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Ganglioside-modulated protein phosphorylation in myelin.

Gangliosides have profound effects on the phosphorylation of several proteins in myelin. Addition of polysialogangliosides to purified guinea pig brain myelin enhanced the endogenous phosphorylation of a 62-kDa phosphoprotein, but completely inhibited the phosphorylation of myelin basic protein (MBP) (18.5 kDa). The ganglioside-stimulated phosphorylation of the 62-kDa protein was dose-dependent and -specific. Asialo-GM1, ceramide trihexosides, N-acetylneuraminic acid, or colominic acid alone could not mimic this effect, suggesting that the activation process requires both the hydrophobic head group and the anionic character of the gangliosides. Studies on the time course of this reaction revealed that it was a rapid and reversible process and was affected only very slightly by Ca2+. Thus, the stimulatory effect of gangliosides may not involve Ca2+-gangliosides complexes or proteolysis, but may be mediated through an activation of a ganglioside-dependent protein kinase or due to substrate protein-glycolipid interaction. Modulation of the phosphorylation of MBP by gangliosides varies with the states of phosphorylation of this protein. Prior addition of ganglioside to myelin inhibited the phosphorylation of MBP. However, addition of gangliosides to myelin subsequent to maximal phosphorylation of MBP retarded the dephosphorylation of this protein. Phosphorylation of isolated MBP by protein kinase C was stimulated by gangliosides, provided phosphatidylserine was present. In contrast, the glycolipid inhibited the phosphorylation of a unique site catalyzed by cAMP-dependent protein kinase. This site was distinct from those phosphorylated by protein kinase C and was also sensitive to chymotryptic cleavage. Although the exact physiological significance of protein phosphorylation in myelin has yet to be established, gangliosides may play an important role in the modulation of this reversible post-translational modification mechanism.

Animals↗

Aberrant expression of ganglioside and asialoglycosphingolipid antigens in adult T-cell leukemia cells.

Gangliosides (GM3, GD3, GM2, gangliotetraose-series gangliosides) and their asialo derivatives of several adult T-cell leukemia (ATL) cell lines (ATL-1K, ATL-3I, ATL-5S, and MT-2 cells) and the lymphocytes from a patient with ATL were quantified by highly sensitive enzyme-immunostaining on silica gel thin layer chromatograms using specific antiglycolipid antibodies. GM2 and GD3 gangliosides and asialo GM1 (GA1) newly appeared in all cultured ATL cells and the lymphocytes from patients with ATL but not in normal human T-lymphocyte-rich fraction. Gangliotetraose-series gangliosides, GM1a, GD1a and GD1b, were also found in cultured ATL cells, but were not detected in normal human lymphocytes or the lymphocytes of a patient with ATL. Quantitative immunostaining analysis of GM2, GD3 gangliosides and GA1 in T-cell lines from non ATL leukemia (Molt-3, CEM and Jurkat) revealed GM2 gangliosides in all the T-cells from non ATL tested and GA1 in Jurkat cells, but no GD3 ganglioside was found in the non ATL leukemia cells tested. The above results indicate that ganglioside GD3 may be a T-cell glycosphingolipid antigen associated with ATL, and ganglioside GM2 and GA1 may be useful as surface markers related with ATL, as well as T-cell lymphoma. The contents of GA1, GM3, GD3, GM2 and gangliotetraose-series gangliosides in ATL cells were all different, even though all the cells used have a common antigen reactive with monoclonal OKT-4 antibody, indicating that there are several subsets of human inducer/helper T-cells, which possess different metabolism and expression of gangliosides.

Antigens, Neoplasm↗

Effect of neonatal undernutrition on rat brain gangliosides.

