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J Clin Invest. 1996 April 15; 97(8): 1844–1851. doi: 10.1172/JCI118614. | PMCID: PMC507252 |
Hyperalphalipoproteinemia in human lecithin cholesterol acyltransferase transgenic rabbits. In vivo apolipoprotein A-I catabolism is delayed in a gene dose-dependent manner. M E Brousseau, S Santamarina-Fojo, L A Zech, A M Bérard, B L Vaisman, S M Meyn, D Powell, H B Brewer, Jr, and J M Hoeg Molecular Disease Branch, National Heart, Lung, and Blood Institute, National Institutes of Health, Bethesda, Maryland 20892, USA. Lecithin cholesterol acyltransferase (LCAT) is an enzyme involved in the intravascular metabolism of high density lipoproteins (HDLs). Overexpression of human LCAT (hLCAT) in transgenic rabbits leads to gene dose-dependent increases of total and HDL cholesterol concentrations. To elucidate the mechanisms responsible for this effect, 131I-HDL apoA-I kinetics were assessed in age- and sex-matched groups of rabbits (n=3 each) with high, low, or no hLCAT expression. Mean total and HDL cholesterol concentrations (mg/dl), respectively, were 162+/-18 and 121+/-12 for high expressors (HE), 55+/-6 and 55+/-10 for low expressors (LE), and 29+/-2 and 28+/-4 for controls. Fast protein liquid chromatography analysis of plasma revealed that the HDL of both HE and LE were cholesteryl ester and phospholipid enriched, as compared with controls, with the greatest differences noted between HE and controls. These compositional changes resulted in an incremental shift in apparent HDL particle size which correlated directly with the level of hLCAT expression, such that HE had the largest HDL particles and controls the smallest. In vivo kinetic experiments demonstrated that the fractional catabolic rate(FCR, d(-1)) of apoA-I was slowest in HE (0.328+/-0.03) followed by LE (0.408+/-0.01) and, lastly, by controls (0.528+/-0.04). ApoA-I FCR was inversely associated with HDL cholesterol level (r=-0.851,P<0.01) and hLCAT activity (r=-0.816, P<0.01). These data indicate that fractional catabolic rate is the predominant mechanism by which hLCAT overexpression differentially modulates HDL concentrations in this animal model. We hypothesize that LCAT-induced changes in HDL composition and size ultimately reduce apoA-I catabolism by altering apoA-I conformation and/or HDL particle regeneration. The Full Text of this article is available as a PDF (206K). These references are in PubMed. This may not be the complete list of references from this article. - Glomset JA, Janssen ET, Kennedy R, Dobbins J. Role of plasma lecithin:cholesterol acyltransferase in the metabolism of high density lipoproteins. J Lipid Res. 1966 Sep;7(5):638–648. [PubMed]
- Glomset JA. The plasma lecithins:cholesterol acyltransferase reaction. J Lipid Res. 1968 Mar;9(2):155–167. [PubMed]
- Albers JJ, Chen CH, Adolphson JL. Lecithin:cholesterol acyltransferase (LCAT) mass; its relationship to LCAT activity and cholesterol esterification rate. J Lipid Res. 1981 Nov;22(8):1206–1213. [PubMed]
- Castro GR, Fielding CJ. Early incorporation of cell-derived cholesterol into pre-beta-migrating high-density lipoprotein. Biochemistry. 1988 Jan 12;27(1):25–29. [PubMed]
- Fielding PE, Kawano M, Catapano AL, Zoppo A, Marcovina S, Fielding CJ. Unique epitope of apolipoprotein A-I expressed in pre-beta-1 high-density lipoprotein and its role in the catalyzed efflux of cellular cholesterol. Biochemistry. 1994 Jun 7;33(22):6981–6985. [PubMed]
- Tall AR. Plasma cholesteryl ester transfer protein. J Lipid Res. 1993 Aug;34(8):1255–1274. [PubMed]
