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Biosynthesis of yeast mannan. Characterization of mannan-synthesizing enzyme systems from mutants defective in mannan structure.

The yeast Saccharomyces cerevisiae X2180-1A (wild) and its mutants X2180-1A-4 (mnn 1) and X2180-1A-5 (mnn 2) defective in mannan biosynthesis were used as enzyme sources to catalyze in vitro mannosyl transfer from GDP-[14C-U]-mannose to endogenous glycoproteins as well as to exogenous, low-molecular weight acceptors. While the enzyme preparation from the wild strain exhibited all mannosyl transferase activities involved in mannan biosynthesis by catalyzing the synthesis of characteristic mannoprotein, the enzyme from mnn 1 mutant failed to catalyze the synthesis of alpha(1 leads to 3) mannoside linkages both with endogenous as well as with exogenous acceptors. The enzyme preparation from the mnn 2 mutant catalyzed the formation of mannoprotein very similar to that obtained with the enzyme from the wild strain. The most important difference was the formation of a higher number of unsubstituted mannosyl units in the alpha(1 leads to 6) linked mannan backbone. The observed results support the hypothesis that in the mnn 1 the mutation has altered the structural gene involved in biosynthesis of an alpha(1 leads to 3) mannosyl transferase catalyzing the addition of alpha(1 leads to 3) linked mannosyl units to alpha(1 leads to 2) linked mannotrioses in the polysaccharide side chains and in the oligosaccharides attached to serine and/or threonine in the protein part of mannan molecule. The mnn 2 mutant represents most probably a kind of regulatory mutation where the activity of an alpha(1 leads to 2) mannosyl transferase adding the mannosyl units directly to alpha(1 leads to 6) linked backbone in the outer region of polysaccharide part of yeast mannan is repressed in vivo but becomes significant in vitro.

Electron Transport

Biosynthesis of yeast mannan. Isolation of Kluyveromyces lactis mannan mutants and a study of the incorporation of N-acetyl-D-glucosamine into the polysaccharide side chains.

One side chain in the cell wall mannan of the yeast Kluyveromyces lactis has the structure (see article). (Raschke, W. C., and Ballou, C. E. (1972) Biochemistry 11, 3807). This (Man)4GNAc unit (the N-acetyl-D-glucosamine derivative of mannotetroase) and the (Man)4 side chain, aMan(1 yields 3)aMan(1 yields 2)aMan(1 yields 2)Man, are the principle immunochemical determinants on the cell surface. Two classes of mutants were obtained which lack the N-acetyl-D-glucosamine-containing determinant. The mannan of one class, designated mmnl, lacks both the (Man)4GNAc and (Man)4 side chains. Apparently, it has a defective alpha-1 yields 3-mannosyltransferase and the (Man)4 unit must be formed to serve as the acceptor before the alpha-1 yields 2-N-acetyl-glucosamine transferase can act. The other mutant class, mnn2, lacks only the (Man)4GNAc determinant and must be defective in adding N-acetylglucosamine to the mannotetrasose side chains. Two members of this class were obtained, one which still showed a wild type N-acetylglucosamine transferase activity in cell-free extracts and the other lacking it. They are allelic or tightly linked, and were designated mnn2-1 mnn2-2. Protoplast particles from the wild type cells catalyzed a Mn2+-dependent transfer of N-acetylglucosamine from UDP-N-acetylglucosamine to the mannotetraose side chain of endogenous acceptors. Exogenous mannotetraose also served as an acceptor in a Mn2+-dependent reaction and yielded (Man)4GNAc. Related oligosaccharides with terminal alpha (1 yields 3)mannosyl units were also good acceptors. The product from the reaction with alphaMan(1 yields 3)Man had the N-acetylglucosamine attached to the mannose unit at the reducing end, which supports the conclusion that the cell-free glycosyltransferase activity is identical with that involved in mannan synthesis. The reaction was inhibited by uridine diphosphate. Protoplast particles from the mmnl mutants showed wild type N-acetylglucosamine transferase activity with exogenous acceptor, but they had no endogenous activity because the endogenous mannan lacked acceptor side chains. Particles from the mnn2-1 mutant failed to catalyze N-acetylglucosamine transfer. In contrast, particles from the mnn2-2 mutant were indistinguishable from wild type cells in their transferase activity. Some event accompanying cell breakage and assay of the mnn2-2 mutant allowed expression of a latent alpha-1 yields 2-N-acetylglucosamine transferase with kinetic properties similar to those of the wild type enzyme.