Effects of age and neonatal undernutrition were studied on total and fractions of gangliosides (GT1, GD1b, GD1a and GM1) in rat brain. GT1, GD1b + GD1a and GM1 are being presented here as polysialo-, disialo-, and monosialo-gangliosides. Undernutrition was induced by feeding mothers a low protein diet during lactation. The concentration of gangliosides increased to its maximum level by the age of 3 weeks and then decreased to its adult value by the age of 8 weeks. Polysialo gangliosides (GT1) comprised the maximum amount of gangliosides at birth (40%) and decreased to an adult value by 3 weeks of age. Disialo ganglioside GD1b increased to its maximum by 2 weeks and then leveled off. Disialo ganglioside GD1a and GM1 showed a decrease by 2 weeks and then reached to its adult value by 4 weeks. Neonatal undernutrition results in a decreased body and brain weight at all ages studied (7, 14 and 21 days) as well as total ganglioside concentration by 36%, 15% and 55% respectively at 7, 14 and 21 days. Polysialo gangliosides (GT1) constitute the major fraction of gangliosides at 21 days in undernourished rats as compared to controls, whereas mono- and di-sialo gangliosides remained decreased at all three ages compared to controls. This indicates the possibility of an underlying metabolic defect in undernourished animals.

Animals↗

Loss of choleragen receptors and ganglioside upon differentiation of 3T3-L1 preadipocytes.

3T3-L1 preadipocytes differentiate in culture into cells having the enzymatic and morphological characteristics of adipocytes. Differentiation is accompanied by a decrease in total cellular ganglioside content; the ganglioside level is 1.8 to 2.5-fold higher in undifferentiated than in differentiated cells. Gangliosides GM3 and GD1a constitute a majority of total cell gangliosides in both cell types, while ganglioside GM1, the putative choleragen receptor, constitutes less than 5%. Differentiation results in a 75 to 85% decrease in ganglioside GM1. An inverse correlation exists between the percentage of adipocytes in the cell population and: 1) total ganglioside and ganglioside GM1 content, and 2) surface ganglioside GM1 as estimated by choleragen binding or fluorescent staining of bound choleragen. Nondifferentiating 3T3-C2 control cells do not exhibit changes in total ganglioside, ganglioside GM1, or choleragen binding that are observed with 3T3-L1 cells.

Adipose Tissue↗

Inhibition of LPS-mediated cell activation in vitro and in vivo by gangliosides.

Addition of purified GM1 gangliosides inhibited lipopolysaccharide (LPS)-stimulated proliferation of purified B cells by greater than 90%. Addition of gangliosides to B cells as late as 120 min after the addition of LPS still inhibited B-cell proliferation, suggesting that inhibition did not simply reflect direct binding of LPS to gangliosides. Gangliosides also inhibited proliferation of B cells stimulated by anti-Ig antibodies, albeit to a lesser degree than inhibition of the LPS-stimulated response. The finding that B-cell proliferation stimulated by the combination of PMA+ionomycin was also inhibited by gangliosides suggests that its inhibitory activity did not reflect interference with binding of the B-cell stimuli to membrane receptors. The inhibitory effect of gangliosides was not restricted to B cells, since LPS-induced TNF production by macrophages was also inhibited in vitro. The inhibitory activity of gangliosides was also seen in vivo, and mice injected with soluble gangliosides or implanted with slow-release pellets impregnated with gangliosides showed reduced TNF production in vivo in response to LPS. Mice that were implanted with these slow-release pellets were also protected from LPS-induced lethality. Thus, while only 10% of control mice survived injection with LPS+galactosamine, the experimental group showed a 64% survival. It is likely that this protective effect reflects the ability of gangliosides to suppress LPS-mediated TNF production. This model provides a basis for studying a regulatory role for gangliosides in B-cell activation in vitro and macrophage activation in vitro and in vivo. Furthermore, it suggests new approaches to suppress the toxic effects induced by LPS in vivo.

Animals↗

Circulating tumor gangliosides enhance platelet activation.

