Literature DB >> 10079112

Targeted mutation of plasma phospholipid transfer protein gene markedly reduces high-density lipoprotein levels.

X C Jiang1, C Bruce, J Mar, M Lin, Y Ji, O L Francone, A R Tall.   

Abstract

It has been proposed that the plasma phospholipid transfer protein (PLTP) facilitates the transfer of phospholipids and cholesterol from triglyceride-rich lipoproteins (TRL) into high-density lipoproteins (HDL). To evaluate the in vivo role of PLTP in lipoprotein metabolism, we used homologous recombination in embryonic stem cells and produced mice with no PLTP gene expression. Analysis of plasma of F2 homozygous PLTP-/- mice showed complete loss of phosphatidylcholine, phosphatidylethanolamine, phosphatidylinositol, sphingomyelin, and partial loss of free cholesterol transfer activities. Moreover, the in vivo transfer of [3H]phosphatidylcholine ether from very-low-density proteins (VLDL) to HDL was abolished in PLTP-/- mice. On a chow diet, PLTP-/- mice showed marked decreases in HDL phospholipid (60%), cholesterol (65%), and apo AI (85%), but no significant change in non-HDL lipid or apo B levels, compared with wild-type littermates. On a high-fat diet, HDL levels were similarly decreased, but there was also an increase in VLDL and LDL phospholipids (210%), free cholesterol (60%), and cholesteryl ester (40%) without change in apo B levels, suggesting accumulation of surface components of TRL. Vesicular lipoproteins were shown by negative-stain electron microscopy of the free cholesterol- and phospholipid-enriched IDL/LDL fraction. Thus, PLTP is the major factor facilitating transfer of VLDL phospholipid into HDL. Reduced plasma PLTP activity causes markedly decreased HDL lipid and apoprotein, demonstrating the importance of transfer of surface components of TRL in the maintenance of HDL levels. Vesicular lipoproteins accumulating in PLTP-/- mice on a high-fat diet could influence the development of atherosclerosis.

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Year:  1999        PMID: 10079112      PMCID: PMC408146          DOI: 10.1172/JCI5578

Source DB:  PubMed          Journal:  J Clin Invest        ISSN: 0021-9738            Impact factor:   14.808


  33 in total

Review 1.  The surfactant system and lung phospholipid biochemistry.

Authors:  S A Rooney
Journal:  Am Rev Respir Dis       Date:  1985-03

2.  Isolation and characterization of a phospholipid transfer protein (LTP-II) from human plasma.

Authors:  J H Tollefson; S Ravnik; J J Albers
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3.  Complete cDNA encoding human phospholipid transfer protein from human endothelial cells.

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Journal:  J Biol Chem       Date:  1994-03-25       Impact factor: 5.157

4.  Separation of a plasma phospholipid transfer protein from cholesterol ester/phospholipid exchange protein.

Authors:  A R Tall; E Abreu; J Shuman
Journal:  J Biol Chem       Date:  1983-02-25       Impact factor: 5.157

5.  Isolation and properties of nascent lipoproteins from highly purified rat hepatocytic Golgi fractions.

Authors:  R L Hamilton; A Moorehouse; R J Havel
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Authors:  T M Forte; J K Bielicki; R Goth-Goldstein; J Selmek; M R McCall
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7.  The mechanism of human plasma phospholipid transfer protein-induced enlargement of high-density lipoprotein particles: evidence for particle fusion.

Authors:  S Lusa; M Jauhiainen; J Metso; P Somerharju; C Ehnholm
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Authors:  X C Jiang; C Bruce
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Authors:  X C Jiang; L Masucci-Magoulas; J Mar; M Lin; A Walsh; J L Breslow; A Tall
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10.  Phospholipid liposomes acquire apolipoprotein E in atherogenic plasma and block cholesterol loading of cultured macrophages.

Authors:  K J Williams; A R Tall; C Bisgaier; R Brocia
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