Acetylglucosamine

Structural and immunochemical studies on D-arabino-D-mannans and D-mannans of Mycobacterium tuberculosis and other Mycobacterium species.

Serologically active D-arabino-D-mannas ([alpha]D, +82 degrees approximately 89 degrees; ratio of D-arabinose to D-mannose, 1-2:1) were isolated from the soluble fraction of disintegrated cells of M. tuberculosis, M. smegmatis, and several other Mycobacterium species. These arabinomannans had similar structures, consisting of alpha-(1 leads to 5)-linked D-arabinose residues and alpha-(1 leads to 6)-, and (1 leads to 2)-linked D-mannose residues. Methylation and enzymic degradation studies using Arthrobacter sp. alpha-D-mannosidase and M-2 enzyme (D-arabinan hydrolase) indicated that the arabinomannan of M. tuberculosis Aoyama B possesses short side chains built up from alpha-(1 leads to 2)-D-mannosidic linkages which are attached to an alpha-(1 leads to 6)-linked mannan back-bone chain. The alpha-(1 leads to 5)-linked D-arabinose residues located in the side chains were shown, by comparison of the immunochemical activities of the native and enzyme-degraded polysaccharides, to be the main immunodeterminants, as in the cell-wall arabinogalactan. There appeared to be variations in the ratio of arabinose and mannose residues, and also in the proportion of (1 leads to 2)-linked D-mannose units, depending on the individual strain; no (1 leads to 2)-mannosidic linkage was found in M. smegmatis arabinomannan. In addition to arabinomannan, a serologically inactive alpha-D-mannan ([alpha)D, +65 degrees approximately 68 degrees), whose structure may resemble that of the core mannan of the arabinomannan, was isolated as a copper hydroxide complex from the soluble fraction of disintegrated mycobacterial cells.

Arabinose

Biosynthesis of yeast mannan. Diversity of mannosyltransferases in the mannan-synthesizing enzyme system from yeast.

1. A microsomal enzyme preparation from the yeast Saccharomyces cerevisiae catalyzes the transfer of mannosyl units from GDPmannose to mannose and a number of mannose-containing oligosaccharides and glycosides whereby different glycosidic bonds are formed. 2. Of the compounds tested besides mannose, only those containing an alpha-linked mannosyl unit at the nonreducing position of their molecule were effective as acceptors. Monodeoxyanalogues of mannose as well as alpha-mannose phosphates did not serve as acceptors in the above reaction. 3. The structure of the product formed with mannose as acceptor was determined to be O-alpha-D-mannosyl-(1 leads to 2)-mannose; with alphaMan (1 leads to 6)mannose as the acceptor, the product was alphaMan(1 leads to 6)mannose and with alphaMan-(1 leads to 2)mannose the product was tentatively characterized as a mixture of alphaMan-(1 leads to 3)alphaMan(1 leads to 2)mannose and alphaMan(1 leads to 2)alphaMan(1 leads to 2)mannose. 4. The enzymes catalyzing the formation of different types of glycosidic bonds differed in their acceptor specificity, pH-activity curves and rates of heat denaturation. 5. Radioactive disaccharides were unable to enter the mannan protein molecule in the cell-free system while free radioactive mannose did incorporate into polysaccharide to a minor extent under the same conditions.

Enzyme Activation

The synthesis of antigenic determinants for yeast D-mannans and a linear (1to 6)-alpha-D-gluco-D-mannan, and their protein conjugates.

2-O-Benzoyl-3,4,6-tri-O-benzyl-1-O-tosyl-D-mannopyranose and 2,3,4-tri-O-benzyl-6-O-(N-phenylcarbamoyl)-1-O-tosyl-D-glucopyranose were allowed to react with partially blocked 2-[4-(ptoluensulfonamido)phenyl]ethyl alpha-D-manno- and gluco-pyranosides. Disaccharides having alpha-D-Manp-(1 to 2)-alpha-D-Manp, alpha-D-Manp-(1 to 6)-alpha-D-Glcp, alpha-D-Manp-(1 to 6)-alpha-D-Manp, and alpha-D-Glcp-(1 to 6)-alpha-D-Manp structures, and a branched trisaccharide having the structure alpha-D-Manp-(1 to 2)-[alpha-D-Manp-(1 to 6)]-alpha-D-Manp were synthesized. The oligosaccharid:s were deblocked with sodium in liquid ammonia to give glycopyranosides having a free primary aromatic amine which were converted into isothiocyanate derivatives with thio-phosgene. The functionalized oligosaccharides were then coupled to bovine serum albumin to give protein conjugates.