Gangliosides enhance tumor formation in experimental animals, and high circulating concentrations of gangliosides shed by tumor cells are associated with rapid progression of human neuroblastoma. We studied these shed molecules for effects on platelet function, because platelet activation may play a role in the metastatic process. Preincubation of normal platelets in patient (tumor ganglioside-containing) serum resulted in their aggregation upon exposure to a subthreshold concentration (1 microgram/mL) of collagen (up to 34% v < 10% in normal serum) and ATP release (up to 1.1 nmol/2.5 x 10(7) platelets v < 0.2 in normal serum). Because circulating shed tumor gangliosides are lipoprotein-associated, we next assessed the effects of the serum lipoprotein fraction on platelet ATP release. The patient serum lipoprotein fraction (d > 1.210) enhanced ATP release (up to 3.1 nmol ATP), whereas the same fraction of normal serum, and both patient and control lipoprotein-depleted serum fractions (d > 1.210), were inactive (< 0.2 nmol ATP released). Finally, as little as 0.5 mumol/L patient serum gangliosides (purified from the lipoprotein fraction) caused significantly greater ATP release than did normal serum gangliosides (P < .01) and caused maximal release at 50 mumol/L (up to 3.0 nmol ATP released v < or = 0.3 nmol released by platelets exposed to normal serum gangliosides). Purified total human neuroblastoma tumor gangliosides, detected in the patient serum and isolated from LA-N5 cells, were highly active; preincubation of platelets with only 5 mumol/L of these gangliosides resulted in release of 2.5 +/- 0.1 nmol ATP. Thus, neuroblastoma patient serum, the lipoprotein fraction, and, specifically, the serum gangliosides enhance platelet activation. This activity appears to reside particularly in the tumor cell gangliosides, which are shed in vivo.

Adenosine Triphosphate↗

Gangliosides inhibit T-lymphocyte proliferation by preventing the interaction of interleukin-2 with its cell surface receptors.

Gangliosides are known to be actively shed from tumour cell membranes, and increased levels of circulating gangliosides may cause tumour-induced T-lymphocyte immunosuppression in vivo by interfering with the actions of interleukin-2 (IL-2). We have investigated the effect of gangliosides on the interaction of IL-2 with its cell surface receptors (IL-2R). Gangliosides inhibited IL-2-stimulated proliferation in synchronized populations of the IL-2-dependent cell lines CTLL-2 and HT-2. The immunosuppressive effect was most effective when gangliosides were added during the first 4 hr after IL-2-stimulation, indicating that they acted early in the IL-2 signalling pathway. Inhibition could be completely overcome by exogenous IL-2, suggesting that gangliosides inhibited growth solely by competing with IL-2R for available IL-2. In support of this proposal, gangliosides induced a concomitant dose-dependent decrease in binding of [125I]IL-2 to high-, medium- and low-affinity IL-2R. Ganglioside-treated cells recovered their high-affinity [125I]IL-2 binding after washing. The glycolipids also prevented chemical cross-linking of [125I]IL-2 to the p55/p75 complex, as well as to both IL-2R alpha (p55) and IL-2R beta (p75) independently. A thin-layer chromatography overlay technique was used to demonstrate that IL-2 binds directly to gangliosides, but not to simple neutral glycolipids or acidic lipids. Taken together, these findings indicate that gangliosides directly block the interaction of IL-2 with IL-2R, and may explain, in part, the immunosuppressive activities of gangliosides in vivo.

Animals↗

Gangliosides modulate Schwann cell proliferation and morphology.

We examined the effect of gangliosides on Schwann cell cultures isolated from neonatal rat sciatic nerves. Addition of gangliosides (GM1, GM3, and ganglioside mixture) at concentrations between 0.25 and 2 mg/ml significantly diminished both the baseline rate of proliferation of the Schwann cells and their response to two types of mitogens, the axolemmal fragments and derivatives of adenosine 3'-5'-monophosphate (cAMP). Gangliosides, the sialic acid residue of which had been removed, were highly toxic to the Schwann cells, which went to indicate that sialic acid is necessary to produce the inhibitory effects. Gangliosides also produced prominent changes in the morphological appearance of the Schwann cells. Most of the Schwann cells treated with gangliosides had an elongated shape with long processes and an alignment of end-to-end or side-by-side cell adhesion. These effects of gangliosides apparently were not mediated by cAMP, since intracellular cyclic adenosine monophosphate (cAMP) of Schwann cells at a basal- and forskolin-stimulated level was not altered by the exogenous gangliosides. These findings indicate that the direct effect of gangliosides on Schwann cells should also be considered as a background mechanism of ganglioside-induced facilitation of neuronal regeneration.

