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At least 19 recordsLinked to original sources

Comparative study of the incorporation of ellipticine-esters into low density lipoprotein (LDL) and selective cell uptake of drug--LDL complex via the LDL receptor pathway in vitro.

Esters of elliptinium with stearic (ST-NME), palmitic (PAL-NME) or oleic (OL-NME) acids, a series of lipophilic derivatives of ellipticine, were synthetized, in order to evaluate their incorporation into Low Density Lipoprotein (LDL). Among the three derivatives, OL-NME shows the most potent incorporation (83 micrograms/mg protein LDL) compared to ST-NME (37 micrograms/mg protein LDL) and PAL-NME (58 micrograms/mg protein LDL). The size of OL-NME-LDL was determined by size distribution particles, showing their homogeneity compared to native LDL. When culture normal human fibroblasts were incubated with [125I]LDL incorporated drug, they bound to the LDL receptor with the same affinity as native LDL and were internalized and degraded intracellularly. The presence of excess native LDL inhibited the cellular uptake and degradation of [125I]drug-LDL. We have used [125I]acetyl-LDL as a probe for a binding site on macrophages that mediated the uptake and degradation of chemically altered or denatured LDL. Mouse peritoneal macrophages were shown to take up and degrade [125I]acetyl-LDL at rates that were greater than those for the uptake and degradation of native [125I]LDL and [125I]drug-LDL. The in vitro cytotoxic test on L1210 murine leukemic cells demonstrated that the complex was cytotoxic and was more effective than the free drug. This cytotoxic activity of the drug-LDL complex depends on the LDL high affinity receptor since the addition of native LDL reduces the killing power. In contrast, methylated LDL, which does not bind to the LDL receptor, has no effect on it. We conclude that it is possible to incorporate a large amount of cytotoxic drug into LDL without modifying their cellular metabolism via the high affinity LDL receptor pathway. It indicates also that the delivery of lipophilic drugs using LDL might provide distinct advantages over the use of synthetic carriers.

Alkaloids

Altered susceptibility to in vitro oxidation of LDL in LDL complexes and LDL aggregates.

Low density lipoprotein (LDL) is known to form complexes with polysulfated compounds, like heparin, dextran sulfate (DS), and chondroitin sulfate. In particular, chondroitin 6-sulfate (C6S)-rich proteoglycans of the arterial intima can associate with LDL, resulting in accumulation of LDL in atherosclerotic lesions. Besides LDL complex formation, LDL self-aggregation has been recently suggested to play a role in atherogenesis. Oxidative modification of LDL has also been implicated as a factor in the generation of the atherosclerotic plaque. Assuming that LDL self-aggregation may alter the molecule's susceptibility to oxidative modification, we have studied the sensitivity of LDL in LDL a aggregates as well as in insoluble and soluble LDL-C6S, LDL-heparin, and LDL-DS complexes to in vitro oxidation by cooper ions. Complexing the LDL with C6S and heparin resulted in an increased susceptibility of LDL to in vitro oxidation, whereas the oxidation of LDL complexed with DS was unaffected. In great contrast to the oxidation of LDL in LDL complexes, the in vitro oxidation of LDL in LDL aggregates (self-aggregation by denaturation) was strongly reduced. The results suggest that complex or aggregate formation may alter the susceptibility of the lipoprotein to oxidative modification and finally its metabolic fate or biological activity.

Chondroitin Sulfates

Functional characteristics of LDL particles derived from various LDL-apheresis techniques regarding LDL-drug-complex preparation.

Low density lipoproteins (LDL) have the potential to serve as cell specific drug carriers. The LDL may be derived in large quantities from LDL-apheresis procedures. Therefore, LDL particles isolated from the waste of three types of LDL-apheresis were investigated concerning their functional integrity in cell transport tests. LDL particles obtained from dextran sulfate-apheresis (DSA) and heparin extracorporeal lipoprotein precipitation (HELP)-LDL-apheresis are capable of specific internalization into HepG2 cells via the apoB receptor pathway. DSA-LDL-apoB appears to be split into two fragments as judged by SDS gel-polyacrylamide gel electrophoresis without changing transport behavior. Membrane differential filtration (MDF)- and HELP-derived LDL particles showed parallel transport behavior and electrophoretic mobility. Acetylated LDL particles obtained from MDF-LDL-apheresis and from blood donation plasma were transported into P388-macrophages via the scavenger receptor pathway. The results confirm the use of LDL particles from LDL-apheresis as substrates for transformation into drug carriers.