Chemical Phenomena

Comparative serological and cutaneous reactivity of candidal cytoplasmic proteins and mannan separated by affinity for concanavalin A.

Yeast-form Candida albicans cells were disrupted for 1.5 min in a Braun homogenizer and centrifuged at 100,000 X g. The supernatant was concentrated by ammonium sulfate precipitation and then dialyzed. The resulting material (650 mg), containing 81.2% protein and 11.5% carbohydrate, was subjected to affinity chromatography on concanavalin A (Con A) linked to agarose. A protein fraction was eluted from the column with buffer, and a fraction containing mannan was eluted with 0.2 M alpha-methyl mannoside. The candidal soluble proteins had 19 components which were resolvable by polyacrylamide gel electrophoresis. The material with affinity for Con A contained mannan and 17% complexed protein. Antigenic differences between the soluble proteins and the mannan-protein complex were shown by lines of intersection in immunodiffusion. The soluble proteins devoid of mannan reacted in immunoelectrophoresis with sera from infected rabbits and patients with chronic candidiasis. These same sera also reacted with a mannan-protein complex eluted from the Con A column with alpha-methyl mannoside. The comparative ability of candidal proteins and cell wall-derived mannan to elicit skin test reactions in guinea pigs sensitized by infection or with formaldehyde-killed yeast was studied. Candidal proteins at a 10-mug dose elicited positive reactions at 6 and 21 days after sensitization. The reactions persisted for 48 h and showed minimal tendency to an arthus response, which was marked when mannan-containing antigens were used. The antigenicity of cell wall-derived mannans and candidal soluble proteins devoid of mannan was compared in immunodiffusion tests of sera from 39 patients with neoplastic disease. Of these patients with documented candidiasis, 13 of 20 reacted to one or more mannan antigens, and 3 of 20 reacted to candidal soluble proteins. In contrast, of those patients who were uninfected or had superficial Candida spp. infections, 5 of 19 reacted to candidal soluble proteins, and 16 of 19 reacted to one or more mannan antigens.

Animals

Role of specific determinants in mannan of Candida albicans serotype A in adherence to human buccal epithelial cells.

Candida albicans serotype A (C. albicans A) possesses a specific antigen, designated antigen 6, which resides in mannans on the cell surface. To determine the role of the mannan moiety of the C. albicans cell wall in adherence to buccal epithelial cells, we used antigen 6-deficient mutants which had been isolated by screening with an agglutinating monoclonal antibody against antigen 6 (MAb-6). 1H nuclear magnetic resonance spectral analysis of the purified mannans from the mutants showed a loss of the signals related to that beta-linkage of the side chains. Moreover, acetolyzed fragments of the mutant mannans showed a decreased amount of mannohexaose and mannopentaose. The mutant yeast cells exhibited significantly reduced ability to adhere both to exfoliated buccal epithelial cells and to a human buccal cell line. A number of strains of C. albicans A, C. tropicalis, and C. glabrata, all of which bear antigen 6, showed significantly higher adherence to the cell line than did those of C. albicans serotype B, which lack antigen 6. The whole mannan from the C. albicans A parent inhibited the adherence of C. albicans A to epithelial cells dose dependently, whereas mannan from a mutant strains did not. Moreover, C. albicans A treated with MAb-6 or polyclonal factor 6 serum showed reduced adherence. A close correlation was found between adhesive ability and agglutinability with MAb-6 in the C. albicans A parent, the antigenic mutants, and their spontaneous revertants. These results suggest that so far as mannan adhesion is concerned, serotype A-specific determinants are largely involved in the mechanisms of adherence of C. albicans A to human buccal epithelial cells.

Adhesiveness

Mannan antigenemia in the diagnosis of invasive Candida infections.

Because it is often difficult to diagnose invasive Candida infections, a sensitive hemagglutination inhibition assay to detect the surface antigen, mannan, was developed. Mannan antigenemia was detected early in the course of infection in 4 of 14 patients with systemic candidiasis and 2 of 5 patients with invasive gastrointestinal candidiasis. Mannan was not detected in 48 patients with noninvasive Candida or other systemic mycotic infections or in 99% of 234 patients in other control groups. Mannan antibodies were almost universally present in both candidiasis and control groups. In four patients with systemic candidiasis, an early period of mannan antigenemia was followed by a rapid rise in mannan antibody titer. These findings suggest that antemortem diagnosis would be improved in one-third of cases of invasive Candida infection detected by the hemagglutination inhibition assay. A positive test for serum mannan would be an early and specific signal of invasive disease.