Animals↗

Developmental changes in gangliosides in cultured cerebellar granule neurons.

The content and composition of gangliosides in cultures enriched in granule neurones and in astrocytes from rat cerebellum (P6-8) showed marked differences: astrocytes contained less than 10% of the amount of granule neurones and the profile was dominated by simple gangliosides with lactosyl ceramide backbone, while gangliosides of the 'b' series, which constitute about 40% in nerve cells, were virtually undetectable. Granule cell maturation was accompanied by a 16-fold increase in the ganglioside content during the initial 8 days in a serum-supplemented medium (S+), reaching a plateau much earlier and at a higher level than observed in the cerebellum in vivo. Developmental changes were characterized, as in vivo, by a pronounced decrease in the GD3 proportion and an increase in the 'b' series of gangliosides. Compared with S+, adhesion among cells and fibres is different in a serum-free medium (S-), in which the rise in cellular ganglioside content was less (30%), but the developmental changes in ganglioside profile were similar. However, in cultures in S- only, GM3 was not detectable, while the distribution of GM1 and GD3 indicated that maturation is retarded relative to cells in S+. Surface exposure of gangliosides (studied by the periodate/[3H]borohydride method) was similar under the two culture conditions. There was an initial delay, especially in S-, in the insertion of gangliosides into the plasma membrane, while the labelling of GD3 (the dominant ganglioside of immature granule cells) was very low compared with all the other species throughout the whole cultivation time.

Animals↗

Gangliosides do not move from apical to basolateral plasma membrane in cultured epithelial cells.

Both qualitative and quantitative approaches were used to ascertain whether gangliosides, incorporated into the apical plasma membrane of cultured epithelial cells from kidney of toad (A6) and dog (MDCK), were able to redistribute past the tight junctions to the basolateral membrane. The apical surfaces of confluent epithelia were exposed to rhodaminyl gangliosides and the distribution of the inserted gangliosides was assessed qualitatively by fluorescence microscopy. All of the fluorescence was confined to the apical surface for at least 1 h after the fluorescent gangliosides had become incorporated; none appeared on the basolateral surface. These observations were confirmed by incubating the cells with anti-rhodamine antibodies and 125I-labeled protein A. In order to quantitate further the ganglioside distribution, binding assays were performed using 125I-labeled cholera toxin, which binds specifically to ganglioside GM1. Exogenous GM1 added to the apical membrane was not detected on the basolateral membrane 4 h after its incorporation even though there was extensive disappearance of the inserted ganglioside, presumably through endocytosis. To directly examine the behaviour of endogenous gangliosides, the apical surface of the epithelial cells was exposed to bacterial neuraminidase, which hydrolyzes more complex gangliosides to GM1. The cells exhibited a 10-fold increase in binding of cholera toxin to their apical surface, but no increase in binding to their basolateral surface. Thus, no cellular pathways for movement from apical to basolateral plasma membrane appear to be available for implanted or endogenous gangliosides.

Animals↗

Antibodies to GM1(NeuGc) in Guillain-Barré syndrome after ganglioside therapy.

N-Glycolylneuraminic acid-containing GM1 [GM1(Gc)] is a molecule for serum antibodies in patients with Guillain-Barré syndrome (GBS). To clarify the pathogenesis of GBS after treatment with bovine brain ganglioside, we investigated the presence of anti-GM1(Gc) antibody in patients who developed GBS after ganglioside injection. Serum samples were taken from nine Italian patients with GBS after ganglioside therapy as well as from untreated Italian (n=30) and Japanese (n=131) GBS patients. Bovine brain gangliosides fractionated in a column were used as antigens, and binding of serum IgG or IgM was examined. An absorption study of IgG anti-GM1(Gc) antibody was made with GM1, asialo-GM1, GM2, GD1a, and GD1b. Four of the nine patients who developed GBS after being administered gangliosides had IgG anti-GM1(Gc) antibodies. Anti-GM1(Gc) IgG antibody frequencies were higher in patients with GBS after ganglioside therapy than in those who were untreated. Rates of absorption of IgG anti-GM1(Gc) antibodies by GM1 were significantly higher (except for asialo-GM1 and GD1b) than by GM2 and GD1a. The presence of GM1(Gc) was confirmed in bovine brain immunochemically using cholera toxin and Hanganutziu-Deicher antibody. Secondary ion mass spectra showed that the structure of the ganglioside was consistent with that of GM1(Gc). GM1(Gc) was recognized more frequently in sera from patients who developed GBS after ganglioside therapy than in sera from untreated GBS patients. Because N-glycolylneuraminic acid-containing gangliosides seem to be highly immunogenic in humans, GM1(Gc) may act as an immunogen in some patients who develop GBS following ganglioside therapy.