- Goldstein JL, Brown MS, Anderson RG, Russell DW, Schneider WJ. Receptor-mediated endocytosis: concepts emerging from the LDL receptor system. Annu Rev Cell Biol. 1985;1:1–39. [PubMed]
- Herz J, Hamann U, Rogne S, Myklebost O, Gausepohl H, Stanley KK. Surface location and high affinity for calcium of a 500-kd liver membrane protein closely related to the LDL-receptor suggest a physiological role as lipoprotein receptor. EMBO J. 1988 Dec 20;7(13):4119–4127. [PubMed]
- Strickland DK, Ashcom JD, Williams S, Burgess WH, Migliorini M, Argraves WS. Sequence identity between the alpha 2-macroglobulin receptor and low density lipoprotein receptor-related protein suggests that this molecule is a multifunctional receptor. J Biol Chem. 1990 Oct 15;265(29):17401–17404. [PubMed]
- Fielding CJ. The origin and properties of free cholesterol potential gradients in plasma, and their relation to atherogenesis. J Lipid Res. 1984 Dec 15;25(13):1624–1628. [PubMed]
- Fielding CJ, Shore VG, Fielding PE. A protein cofactor of lecithin:cholesterol acyltransferase. Biochem Biophys Res Commun. 1972 Feb 25;46(4):1493–1498. [PubMed]
- Jonas A. Lecithin-cholesterol acyltransferase in the metabolism of high-density lipoproteins. Biochim Biophys Acta. 1991 Jul 30;1084(3):205–220. [PubMed]
- Schaefer EJ, Zech LA, Jenkins LL, Bronzert TJ, Rubalcaba EA, Lindgren FT, Aamodt RL, Brewer HB., Jr Human apolipoprotein A-I and A-II metabolism. J Lipid Res. 1982 Aug;23(6):850–862. [PubMed]
- Brinton EA, Eisenberg S, Breslow JL. Elevated high density lipoprotein cholesterol levels correlate with decreased apolipoprotein A-I and A-II fractional catabolic rate in women. J Clin Invest. 1989 Jul;84(1):262–269. [PubMed]
- Brinton EA, Eisenberg S, Breslow JL. A low-fat diet decreases high density lipoprotein (HDL) cholesterol levels by decreasing HDL apolipoprotein transport rates. J Clin Invest. 1990 Jan;85(1):144–151. [PubMed]
- Brinton EA, Eisenberg S, Breslow JL. Human HDL cholesterol levels are determined by apoA-I fractional catabolic rate, which correlates inversely with estimates of HDL particle size. Effects of gender, hepatic and lipoprotein lipases, triglyceride and insulin levels, and body fat distribution. Arterioscler Thromb. 1994 May;14(5):707–720. [PubMed]
- Ikewaki K, Zech LA, Kindt M, Brewer HB, Jr, Rader DJ. Apolipoprotein A-II production rate is a major factor regulating the distribution of apolipoprotein A-I among HDL subclasses LpA-I and LpA-I:A-II in normolipidemic humans. Arterioscler Thromb Vasc Biol. 1995 Mar;15(3):306–312. [PubMed]
- Melchior GW, Castle CK, Vidmar TJ, Polites HG, Marotti KR. Apo A-I metabolism in cynomolgus monkeys: male-female differences. Biochim Biophys Acta. 1990 Mar 12;1043(1):97–105. [PubMed]
- Pape ME, Rehberg EF, Marotti KR, Melchior GW. Molecular cloning, sequence, and expression of cynomolgus monkey cholesteryl ester transfer protein. Inverse correlation between hepatic cholesteryl ester transfer protein mRNA levels and plasma high density lipoprotein levels. Arterioscler Thromb. 1991 Nov–Dec;11(6):1759–1771. [PubMed]
- Rader DJ, Castro G, Zech LA, Fruchart JC, Brewer HB., Jr In vivo metabolism of apolipoprotein A-I on high density lipoprotein particles LpA-I and LpA-I,A-II. J Lipid Res. 1991 Nov;32(11):1849–1859. [PubMed]
- Brinton EA, Eisenberg S, Breslow JL. Increased apo A-I and apo A-II fractional catabolic rate in patients with low high density lipoprotein-cholesterol levels with or without hypertriglyceridemia. J Clin Invest. 1991 Feb;87(2):536–544. [PubMed]