Animals

Hormonal regulation of low-density lipoprotein (LDL) receptor activity in human hepatoma Hep G2 cells. Insulin increases LDL receptor activity and diminishes its suppression by exogenous LDL.

Low-density lipoprotein (LDL) receptors of approximate Mr 130,000 on non-reduced gels have been identified in Hep G2 cells by immuno- and ligand-blotting of cell extracts. Measurement of LDL receptor protein by scanning ligand blots was correlated with the specific binding, uptake and degradation of 125I-labelled LDL by intact cells, confirming that this is mediated by the LDL receptor. Cells incubated in medium with serum expressed significant LDL receptor activity. This increased when cells were transferred to medium containing lipoprotein-deficient serum (LPDS) but was not maximal because a further increase occurred when compactin was included in the medium. Inclusion of 17 alpha-ethinyl estradiol or 17 beta-estradiol in the medium at concentrations up to 500 ng/ml had no effect on LDL receptor activity in the cells as assayed by ligand blotting. Inclusion of insulin (100 mU/ml) in the preincubation medium containing LPDS resulted in a twofold increase in LDL-receptor protein and of LDL binding and degradation by intact cells. Insulin also diminished the suppressive effect of LDL on LDL receptor activity. If insulin exerts this effect in vivo it may partly explain why the liver expresses LDL receptors despite high levels of LDL in plasma and interstitial fluid.

Carcinoma, Hepatocellular

Detection and quantitation of low density lipoprotein (LDL) receptors in human liver by ligand blotting, immunoblotting, and radioimmunoassay. LDL receptor protein content is correlated with plasma LDL cholesterol concentration.

Low density lipoprotein (LDL) receptor activity has been detected and identified in human liver samples by ligand blotting with biotinylated lipoproteins and by immunoblotting with a monoclonal antibody raised against the bovine adrenal LDL receptor. The molecular weight of the human liver LDL receptor, approximately 132,000 on nonreduced polyacrylamide gels, is identical to that of LDL receptors detected in normal human skin fibroblasts by the same methods. LDL receptor-dependent binding activity in human liver samples has been semi-quantitated by integrating the areas under the peaks after scanning photographs of ligand blots, and receptor protein determined by radioimmunoassay with purified bovine adrenal LDL receptor protein as the standard. There was a highly significant correlation between the values obtained by each method for seven different liver samples (r = 0.948). The LDL receptor protein content of liver membranes from 10 subjects as determined by radioimmunoassay was inversely related to the plasma LDL cholesterol concentration (r = 0.663, p = 0.05) but not to other plasma lipid values, including total plasma cholesterol, high density lipoprotein cholesterol, or plasma triglyceride concentrations.

Cell Membrane

LDL receptors in bovine tissues assayed as the heparin-sensitive binding of 125I-labeled LDL in homogenates: relation between liver LDL receptors and serum cholesterol in the fetus and post term.

The heparin-sensitive binding of 125I-labeled LDL in homogenates of bovine tissues was determined using a membrane filter assay. The binding fulfilled several criteria which have been established for the binding of LDL to its receptor, namely: saturability, dependence on Ca2+, sensitivity to proteolytic destruction and heat sensitivity. The adrenal cortex and the active corpus luteum exhibited the highest binding activity of the 22 different tissues assayed. Tissues from the central nervous system had low binding activity. Livers from fetal animals had higher binding than livers from young and adult animals and the binding of 125I-LDL to fetal liver homogenates showed an inverse correlation to the serum cholesterol levels, indicating that the LDL receptors in fetal liver may play a role in the regulation of the serum cholesterol level in the fetus during gestation. After birth, the binding of 125I-LDL to calf liver homogenates decreased to levels found in adult animals and this was paralleled by an increase of total serum cholesterol, suggesting that the rapid rise in serum cholesterol in mammals observed soon after birth may be caused by a decrease of the receptor-mediated catabolism of LDL in the liver.