Animals↗

Ganglioside GM3 sialidase activity in fibroblasts of normal individuals and of patients with sialidosis and mucolipidosis IV. Subcellular distribution and and some properties.

Sensitive assays for the determination of the ganglioside sialidase activity of fibroblast homogenates were established using ganglioside GM3, 3H-labelled in the sphingosine moiety, as a substrate. Ganglioside GM3 sialidase activity was greatly stimulated by the presence of the non-ionic detergent Triton X-100 and was further enhanced by salts such as NaCl; the optimal pH was 4.5. The subcellular localization of this activity was determined by fractionation using free-flow electrophoresis and found to be exclusively associated with the marker for the plasma membrane, but not with that for lysosomes. This Triton-stimulated ganglioside sialidase activity was selectively inhibited by preincubating intact cells in the presence of millimolar concentrations of Cu2+, suggesting that the activity resides on the external surface of the plasma membrane. In normal fibroblasts homogenates, ganglioside GM3 sialidase was also greatly stimulated by sodium cholate. In contrast to the Triton X-100-activated reaction, however, it was not diminished by prior incubation of intact cells in the presence of Cu2+. Only after cell lysis was Cu2+ inhibitory. the cholate-stimulated ganglioside sialidase activity thus paralleled the behaviour of the lysosomal 4-methylumbelliferyl-alpha-D-N-acetylneuraminic acid (4-MU-NeuAc) sialidase. In fibroblasts from sialidosis patients, the cholate-stimulated ganglioside GM3 sialidase activity, but not that of the Triton-activated enzyme, was profoundly diminished. In fibroblasts from patients with mucolipidosis IV (ML IV), both the Triton X-100- and the cholate-stimulated ganglioside GM3 sialidase activities were in the range of normal controls. The Triton-activated enzyme was associated with the plasma membrane in the same manner as in normal cells. Our findings suggest that, in human fibroblasts, there exist two sialidases that degrade ganglioside GM3: one on the external surface of the plasma membrane, and another that is localized in lysosomes and seems identical with the activity that acts on sialyloligosaccharides and 4-MU-NeuAc. As neither activity was found to be deficient in ML IV fibroblasts, our results argue against the hypothesis of a primary involvement of a ganglioside GM3 sialidase in the pathogenesis of ML IV.

Cell Membrane↗

human and bovine milk gangliosides differ in their fatty acid composition.

Gangliosides are considered bioactive components in human infant nutrition, and their fatty acid composition alters their biological effects. We used matrix-assisted laser desorption/ionization time of flight (MALDI-TOF) MS and GLC to analyze the fatty acid composition of the predominant gangliosides, the monosialoganglioside GM(3) [sialic acid (Sia) alpha2-3 galactose (Gal) beta1-4 glucose (Glc) beta1-1 ceramide] and the disialoganglioside GD(3) (Sia alpha2-8 Sia alpha2-3 Gal beta1-4 Glc beta1-1 ceramide), in pooled human and bovine milk, the latter being a source for gangliosides in infant formula. Compared with whole milk lipids, both human and bovine milk gangliosides were selectively enriched with certain fatty acids, and the fatty acid composition of milk gangliosides in the 2 species was significantly different. The amount of long-chain fatty acids (> or =20 C atoms) was higher in bovine milk gangliosides (GM(3): 73.71 +/- 3.39%; GD(3): 79.19 +/- 2.79%) than in human milk gangliosides (GM(3): 51.25 +/- 0.65%; GD(3): 34.04 +/- 1.80%). Tricosanoic acid (23:0) dominated in bovine milk gangliosides (GM(3): 24.05 +/- 1.37%; GD(3): 26.66 +/- 1.24%), whereas it only played a minor role in human milk gangliosides (GM(3): 2.88 +/- 0.10%; GD(3): 1.84 +/- 0.29%). We hypothesized that the differences in the fatty acid composition of milk gangliosides result in physiological distinctions between breast-fed and formula-fed infants and therefore are of importance for human infant nutrition.

