ (1981) Sizing of protein A-colloidal gold probes for immunoelectron microscony. J Cell Biol 90:533–536

    Google Scholar 

  • Soares MJ, De Souza W (1991) Endocytosis of gold-labeled proteins and LDL byTrypanosoma cruzi. Parasitol Res (in press)

  • Ward HD, Leu BI, Kane AV, Keuch GT, Pereira MEA (1987) Identification and characterization of taglin, a mannose-6-phosphate binding, trypsin-activated lectin fromGiardia lamblia. Biochemistry 26:8669–8675

    Google Scholar 

  • Ward HD, Alroy J, Leu BI, Keusch GT, Pereira MBA (1988) Biology ofGiardia lamblia. J Exp Med 167:73–88

    Google Scholar 

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Kattenbach, W.M., Pimenta, P.F.P., de Souza, W. et al. Giardia duodenalis: a freeze-fracture, fracture-flip and cytochemistry study. Parasitol Res 77, 651–658 (1991). https://doi.org/10.1007/BF00928678

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