Adolescent

The characterization of mannan of Micrococcus lysodeikticus as an acidic lipopolysaccharide.

Ghosts of Micrococcus lysodeikticus contain a mannan that is not removed by intensive washing procedures. Purified mannan, isolated by extraction of whole cells with hot, aqueous phenol, binds to membranes in vitro. Mannan also binds to DEAE-cellulose and migrates toward the anode in neutral and sodium dodecyl sulfate disc gel electrophoresis. In aqueous solution mannan has an apparent molecular weight of 10-6, but in the presence of sodium dodecyl sulfate its apparent molecular weight is 50,000 to 100,000; removal of the detergent results in reaggregation. Purified mannan contains mannose, succinate, fatty acid, and glycerol in a ratio of 50:4.9:2.1:1.0. Treatment of mannan with mild base produces a neutral, hydrophilic polysaccharide of relatively low molecular weight that has no affinity for membranes. At least 90% of the reducing termini are blocked in a base-stable linkage. Based on these results a tentative structure is proposed for the mannan.

Binding Sites

Localization of mannan at the surface of yeast protoplasts by scanning electron microscopy.

The beta(1-3)glucanase of Basidiomycete QM 806 was used to prepare Saccharomyces cerevisiae and Candida utilis protoplasts. Plasma membranes isolated from S. cerevisiae contained a small amount of mannose and traces of glucose and ribose. Randomly distributed alpha-mannan was detected by scanning electron microscopy at the surface of prefixed protoplasts using colloidal gold labelled with Concanavalin A as a marker. C. utilis protoplasts were also marked with anti-mannan antibodies. Again the distribution of mannan was random. This experiment indicated also that plasma membrane mannan has the same immunochemical determinants as cell wall mannan. It is hypothesized that mannan is mainly located in the outer layer of plasma membranes.

Candida

Structural study of a cell wall mannan-protein complex of the pathogenic yeast Candida glabrata IFO 0622 strain.

We conducted a structural analysis of the cell wall mannan-protein complex (mannan) isolated from a pathogenic yeast, Candida glabrata IFO 0622 strain. The chemical structure of mannobiose released from this mannan by treatment with 10 mM HCl at 100 degrees C for 1 h was identified as Manp beta 1-2Man. The treatment of this mannan with 100 mM NaOH at 25 degrees C for 18 h gave a mixture of alpha-1,2- and alpha-1,3-linked oligosaccharides, from tetraose to biose, and mannose. The acid- and alkali-stable mannan moiety was subjected to mild acetolysis with a 100:100:1 (v/v) mixture of (CH3CO)2O, CH3COOH, and H2SO4 at 40 degrees C for 36 h. The resultant three novel oligosaccharides, tetraose, hexaose, and heptaose, were identified as Manp beta 1-2Manp alpha 1-2Manp alpha 1-2Man, Manp alpha 1-2Manp alpha 1-2Manp alpha 1-6Manp alpha 1-2Manp alpha 1-2Man, and Manp alpha 1-3Manp alpha 1-2Manp alpha 1-2Manp alpha 1-6Manp alpha 1- 2Manp alpha 1-2Man, respectively, in addition to the three known oligosaccharides, Manp alpha 1-2Man, Manp alpha 1-2Manp alpha 1-2Man, and Manp alpha 1-3Manp alpha 1-2Manp alpha 1-2Man. A sequential analytical procedure involving partial acid hydrolysis with hot 0.3 M H2SO4, methylation, fast atom bombardment mass, and 1H NMR analyses was quite effective in the structural determination of the novel oligosaccharides. The results indicate that this mannan possesses a structure closely resembling that of Saccharomyces cerevisiae X2180-1A wild type strain, with the presence of small amounts of oligomannosyl residue, Manp beta 1-2Manp alpha 1-X, corresponding to one of the epitopes dominating serotype-A specificity of Candida spp., in addition to branches corresponding to hexaose and heptaose each containing one intermediary alpha-1,6 linkage.

Candida

Distribution of enzymes involved in mannan synthesis in plasma membranes and mesosomal vesicles of Micrococcus lysodeikticus.