Adrenal Cortex

Enhancement of thyroxine entry into low density lipoprotein (LDL) receptor-competent fibroblasts by LDL: an additional mode of entry of thyroxine into cells.

Having demonstrated that plasma low density lipoproteins (LDL) bind T4 through a specific interaction with their sole apolipoprotein, apoB-100, we tested the hypothesis that cells could internalize the LDL-T4 complex via cell surface LDL receptors. These receptors are down-regulated by cholesterol loading and up-regulated by cholesterol deficiency. We, therefore, studied the uptake of [125I]T4 or [125I]T3 by human skin fibroblasts grown in 10% lipoprotein-deficient serum in the absence or presence of LDL. At concentrations of LDL (12.5 and 22 micrograms protein/ml) that gave significant binding of T4 but did not exceed LDL receptor capacity, both the initial rate of saturable T4 uptake and the uptake at equilibrium increased by 27-63%. No significant increase occurred at a LDL concentration of 1.6 micrograms protein/ml (less than 3% occupancy), whereas there was a 20 to 31% reduction at 125 micrograms/ml (approximately 5 times the saturation dose for the LDL receptor). These changes were confirmed with several different LDL preparations and were mimicked by isolated apoB-100 and apoE, the sole ligands for the LDL receptors (apoB/E receptors). T4 uptake did not increase in normal fibroblasts with down-regulated LDL receptors or in LDL receptor-deficient fibroblasts from a patient with familial hypercholesterolemia. In the latter cell line the uptake of T4 (and T3) in the absence of LDL was indistinguishable from that of normal fibroblasts. T3 uptake in normal fibroblasts was not enhanced by LDL. The specificity of the LDL effect was shown by the finding that T4-binding globulin, prealbumin, or serum albumin, at concentrations giving 10-90% T4 bound, failed to increase T4 uptake. Instead, each of these major thyroid hormone-binding plasma proteins caused a dose-dependent decrease in T4 entry. It is concluded that at least two modes of entry into fibroblasts are available for T4. The first is the cell surface thyroid hormone-binding sites, which recognize the free hormone and are present in both normal and LDL receptor-negative fibroblasts. The second, and additional, mode of entry is via the LDL receptors, which recognize the T4-LDL complex, are absent in LDL receptor-negative fibroblasts, are reduced in down-regulated fibroblasts, and are unavailable for T3, owing to the low affinity of T3 for LDL.

Cell Line

Interactions of LDL and modified LDL with mesangial cells and matrix.

Hyperlipidemia may play a role in the progression of diabetic and other renal diseases. Low density lipoprotein (LDL) and other proteins including extracellular matrix components undergo nonenzymatic glycation in vivo. We examined the effects of glycation of LDL as occurs in diabetes (4 to 8%) on binding and uptake by mesangial cells and their proliferation. The glycation of LDL (g-LDL) significantly decreased its binding and uptake by mesangial cells by 15 to 20%, indicating that glycated LDL binds to the LDL receptor, but with lower affinity than LDL. Both LDL and g-LDL modestly stimulated [3H] thymidine incorporation into mesangial cells at 5 to 10 micrograms/ml. Native, oxidized (Ox-LDL) and glycated LDL all bound to the extracellular matrix generated by rat mesangial cells in culture. The binding of LDL, Ox-LDL and g-LDL to mesangial matrix was two to four times higher than to mesangial cells. Binding of LDL and g-LDL was significantly higher to glycolaldehyde modified matrix, which serves as an in vitro model for nonenzymatic glycation end-product cross-linking of matrix which occurs in long-standing diabetes. Based on these findings, we propose that glycation of LDL decreases its binding and uptake by the LDL receptor of mesangial cells and may slow its catabolism. Furthermore, LDL bound to extracellular mesangial matrix can undergo oxidation and generate cytotoxic LDL components. This process may be further enhanced by advanced glycation of the mesangial matrix in diabetes, contributing to glomerular pathology.

Animals

Initiation of atherosclerotic lesions in cholesterol-fed rabbits. II. Selective retention of LDL vs. selective increases in LDL permeability in susceptible sites of arteries.