Animals↗

Isolated bovine spinal motoneurons have specific ganglioside antigens recognized by sera from patients with motor neuron disease and motor neuropathy.

The gangliosides GM1 and GD1b have recently been reported to be potential target antigens in human motor neuron disease (MND) or motor neuropathy. The mechanism for selective motoneuron and motor nerve impairment by the antibodies directed against these gangliosides, however, is not fully understood. We recently investigated the ganglioside composition of isolated bovine spinal motoneurons and found that the ganglioside pattern of the isolated motoneurons was extremely complex. GM1, GD1a, GD1b, and GT1b, which are major ganglioside components of CNS tissues, were only minor species in motoneurons. Among the various ganglioside species in motoneurons, several were immunoreactive to sera from patients with MND and motor neuropathy. One of these gangliosides was purified from bovine spinal cord and characterized as N-glycolylneuraminic acid-containing GM1 [GM1(NeuGc)] by compositional analysis, fast atom bombardment mass spectra, and the use of specific antibodies. Among seven sera with anti-GM1 antibody activities, five sera reacted with GM1(NeuGc) and two did not. Two other gangliosides, which were recognized by another patient's serum, appeared to be specific for motoneurons. We conclude that motoneurons contained, in addition to the known ganglioside antigens GM1 and GD1b, other specific ganglioside antigens that could be recognized by sera from patients with MND and motor neuropathy.

Animals↗

Possible role of gangliosides in the interaction of colony-stimulating factor with granulocyte-macrophage progenitor cells.

Our previous studies have shown that preincubation of murine bone marrow (BM) cells with cholera toxin (CT) or with its B subunit inhibited their responsiveness to colony-stimulating factor (CSF). Because ganglioside GM1 is a component of the CT receptor, the present study was undertaken to determine whether gangliosides interact with CSF and therefore might play a role in the binding sites for CSF. Preincubation of CSF with increasing concentrations of bovine-brain mixed gangliosides resulted in decreased numbers of colonies of BM-derived granulocyte-macrophage progenitor cells (CFU-C) in soft agar. The inhibitory effect of the gangliosides could be reduced by increasing the concentrations of CSF. Evidence for direct binding of CSF to gangliosides was obtained by affinity chromatography of CSF on gangliosides-sepharose beads. CSF activity was retained on the beads and could be eluted with 6 M guanidine HCl. Four different individual gangliosides (GM1, GM2, GD1a, GT1b) were tested for their inhibitory effect on CSF-induced clonal growth of CFU-C. GM1 was the most effective with a 50% inhibition (I50) of clonal growth at a concentration of 15 microM. while the other three gangliosides had slight inhibitory activity (I50 at a concentration greater than 100 microM). In addition, preincubation of BM cells with rabbit anti-GM1 antibodies before addition of CSF reduced the clonal growth of CFU-C to 45%. These data indicate that GM1 interacts with CSF and suggest that gangliosides may play a role in the interaction of CSF with CFU-C and that the binding site for CSF on the surface of these cells might either consist of or contain this ganglioside.

Animals↗

Gangliosides of migrating and nonmigrating corneal epithelium in organ and cell culture.