The distribution of membrane-bound enzymes involved in mannan biosynthesis in plasma and mesosomal membranes of Micrococcus lysodeikticus has been investigated. Isolated mesosomal vesicles, unlike plasma membrane preparations, cannot catalyze the transfer of [14C]mannose from GDP-[14C]mannose into mannan. This appears to result from the inability of this membrane system to synthesize the carrier lipid [14C]mannosyl-1-phosphorylundecaprenol. In contrast, this is the major mannolipid synthesized from GDP-[14C]mannose by isolated plasma membranes. The possibility that substrate inaccessibility could account for the failure to detect the enzyme in isolated mesosomal vesicles appears unlikely from the lack of activity following disruption of the vesicles with ultrasound or with surface active agents. Both membrane preparations possessed the ability to catalyse the transfer of [14C]mannose from purified [14C]mannosyl-1-phosphorylundecaprenol into mannan. Furthermore, free mannan and mannan located on both unlabeled mesosomal and unlabeled plasma membranes could act as acceptors of [14C]mannosyl units from 14C-labeled carrier lipid located in prelabeled plasma membranes. The possibility that the juxtaposition of mesosomal vesicles and enveloping plasma membrane (i.e. the mesosomal sacculus) in vivo allows mannan, located on mesosomal vesicles, to accept mannosyl units from carrier lipid located in the sacculus membrane is discussed.

Cell Membrane

Wall mannan of Saccharomyces cerevisiae. Metabolic stability and release into growth medium.

Selective labelling of cell wall mannan with radioactive precursors in growing Saccharomyces cerevisiae showed that this polysaccharide is metabolically stable during exponential growth. Mannan once inserted into the wall is not subject to turnover or release into the growth medium. However, about 10% of the amount of mannan incorporated into the cell wall fraction can be recovered in the non-dialyzable material isolated from the growth medium. Therefore, the mannan escaping from the cell must be either a mannan de novo synthesized, not trapped in the growing wall structure, or a mannan with a non-structural role. Radioactivity was also retained in the wall fraction of cells pre-labelled with [14C] glucose which pointed to metabolic stability of all cell wall polysaccharides in growing S. cerevisiae.

Cell Wall

Location of mannan and chitin on thin sections of budding yeasts with gold markers.

Mannan was located on thin sections of Saccharomyces cerevisiae and Candida utilis with the homologous anti-mannan antibodies or with Concanavalin A, both labelled with gold granules. Fully synthesized mannan was found in the cell walls, on the plasmalemma and within the cytoplasm sometimes associated with vesicles and vacuoles. Chitin or its oligomers were located with wheat germ agglutinin in the bud scars but also in the cell wall and the cytoplasm near the plasmalemma. Both mannan and chitin or its oligomers were found in the forming septum and are synthesized within the cytoplasm. The gold method was also suitable for marking mannan and chitin simultaneously.

Candida

A comparison of specific IgG antibody levels to the cell wall mannan of Candida albicans in normal individuals and in patients with primary antibody deficiency.

An enzyme-linked immunosorbent assay (ELISA) has been developed to measure specific IgG antibody to the polysaccharide, cell wall mannan of Candida albicans (mannan). The results were expressed as arbitrary units/ml, with an inter- and intra-assay coefficient of variation of 7-11%. In establishing normal ranges we found that specific IgG to the mannan increased with age, with 18% of healthy children aged 3-10, 48% of healthy children aged 11-19 and 76% of an adult donor population having specific IgG antibody to mannan (greater than 30 U/ml). We have compared these normal ranges, with a group of patients with primary antibody deficiency (PAD). None of the 23 patients with PAD, which included common variable immunodeficiency, IgG subclass deficiency, and selective IgA deficiency, had titres greater than 30 U/ml. The patients with PAD had significantly lower levels of specific IgG anti-mannan antibody (median 9 U/ml) compared to healthy children aged 11-19 (median 26 U/ml) or adults (median 58 U/ml) (p = less than 0.001) but not children aged 3-10, (median 1 U/ml) (p = 0.08).

Adolescent

Binding of Trichophyton rubrum mannan to human monocytes in vitro.