We asked if the arterial sites most prone to early lesions in cholesterol-fed rabbits have higher permeabilities to low density lipoprotein (LDL) in normolipidemic rabbits or if these sites become more permeable shortly after the onset of cholesterol feeding. We also considered whether the focal increases in the concentration of LDL within the arterial wall in lesion-susceptible sites before fatty streak formation can be explained by increased arterial permeability to LDL or by other mechanisms such as decreased rates of LDL efflux or degradation. 125I-tyramine cellobiose-labeled LDL was injected 1 hour before death to determine the initial rate of LDL entry into lesion-prone and lesion-resistant sites of aorta as a measure of permeability. This was studied in normal rabbits and in rabbits fed cholesterol for 4, 8, or 16 days. Combining this permeability data with the tracer data described in the accompanying article, we fit a kinetic model to calculate the mass and mean residence time of intact LDL within the artery and the fractional rates of LDL degradation and efflux from the artery. In normal rabbits, the permeability of lesion-susceptible branch sites of the abdominal aorta was about four times that of the lesion-resistant, nonbranched areas. However, the permeability of the aortic arch, a susceptible site, was similar to that of the lesion-resistant descending thoracic aorta. Permeability to LDL did not increase in any aortic site during the 16 days of cholesterol feeding, even in sites with the largest increases in arterial LDL concentrations. Plasma LDL cholesterol concentration increased substantially and total LDL cholesterol delivery into the artery increased many fold. Since there was no differential change in permeability between susceptible and resistant sites, the increased entry of LDL did not explain the selective increases in arterial LDL concentration in susceptible sites. Kinetic analysis indicated that the fractional rate of degradation of the arterial LDL pool was lower in lesion-prone sites than in lesion-resistant sites in all animals. Fractional rates of efflux of arterial LDL decreased in lesion-susceptible branch sites of the abdominal aorta and were low in the lesion-susceptible aortic arch. These results suggest that the focal increases in LDL concentration observed in all lesion-susceptible sites of cholesterol-fed rabbits before fatty streak formation are due to localized differences in LDL retention and diminished fractional rates of LDL degradation, not to selectively increased permeability.(ABSTRACT TRUNCATED AT 400 WORDS)

Analysis of Variance

Ligand size as a determinant for catabolism by the low density lipoprotein (LDL) receptor pathway. A lattice model for LDL binding.

Low density lipoproteins (LDL) are large (Mr = 2.5 x 10(6)) in comparison to LDL receptors (Mr = 115,000). Since most LDL receptors are clustered in coated pits, we tested the hypothesis that crowding of receptor-bound LDL particles would cause steric effects. The apparent affinity of LDL for receptors on cultured fibroblasts decreased near saturation causing concave-upward Scatchard plots. Both the higher and lower affinity components of binding were up-regulated by the cholesterol synthesis inhibitor, lovastatin, indicating that the entire binding curve was sterol-responsive. In contrast, neither component of LDL binding was present on lovastatin-treated or untreated null fibroblasts which are incapable of expressing LDL receptors. Therefore, the concave-upward Scatchard plots were entirely due to binding to LDL receptors. These results are consistent with a lattice model in which receptor-bound LDL are large enough to decrease binding to adjacent receptors. A lattice model implies that large LDL should produce steric effects at a lower receptor occupancy than should small LDL. This was tested using seven LDL fractions that differed in diameter from 20 to 27 nm. Fewer large than small LDL were bound to the cell surface at 4 degrees C and 37 degrees C, and fewer were internalized and degraded at 37 degrees C. Since large LDL bound via both apolipoprotein (apo) E and apoB100, receptor cross-linking could have caused fewer large LDL to be bound at saturation. However, when the potential for cross-linking was prevented by an apo-E-specific monoclonal antibody (1D7), the difference in binding by large versus small LDL was not eliminated; instead, it was exaggerated. Taken together, these results support a lattice model for LDL binding and indicate that steric hindrance associated with crowding of LDL particles on receptor lattices is a major determinant for catabolism by the LDL receptor pathway in vitro.

Adult

Early pathological changes of endothelia in a model using LDL perfusion at physiological LDL-cholesterol concentration.