PURPOSE: To identify major gangliosides - the sialated glycolipids - of corneal epithelium; to determine which specific gangliosides, if any, are synthesized in a higher amount or are downregulated during corneal epithelial cell migration; and to determine what role, if any, they play in the modulation of corneal epithelial cell proliferation. METHODS: [3H]-galactose-labeled and unlabeled glycolipids of migrating and nonmigrating rabbit corneal epithelium in cell and/or in organ culture were chromatographed on DEAE Sephadex to isolate gangliosides. The gangliosides eluted from the ion-exchange column were further characterized by thin-layer chromatography (TLC), glycosidase digestions, and TLC-immunostain analysis. A [3H]-thymidine incorporation assay was used to determine the effect of exogenous gangliosides on corneal epithelium cell proliferation. RESULTS: Upon TLC of the acidic fraction eluted from the DEAE column, only two radiolabeled glycolipids (GL1 and GL2), migrating as a doublet, were detected. Regardless of whether the epithelia were prepared by cell culture or organ culture, both GL1 and GL2 were present in a significantly higher amount in migrating compared to nonmigrating epithelia. Further characterization of GL1 and GL2 identified them as gangliosides known as GM3. TLC-immunostain analysis, as well as orcinol staining of thin-layer chromatograms of gangliosides of unlabeled cells, revealed that GM3 also accumulates in a higher amount in migrating compared to nonmigrating epithelial cell cultures. Exogenous addition of GM3, but not various other gangliosides, inhibited corneal epithelial cell proliferation in a dose-dependent manner. CONCLUSIONS: GM3 is the major ganglioside present in corneal epithelium, and its levels are elevated during corneal epithelial cell migration. It is suggested that the ganglioside plays a role in events that modulate corneal epithelial cell proliferation.

Animals↗

Brain gangliosides in dementia of the Alzheimer type.

Gangliosides GM1, GD1a, GD1b, and GT1b were measured in nine brain regions of five patients, clinically and neuropathologically diagnosed as having dementia of the Alzheimer type (DAT), and of three control patients. Analysis of variance revealed that mean concentrations of all gangliosides analyzed were significantly lower in DAT than in control brains. The areas affected in DAT included the nucleus basalis, and entorhinal, posterior cingulate, visual, and prefrontal cortices. A significant interaction between ganglioside type and brain area indicated unequal ganglioside concentrations. Individual gangliosides had significantly different concentrations in the hippocampal, entorhinal, posterior cingulate, visual, and prefrontal cortices. Analysis of ratios of "a"-ganglioside (GM1 and GD1a) and "b"-ganglioside (GD1b and GT1b) subtypes indicated that DAT preferentially affected "b"-gangliosides. Ganglioside concentrations in nucleus basalis did not correlate with age at disease onset, age at death, or postmortem interval. Changes in gangliosides, observed in this study, were not correlated with classic DAT neuropathology.

Aged↗

Factors mediating lipopolysaccharide-induced ganglioside expression in murine peritoneal macrophages.

The ganglioside composition of endotoxin-responsive C3H/HeN murine peritoneal macrophages is known to undergo dramatic changes in vivo in response to intraperitoneal lipopolysaccharides (LPS), unlike endotoxin-hyporesponsive C3H/HeJ macrophages. To better investigate the mechanism behind LPS-induced macrophage ganglioside changes, resident C3H/HeN peritoneal macrophages were treated in vitro with 0.1-1.0 micrograms/ml LPS for 6-96 hr, but showed no differences in membrane ganglioside patterns. Coincubation of macrophages with lymphocytes and treating with LPS again elicited no ganglioside changes. In contrast, interferon gamma (IFN-gamma)-primed macrophages showed a dramatic shift in intensity of one ganglioside when treated with LPS in vitro; an additional macrophage ganglioside appeared when IFN-gamma-primed, LPS-treated macrophages were coincubated with lymphocytes. Ganglioside expression induced in vitro still did not approach the complex changes seen in vivo. However, transplanting C3H/HeN macrophages intraperitoneally into C3H/HeJ mice, followed by administration of intraperitoneal LPS, did reveal striking changes in ganglioside expression that resembled the pattern seen in vivo. Thus, LPS alone does not provide the necessary direct signal to promote macrophage ganglioside change even though it alters macrophage function. IFN-gamma appears to be one important mediator; however, complex interactions involving other cytokines or migration of independent populations of mononuclear cells may be required for the full manifestation of LPS-induced ganglioside expression in macrophages.

Animals↗