- Horowitz BS, Goldberg IJ, Merab J, Vanni TM, Ramakrishnan R, Ginsberg HN. Increased plasma and renal clearance of an exchangeable pool of apolipoprotein A-I in subjects with low levels of high density lipoprotein cholesterol. J Clin Invest. 1993 Apr;91(4):1743–1752. [PubMed]
- Melchior GW, Castle CK, Murray RW, Blake WL, Dinh DM, Marotti KR. Apolipoprotein A-I metabolism in cholesteryl ester transfer protein transgenic mice. Insights into the mechanisms responsible for low plasma high density lipoprotein levels. J Biol Chem. 1994 Mar 18;269(11):8044–8051. [PubMed]
- Forte T, Norum KR, Glomset JA, Nichols AV. Plasma lipoproteins in familial lecithin: cholesterol acyltransferase deficiency: structure of low and high density lipoproteins as revealed by elctron microscopy. J Clin Invest. 1971 May;50(5):1141–1148. [PubMed]
- Forte TM, Carlson LA. Electron microscopic structure of serum lipoproteins from patients with fish eye disease. Arteriosclerosis. 1984 Mar–Apr;4(2):130–137. [PubMed]
- Rader DJ, Ikewaki K, Duverger N, Schmidt H, Pritchard H, Frohlich J, Clerc M, Dumon MF, Fairwell T, Zech L, et al. Markedly accelerated catabolism of apolipoprotein A-II (ApoA-II) and high density lipoproteins containing ApoA-II in classic lecithin: cholesterol acyltransferase deficiency and fish-eye disease. J Clin Invest. 1994 Jan;93(1):321–330. [PubMed]
- Gylling H, Miettinen TA. Non-cholesterol sterols, absorption and synthesis of cholesterol and apolipoprotein A-I kinetics in a Finnish lecithin-cholesterol acyltransferase deficient family. Atherosclerosis. 1992 Jul;95(1):25–33. [PubMed]
- Vaisman BL, Klein HG, Rouis M, Bérard AM, Kindt MR, Talley GD, Meyn SM, Hoyt RF, Jr, Marcovina SM, Albers JJ, et al. Overexpression of human lecithin cholesterol acyltransferase leads to hyperalphalipoproteinemia in transgenic mice. J Biol Chem. 1995 May 19;270(20):12269–12275. [PubMed]
- Hoeg JM, Vaisman BL, Demosky SJ, Jr, Meyn SM, Talley GD, Hoyt RF, Jr, Feldman S, Bérard AM, Sakai N, Wood D, Brousseau ME, Marcovina S, Brewer HB, Jr, Santamarina-Fojo S. Lecithin:cholesterol acyltransferase overexpression generates hyperalpha-lipoproteinemia and a nonatherogenic lipoprotein pattern in transgenic rabbits. J Biol Chem. 1996 Feb 23;271(8):4396–4402. [PubMed]
- Chapman MJ. Animal lipoproteins: chemistry, structure, and comparative aspects. J Lipid Res. 1980 Sep;21(7):789–853. [PubMed]
- Ha YC, Barter PJ. Differences in plasma cholesteryl ester transfer activity in sixteen vertebrate species. Comp Biochem Physiol B. 1982;71(2):265–269. [PubMed]
- Clay MA, Hopkins GJ, Ehnholm CP, Barter PJ. The rabbit as an animal model of hepatic lipase deficiency. Biochim Biophys Acta. 1989 Apr 3;1002(2):173–181. [PubMed]
- Børresen AL, Kindt TJ, Berg K. Partial purification and characterization of the inherited Hl 1 and R 67 antigens of rabbit serum high density lipoprotein. J Immunogenet. 1978 Apr;5(2):71–86. [PubMed]
- Warnick GR, Benderson J, Albers JJ. Dextran sulfate-Mg2+ precipitation procedure for quantitation of high-density-lipoprotein cholesterol. Clin Chem. 1982 Jun;28(6):1379–1388. [PubMed]
- Albers JJ, Adolphson JL, Chen CH. Radioimmunoassay of human plasma lecithin-cholesterol acyltransferase. J Clin Invest. 1981 Jan;67(1):141–148. [PubMed]
- Klein HG, Lohse P, Duverger N, Albers JJ, Rader DJ, Zech LA, Santamarina-Fojo S, Brewer HB., Jr Two different allelic mutations in the lecithin:cholesterol acyltransferase (LCAT) gene resulting in classic LCAT deficiency: LCAT (tyr83-->stop) and LCAT (tyr156-->asn). J Lipid Res. 1993 Jan;34(1):49–58. [PubMed]