The aim of the present research was to provide further insight into the debated problem of the existence of modified LDL in vivo. For this purpose a novel model was devised for studying LDL injurious effect on endothelial cells (EC) by infusing native cholesterol rich LDL, diluted to physiological LDL cholesterol concentration. Normal rabbits were infused with LDL separated from rabbits previously fed either with standard food (I-LDL Group), 1% cholesterol (II-LDL Group) or 1% cholesterol plus probucol (IV-LDL Group). Cu++ modified II-LDL was infused as well (III-LDL Group). After dilution as above, lipid oxide (LP) significantly increased in III- and II-LDL media, as compared to I- and IV-LDL media. EC of III- and II-LDL Groups showed irregular shape and surface pattern. Further, they showed adhering clusters of monocytes, platelets and erythrocytes. Endocytic vesicles and ruthenium red-positive particles increased too. EC of IV-LDL Group were only slightly affected as compared to I-LDL Group. These data suggest that native LDL from hypercholesterolemic rabbits contain an oxidized form which is noxious to EC even when LDL is infused at physiological LDL-cholesterol concentration. This early injury is in part LP-associated and actively involves platelets and monocytes.

Animals

Characterization of the interaction of acetylated LDL and oxidatively modified LDL with human liver parenchymal and Kupffer cells in culture.

The interaction of acetylated low density lipoprotein (Ac-LDL) and oxidatively modified low density lipoprotein (Ox-LDL) with cultured human liver parenchymal cells and human Kupffer cells was investigated to define, for humans, the presence of scavenger receptors in the liver. A direct comparison of the capacity of Kupffer and parenchymal cells to interact with Ac-LDL and Ox-LDL indicated that the capacity of Kupffer cells per milligram of cell protein to degrade Ac-LDL and Ox-LDL is 14-fold and sixfold higher, respectively, than that of parenchymal cells. The degradation of both Ac-LDL and Ox-LDL by parenchymal cells and Kupffer cells could be inhibited by chloroquine and ammonium chloride, indicating that degradation occurs in the lysosomes. Competition studies showed that unlabeled Ox-LDL competed efficiently with the cell association and degradation of 125I-labeled Ac-LDL by human parenchymal cells and human Kupffer cells. However, unlabeled Ac-LDL did not compete (parenchymal cells) or only partially competed (40% in Kupffer cells) with the cell association and degradation of 125I-labeled Ox-LDL. Polyinosinic acid completely blocked the cell association and degradation of Ac-LDL and Ox-LDL with Kupffer cells while no significant effect on parenchymal cells was noted. It is concluded that human liver parenchymal cells contain a scavenger receptor that interacts with Ac-LDL and Ox-LDL and an additional recognition site that recognizes Ox-LDL specifically.(ABSTRACT TRUNCATED AT 250 WORDS)

Binding Sites

Uptake of LDL in parenchymal and non-parenchymal rabbit liver cells in vivo. LDL uptake is increased in endothelial cells in cholesterol-fed rabbits.

1. Hepatic uptake of low-density lipoprotein (LDL) in parenchymal cells and non-parenchymal cells was studied in control-fed and cholesterol-fed rabbits after intravenous injection of radioiodinated native LDL (125I-TC-LDL) and methylated LDL (131I-TC-MetLDL). 2. LDL was taken up by rabbit liver parenchymal cells, as well as by endothelial and Kupffer cells. Parenchymal cells, however, were responsible for 92% of the hepatic LDL uptake. 3. Of LDL in the hepatocytes, 89% was taken up via the B,E receptor, whereas 16% and 32% of the uptake of LDL in liver endothelial cells and Kupffer cells, respectively, was B,E receptor-dependent. 4. Cholesterol feeding markedly reduced B,E receptor-mediated uptake of LDL in parenchymal liver cells and in Kupffer cells, to 19% and 29% of controls, respectively. Total uptake of LDL in liver endothelial cells was increased about 2-fold. This increased uptake is probably mediated via the scavenger receptor. The B,E receptor-independent association of LDL with parenchymal cells was not affected by the cholesterol feeding. 5. It is concluded that the B,E receptor is located in parenchymal as well as in the non-parenchymal rabbit liver cells, and that this receptor is down-regulated by cholesterol feeding. Parenchymal cells are the main site of hepatic uptake of LDL, both under normal conditions and when the number of B,E receptors is down-regulated by cholesterol feeding. In addition, LDL is taken up by B,E receptor-independent mechanism(s) in rabbit liver parenchymal, endothelial and Kupffer cells. The non-parenchymal liver cells may play a quantitatively important role when the concentration of circulating LDL is maintained at a high level in plasma, being responsible for 26% of hepatic uptake of LDL in cholesterol-fed rabbits as compared with 8% in control-fed rabbits. The proportion of hepatic LDL uptake in endothelial cells was greater than 5-fold higher in the diet-induced hypercholesterolaemic rabbits than in controls.

