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Biomedical subjects

A Scanu

Publications and source records attributed to A Scanu.

18 recordsLinked to original sources

Properties of human serum low density lipoproteins after modification by succinic anhydride.

Human serum low density lipoprotein of d 1.019-1.063 (LDL(2)) treated with succinic anhydride at pH 7.5-8.0 showed the same chemical composition, hydrodynamic properties (flotation and sedimentation coefficients, intrinsic viscosity) and optical properties (circular dichroism) as untreated LDL(2). However, in contrast to LDL(2), the succinylated product (s-LDL(2)) failed to react with rabbit anti-LDL(2) antisera. Extraction with ethanol-ether 3:1 yielded the succinylated apoprotein (s-apo-LDL(2)), which was, unlike untreated apoprotein, soluble in aqueous buffers. Succinylated apoprotein, which was also immunologically unreactive, appeared to differ in structure from s-LDL(2), as assessed by the parameters of intrinsic viscosity and circular dichroism. The molecular weights of both LDL(2) and s-LDL(2) obtained by the technique of sedimentation equilibrium were 2.1-2.3 x 10(6). By the same method, s-apo-LDL(2) gave an uncorrected figure of 3.95-4.15 x 10(4) and, after correction for succinyl functions, of 3.60-3.80 x 10(4). Because of the assumptions made in the computations, the latter figure was considered approximate. The marked differences in molecular weight between s-apo-LDL(2) and whole apo-LDL(2) ( approximately 5 x 10(5)) were taken to support the subunit structure of apo-LDL(2), which is envisaged as an aggregate of about 12 subunits which dissociate upon succinylation. Further, the large percentage (about 90%) of the free amino groups of LDL(2) found to react with succinic anhydride suggests that these groups are at the surface of the molecule.

Amino Acids

Serum high-density lipoprotein: effect of change in structure on activity of chicken adipose tissue lipase.

The high-density (1.063 to 1.21 g/ml) lipoprotein in human serum was analyzed as activator for a lipoprotein lipase isolated from chicken adipose tissue. The activating capacity was lost when the lipoprotein was extracted with a mixture of ethanol and ethyl ether (3:2 by volume) at -10 degrees C and it was restored upon incubation of the extracted protein with aqueous sols of either whole phospholipids or the lecithin fraction prepared from the high-density lipoprotein. Since phospholipid sols alone proved ineffective as substrate activators, the complex which forms upon incubation of the extracted lipoprotein with phospholipids appears to be a necessary requirement for lipoprotein lipase activity.

Adipose Tissue

Forms of human serum high density lipoprotein protein.

Delipidation by ethanol-diethyl ether at -10 degrees C of human serum high-density lipoprotein (HDL, d 1.063-1.21) or of its subclasses HDL(2) (d 1.063-1.120) and HDL(3) (d 1.120-1.21), yielded proteins-alphaP, alphaP(2), and alphaP(3)-containing 3% phospholipid (largely lecithin) and 3.3% carbohydrate (glucosamine:L-fucose:D-galactose, D-mannose:sialic acid, 1.00:41 : 0.56:0.31). Solubility data and analytical ultracentrifugal analyses indicated that, upon lipid removal, HDL protein aggregates readily; the aggregation is dependent upon pH and ionic strength of the solvent medium. Subunits of 21,000 mol wt were obtained by acetylation or addition of sodium dodecyl sulfate (SDS). HDL and alphaP elicited in the rabbit a similar immunological response. By agar gel immunoelectrophoresis both anti-HDL and anti-alphaP sera detected a major and two minor antigenic determinants in HDL, HDL(3), alphaP, alphaP(2), and alphaP(3). HDL(2), antigenically homogeneous, gave an immunoelectrophoretic pattern of HDL(3) upon mixing with alphaP. alphaP, alphaP(2), and alphaP(3) exhibited a single antigenic determinant after treatment with SDS (0.5 M) or upon acetylation. Native or delipidated forms of HDL, HDL(2), and HDL(3) were separated by vertical starch gel electrophoresis into several components, which showed identical reactions against anti-HDL or anti-alphaP sera. The data suggest that (a) the proteins of HDL, HDL(2), and HDL(3) are made of subunits, probably identical, of an average molecular weight of 21,000; (b) the difference in antigenic behavior between HDL(2) and HDL(3) is due to the presence in the latter of a lipid-poor protein; (c) antigenic polymorphism of alphaP is probably related to the presence in solution of monomeric and polymeric forms having different reactivity against anti-HDL and anti-alphaP sera.

Adult