- Stokke KT, Norum KR. Determination of lecithin: cholesterol acyltransfer in human blood plasma. Scand J Clin Lab Invest. 1971 Feb;27(1):21–27. [PubMed]
- Jiao S, Cole TG, Kitchens RT, Pfleger B, Schonfeld G. Genetic heterogeneity of lipoproteins in inbred strains of mice: analysis by gel-permeation chromatography. Metabolism. 1990 Feb;39(2):155–160. [PubMed]
- Gregg RE, Zech LA, Schaefer EJ, Brewer HB., Jr Apolipoprotein E metabolism in normolipoproteinemic human subjects. J Lipid Res. 1984 Nov;25(11):1167–1176. [PubMed]
- Ikewaki K, Rader DJ, Sakamoto T, Nishiwaki M, Wakimoto N, Schaefer JR, Ishikawa T, Fairwell T, Zech LA, Nakamura H, et al. Delayed catabolism of high density lipoprotein apolipoproteins A-I and A-II in human cholesteryl ester transfer protein deficiency. J Clin Invest. 1993 Oct;92(4):1650–1658. [PubMed]
- Shepherd J, Packard CJ, Gotto AM, Jr, Taunton OD. A comparison of two methods to investigate the metabolism of human apolipoproteins A-I and and A-II. J Lipid Res. 1978 Jul;19(5):656–661. [PubMed]
- Vega GL, Gylling H, Nichols AV, Grundy SM. Evaluation of a method for study of kinetics of autologous apolipoprotein A-I. J Lipid Res. 1991 May;32(5):867–875. [PubMed]
- Ikewaki K, Rader DJ, Schaefer JR, Fairwell T, Zech LA, Brewer HB., Jr Evaluation of apoA-I kinetics in humans using simultaneous endogenous stable isotope and exogenous radiotracer methods. J Lipid Res. 1993 Dec;34(12):2207–2215. [PubMed]
- Ross AC, Zilversmit DB. Chylomicron remnant cholesteryl esters as the major constituent of very low density lipoproteins in plasma of cholesterol-fed rabbits. J Lipid Res. 1977 Mar;18(2):169–181. [PubMed]
- Liang HQ, Rye KA, Barter PJ. Dissociation of lipid-free apolipoprotein A-I from high density lipoproteins. J Lipid Res. 1994 Jul;35(7):1187–1199. [PubMed]
- Garber DW, Venkatachalapathi YV, Gupta KB, Ibdah J, Phillips MC, Hazelrig JB, Segrest JP, Anantharamaiah GM. Turnover of synthetic class A amphipathic peptide analogues of exchangeable apolipoproteins in rats. Correlation with physical properties. Arterioscler Thromb. 1992 Aug;12(8):886–894. [PubMed]
- Westerlund JA, Weisgraber KH. Discrete carboxyl-terminal segments of apolipoprotein E mediate lipoprotein association and protein oligomerization. J Biol Chem. 1993 Jul 25;268(21):15745–15750. [PubMed]
- Hopkins GJ, Barter PJ. Role of triglyceride-rich lipoproteins and hepatic lipase in determining the particle size and composition of high density lipoproteins. J Lipid Res. 1986 Dec;27(12):1265–1277. [PubMed]
- Patsch JR, Gotto AM, Jr, Olivercrona T, Eisenberg S. Formation of high density lipoprotein2-like particles during lipolysis of very low density lipoproteins in vitro. Proc Natl Acad Sci U S A. 1978 Sep;75(9):4519–4523. [PubMed]
- Barter PJ, Hopkins GJ, Gorjatschko L. Lipoprotein substrates for plasma cholesterol esterification. Influence of particle size and composition of the high density lipoprotein subfraction 3. Atherosclerosis. 1985 Dec;58(1-3):97–107. [PubMed]
- Sparks DL, Anantharamaiah GM, Segrest JP, Phillips MC. Effect of the cholesterol content of reconstituted LpA-I on lecithin:cholesterol acyltransferase activity. J Biol Chem. 1995 Mar 10;270(10):5151–5157. [PubMed]
- Albers JJ, Bergelin RO, Adolphson JL, Wahl PW. Population-based reference values for lecithin-cholesterol acyltransferase (LCAT). Atherosclerosis. 1982 Jun;43(2-3):369–379. [PubMed]
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