Animals

Monoclonal antibodies against LDL further enhance macrophage uptake of LDL aggregates.

Self-aggregates of low density lipoprotein (LDL) are taken up and degraded more rapidly by macrophages than is native LDL. That enhanced uptake is attributable in part to phagocytosis via the LDL receptor pathway. However, arterial macrophages appear to express little LDL receptor activity. The present studies demonstrate an alternative mechanism by which LDL aggregates could contribute to foam cell formation. This could occur by the formation of large immune complexes that are taken up by macrophages via the Fc receptor. When immune complexes were formed with native, soluble LDL and MB47, a monoclonal antibody specific to the apoprotein B domain recognized by the LDL receptor, the subsequent uptake and degradation of the LDL by macrophages were inhibited 50-80% compared with native LDL alone. In contrast, when aggregated LDL was bound to MB47 at a similar molar ratio, the subsequent degradation of the insoluble immune complexes was two- to fivefold greater than that of aggregated LDL alone. The enhanced uptake was abolished when Fab or F(ab')2 fragments of MB47 were substituted for the intact antibody, indicating that the increased uptake was via the Fc receptor pathway. Furthermore, the uptake of the immune complexes of aggregated LDL was reduced by competition for the Fc receptor with heat-aggregated immunoglobulin. There was also an increase in the rate of cellular cholesterol esterification and an increase in macrophage cholesteryl ester mass. Since aggregates of LDL as well as autoantibodies against modified LDL have been demonstrated in atherosclerotic lesions, it is possible that immune complexes of aggregates of modified LDL may be generated in the intima.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Lipolysis of LDL with phospholipase A2 alters the expression of selected apoB-100 epitopes and the interaction of LDL with cells.

To assess the effects of perturbing the surface of low density lipoprotein (LDL) on the conformation of apoB-100, LDL (d 1.030-1.050 g/ml) isolated from normal subjects were treated with phospholipase A2 (PL-A2) for 0.5 to 15 min. The resulting P-LDL and concurrent control LDL (C-LDL) incubated without PL-A2 were isolated by gel permeation chromatography. Approximately 50% of LDL-phosphatidylcholine was hydrolyzed in 2 min and approximately 85% in 5 min. Lysophosphatidylcholine compounds (LPC) and free fatty acids (FFA) accumulated during lipolysis but most of the LPC and all of FFA could be removed by adding FFA-free albumin to the lipolysis mixtures. Immunoreactivities of P-LDL and C-LDL were evaluated in competitive radioimmunoassays, using a library of anti-human LDL monoclonal antibodies directed against the major regions of apoB-100 (the T4, T3, and T2 thrombin fragments). One epitope defined by monoclonal antibody 465B6C3 and localized near the carboxyl end of the apoB-100 molecule became less immunoreactive (ED 50s increased); three other epitopes on the T2 fragment near the LDL receptor recognition site and four epitopes localized towards the middle (T3) and amino terminal (T4) regions did not change. Altered immunoreactivities were not related to LPC and FFA contents. Thus, the conformation of apoB-100 was selectively altered by phospholipolysis. The interactions of P-LDL with cultured fibroblasts were grossly altered: P-LDL were bound nonspecifically to fibroblasts of both normal and homozygous familial hypercholesterolemic subjects and P-LDL were not degraded. LPC and FFA retained in LDL did not explain these alterations, nor did changes of epitope expression near the LDL receptor recognition site. It is likely that the apoB-100 aberrant cell interaction is due to loss of surface phospholipids and "uncovering" of core lipids that react nonspecifically with cell surface components.