We recently reported that the mannan component of Trichophyton rubrum cell wall (TRM) has an inhibitory influence on cell-mediated immune function in vitro. We now describe experiments designed to identify the target cell for this effect of TRM. T. rubrum mannan labeled with fluorescein (FITC-TRM) was incubated with peripheral blood mononuclear leukocytes, monocytes, or lymphocytes. Binding and uptake of the FITC-TRM were monitored by fluorescence microscopy and flow cytometry. Approximately 10% of mononuclear leukocytes were stained with this reagent and the fluorescent cells appeared to be monocytes by morphology. Virtually all purified monocytes and no purified lymphocytes stained with FITC-TRM. Flow cytometry to analyze FITC-TRM monocyte-specific binding of FITC-TRM involved the use of a phycoerythrin-labeled anti-CD14 antibody to identify monocytes. The only cells stained with FITC-TRM were those stained with the monocyte-specific antibody. The ability of monocytes to endocytose mannan was assessed by fluorescence microscopy. Cells were exposed to FITC-TRM and washed, and the staining pattern recorded periodically over a 48-h incubation period. After 15 min, staining was homogeneous and involved the entire cell surface; by 30 min, "patching" was observed; by 90 min, bright granules had formed along the cell border and a large number of small granules were present in the cytoplasm; by 8-12 h, the fluorescent granules were enlarged in size and reduced in number; by 24-36 h, the intensity of cytoplasmic fluorescence began to diminish; and, after 48 h, all fluorescent staining had disappeared. An additional feature of staining during the 8-12-h period was the appearance of a large round bright spot in the nuclear region of each cell, which may represent nucleolar staining. A role for "mannan receptors" is suggested by observations that FITC-TRM binding was prevented by unlabeled TRM or pretreatment of the monocytes with trypsin. Our finding that monocytes selectively and specifically bind TRM appears to identify the monocyte rather than the lymphocyte as the target cell for the inhibitory effect of mannan on cell-mediated immune function.

Adult

Structural identification of an epitope of antigenic factor 5 in mannans of Candida albicans NIH B-792 (serotype B) and J-1012 (serotype A) as beta-1,2-linked oligomannosyl residues.

In previous articles, we reported the presence of phosphate-bound beta-1,2-linked oligomannosyl residues in the mannans of strains of Candida albicans serotypes A and B and Candida stellatoidea. To identify the antigenic factor corresponding to this type of oligomannosyl residue, a relationship between chemical structure and antigenic specificity in the mannans of C. albicans NIH B-792 (serotype B, B-strain) and C. albicans J-1012 (serotype A, J-strain) was investigated by using a combination of two-dimensional 1H nuclear magnetic resonance spectroscopy of H-1, H-2, and H-5 regions in the mannans and an enzyme-linked immunosorbent assay that employed concanavalin A-coated microtiter plates. It was shown in the present 1H nuclear magnetic resonance study that an examination of chemical shifts not only in the H-1 region but also in the H-5 region was useful for the quantitative determination of the phosphate-bound beta-1,2-linked oligomannosyl residues. In the enzyme-linked immunosorbent assay using concanavalin A-coated plates, it was revealed that, of factor sera 1, 4, and 5, only factor serum 5 showed a reactivity proportional to the densities of the beta-1,2-linked oligomannosyl residues of the mannan subfractions of different phosphate contents that had been prepared from the bulk B-strain mannan by DEAE-Sephadex chromatography. The above results indicate that the phosphate-bound beta-1,2-linked oligomannosyl residues, Manp beta 1----(2Manp beta 1----)n2Man (n = 0-5), correspond to antigenic factor 5.

Antigens, Fungal

Mannan-coated liposome delivery of gadolinium-diethylenetriaminepentaacetic acid, a contrast agent for use in magnetic resonance imaging.

Gadolinium-diethylenetriaminepentaacetic acid (Gd-DTPA), a paramagnetic contrast agent for use in magnetic resonance imaging (MRI) was bound to stearylamine and incorporated into the liposomal membranes (Gd-DTPA liposomes). In addition, the Gd-DTPA liposomes were coated with mannan (cholesterol-aminoethylcarbamylmethyl mannan), a polysaccharide, to obtain the mannan-coated liposomes. An in vitro MRI study showed that the Gd-DTPA liposomes produced a greater intensity of contrast than did the Gd-DTPA solution with a reduced T1 relaxation time. Intravenous injection of the Gd-DTPA liposomes containing 153Gd or liposomes containing 153Gd or 14C-DTPA to mice showed an accumulation of Gd-DTPA primarily in the liver and lung. When the mannan-coated liposomes were administered, an increased uptake of Gd-DTPA by these tissues was demonstrated. The mannan-coated liposomes may enhance contrast of the liver in MRI at a lower dose of Gd-DTPA.

Animals