Literature DB >> 2294970

Structure of human low-density lipoprotein subfractions, determined by X-ray small-angle scattering.

M W Baumstark1, W Kreutz, A Berg, I Frey, J Keul.   

Abstract

The structure of low-density lipoprotein (LDL) particles from three different density ranges (LDL-1: d = 1.006-1.031 g/ml; LDL-3: d = 1.034-1.037 g/ml; LDL-6: d = 1.044-1.063 g/ml) was determined by X-ray small-angle scattering. By using a theoretical particle model, which accounted for the polydispersity of the samples, we were able to obtain fits of the scattering intensity that were inside the noise interval of the measured intensity. The assumption of deviations from radial symmetry is not supported by our data. This implies a spread-out conformation of the apolipoprotein B (apoB) molecule, which appears to be localized in the outer surface shell. A globular structure is not consistent with our data. Furthermore, different models exist concerning the structure of the cholesterol ester core below the phase transition temperature. The electron density data suggest an arrangement in which the steroid moieties are localized at average radii of 3.2 and 6.4 nm. Model calculations show that packing problems can only be avoided if approximately half of the acyl chains of each shell are pointing towards the center of the particle, the other half towards the surface. This arrangement of the acyl chains has never been proposed before. The LDL particles of different density classes differ mainly with respect to the size of the core but also with respect to the width of the surface shells. Model calculations show that the size of different LDL particles can be accurately predicted from the compositional data.

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Year:  1990        PMID: 2294970     DOI: 10.1016/0167-4838(90)90100-t

Source DB:  PubMed          Journal:  Biochim Biophys Acta        ISSN: 0006-3002


  19 in total

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2.  Time-course studies by synchrotron X-ray solution scattering of the structure of human low-density lipoprotein during Cu(2+)-induced oxidation in relation to changes in lipid composition.

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3.  Characterization of the structure of polydisperse human low-density lipoprotein by neutron scattering.

Authors:  D F Meyer; A S Nealis; K R Bruckdorfer; S J Perkins
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Authors:  A Berg; M W Baumstark; I Frey; M Halle; J Keul
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5.  Acute and delayed effects of prolonged exercise on serum lipoproteins. II. Concentration and composition of low-density lipoprotein subfractions and very low-density lipoproteins.

Authors:  M W Baumstark; I Frey; A Berg
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6.  Atomistic simulations of phosphatidylcholines and cholesteryl esters in high-density lipoprotein-sized lipid droplet and trilayer: clues to cholesteryl ester transport and storage.

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Review 7.  Physical activity and lipoprotein lipid disorders.

Authors:  A Berg; I Frey; M W Baumstark; M Halle; J Keul
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8.  Accumulation of "small dense" low density lipoproteins (LDL) in a homozygous patients with familial defective apolipoprotein B-100 results from heterogenous interaction of LDL subfractions with the LDL receptor.

Authors:  W März; M W Baumstark; H Scharnagl; V Ruzicka; S Buxbaum; J Herwig; T Pohl; A Russ; L Schaaf; A Berg
Journal:  J Clin Invest       Date:  1993-12       Impact factor: 14.808

9.  Molecular structure of low density lipoprotein: current status and future challenges.

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Journal:  Eur Biophys J       Date:  2008-09-17       Impact factor: 1.733

10.  Simultaneous binding of the anti-cancer IgM monoclonal antibody PAT-SM6 to low density lipoproteins and GRP78.

Authors:  Zachary Rosenes; Yee-Foong Mok; Shuo Yang; Michael D W Griffin; Terrence D Mulhern; Danny M Hatters; Frank Hensel; Geoffrey J Howlett
Journal:  PLoS One       Date:  2013-04-19       Impact factor: 3.240

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