Apolipoprotein B-100

High carbohydrate fat-free diet modulates epitope expression of LDL-apoB-100 and interaction of LDL with human fibroblasts.

High carbohydrate diets are known to increase the concentration of very low density lipoprotein (VLDL) and to lower the concentrations of low density lipoprotein (LDL) and high density lipoprotein (HDL) in plasma. Such diets also alter lipoprotein compositions and metabolism. The aims of the present study were to assess in detail the effects of a virtually fat-free high carbohydrate (CHO) diet (CHO greater than 85% and fat less than 1% of calories) on various aspects of LDL. Thirteen healthy normolipidemic volunteers ate a basal "American" diet and the CHO diet for 7 days each in a forward or reverse sequence. Fasting blood samples were drawn at the ends of each study period and analyzed for lipoprotein lipid and apolipoprotein concentrations. Compositions of LDL particles isolated by ultracentrifugation were characterized chemically, LDL sizes were assessed by nondenaturing gradient electrophoresis on 2-16% gels, and association and degradation of LDL with normal human skin fibroblasts were quantified in cell cultures. Immunoreactivities of apoB in LDL were tested in solid phase competitive binding radioimmunoassays using five monoclonal anti-LDL antibodies that reacted with defined epitopes of apoB-100. The study diet produced consistent decreases of LDL cholesterol and apoB concentrations by 25% and 17%, respectively. LDL compositions were altered. Mean LDL triglycerides increased 3% to 4% of total LDL mass (P less than 0.004), and LDL particle sizes decreased (P less than 0.01). In radioimmunoassays that contained monoclonal antibody B1B3, an antibody that inhibits binding of LDL to the LDL receptor, the mean ED50 value for LDL protein was reduced from 3.75 to 2.66 micrograms (P less than 0.001).(ABSTRACT TRUNCATED AT 250 WORDS)

Adult

Dietary fat saturation in rhesus monkeys affects LDL concentrations by modulating the independent production of LDL apolipoprotein B.

In a recent study from this laboratory, rhesus monkeys fed a 90% palm oil/10% soybean oil-containing diet (PS), rich in 16:0 and 18:1 fatty acids, had decreased total and LDL cholesterol concentrations compared to monkeys fed a 90% coconut oil/10% soybean oil-containing diet (CS), rich in 12:0 and 14:0 fatty acids. To investigate the metabolic basis of these changes, homologous 125I-VLDL and 131I-LDL were injected simultaneously into eight monkeys (four per dietary group). Analysis of apo B specific activity curves revealed that PS monkeys had an increased pool size of VLDL apo B (P less than 0.02), a 3-fold increase in the total VLDL apo B transport rate (P less than 0.001), a decreased pool size of LDL apo B (P less than 0.01) and a 2-fold decrease in the total transport rate of LDL apo B (P less than 0.001), while the irreversible FCR for VLDL apo B and LDL apo B was similar between dietary groups. PS monkeys derived a greater percentage of LDL apo B from VLDL catabolism resulting in a greater transport rate of LDL apo B from VLDL catabolism (P less than 0.055), in comparison to CS monkeys. For CS monkeys the proportion as well as the amount of LDL apo B derived from VLDL-independent catabolism (i.e., LDL apo B derived from sources other than VLDL catabolism) was higher (P less than 0.001) than the values obtained in PS monkeys. In both dietary groups the proportion of VLDL apo B converted to LDL apo B was similar, although the absolute amount was higher for the PS monkeys (P less than 0.06). The proportion of VLDL apo B directly removed from the circulation was similar for both dietary groups, with the absolute amount being higher for the PS monkeys (P less than 0.001). Consistent with the lower pool size of LDL apo B and the higher pool size of VLDL apo B observed in PS monkeys, plasma and LDL cholesterol concentrations tended to be lower, whereas plasma triacylglycerol and VLDL cholesterol concentrations tended to be higher, but these changes were not statistically significant. Although total apo B and VLDL apo B transport rates were increased 2-3-fold in PS monkeys, LDL apo B concentration was reduced by 40% (P less than 0.02) attributed to a significant reduction in the mass and proportion of LDL apo B derived independent of VLDL catabolism.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals