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O Faergeman

Publications and source records attributed to O Faergeman.

At least 91 records · Page 5Linked to original sources

Mutation screening of the codon 3500 region of the apolipoprotein B gene by denaturing gradient-gel electrophoresis.

Familial defective apolipoprotein B (FDB) is a clinical condition resembling familial hypercholesterolemia. The underlying genetic defects are mutations in the apolipoprotein B-100 (apo B-100) gene. Two mutations (Arg3500 --> Gln and Arg3531 --> Cys) are known to date. We designed a denaturing gradient-gel electrophoresis (DGGE) technique to detect sequence variations in codons 3456-3553 of the apo B-100 gene. In 46 heterozygous FDB patients with the predominant codon 3500 mutation, a uniform four-band DGGE pattern was seen, whereas 57 non-FDB patients showed the uniform single-band pattern expected in normal homozygotes. The recently described codon 3531 mutation and a previously unpublished Arg --> Pro mutation in codon 3480 showed unique DGGE patterns, allowing unambiguous differentiation of the three mutations. The DGGE method thus both detects known FDB mutations and screens for other mutations in codons 3456-3553 of the low-density lipoprotein receptor binding region of apo B-100; it can be used as a first-line screening method for FDB.

Apolipoprotein B-100↗

Incidence of the apolipoprotein B-3500 mutation in Denmark.

A total of 5000 consecutively samples newborn screening cards were anonymously selected for screening for the apolipoprotein B-3500 (apo B-3500) mutation, which causes familial defective apolipoprotein B-100 (FDB). The mutation was found in 5 of 5000 Danish children, of whom 2 were twins. This indicates a lower prevalence of this mutation in Danes than that reported in the UK, Germany, USA, Austria, Canada and especially Switzerland. Haplotype studies suggest that Caucasian subjects with the apo B-3500 mutation have a common founder. The apparently lower prevalence in Denmark than in Switzerland and Central Europe may indicate that the mutation was brought from these areas to Denmark after the initial settling of Denmark. In 101 unrelated Danish subjects with familial hypercholesterolemia, diagnosed on clinical and biochemical criteria including tendon xanthomata, 2 were heterozygous for the apo B-3500 mutation (2%).

Apolipoproteins B↗

Genotyping compared with protein phenotyping of the common apolipoprotein E polymorphism.

Apolipoprotein E (apo E) genotypes have been determined in 460 Danish men, with the use of the polymerase chain reaction (PCR) to amplify a 244 base pair fragment spanning the first-base polymorphic sites in the codons of amino acids 112 and 158 followed by restriction endonuclease cleavage. The results were compared with the apo E phenotypes previously determined by isoelectric focusing (IEF) of delipidated plasma, not pretreated with neuraminidase, followed by apo E specific immunoblotting. Conflicting results were found in only 9 cases (2.0%) and in each case only with respect to one allele. Five of the discrepancies can be explained, post hoc, by technical difficulties with the IEF method ('faint bands'). A possible cause of the other 4 discrepancies is the presence of rare mutations. Our findings in this large study are reassuring, since, if appreciable and systematic misclassification of genotypes do occur by using IEF, as has been reported from some laboratories, it may influence the validity of genetic epidemiological studies.

Adult↗

Treatment of patients with familial defective apolipoprotein B-100 with pravastatin and gemfibrozil: a two-period cross-over study.

Thirty patients with familial defective apolipoprotein B-100 were treated in a two-period (8 weeks each) cross-over study with pravastatin and gemfibrozil. Cholesterol, LDL cholesterol, and apo B were reduced by 20-25% (P < 10(-4)) by pravastatin and by 4-6% by gemfibrozil (pravastatin vs. gemfibrozil: P < 10(-4)). Response to pravastatin was variable and not correlated to gender, age, or apo E genotype. Gemfibrozil lowered triglycerides by 25% (P < 10(-4)) and raised HDL cholesterol by 11%. The effects of pravastatin on these two interrelated variables were significantly smaller. Both drugs increased Lp(a) significantly by about 10%. The LDL cholesterol lowering effect of pravastatin in patients with FDB is similar to that observed in patients with familial hypercholesterolemia.

Adult↗

Apolipoprotein B gene polymorphisms in ischemic heart disease and hypercholesterolemia: effects of age and sex.

The association of polymorphic alleles of the apolipoprotein B gene (Insertion/Deletion-, XbaI-, MspI-, EcoRI-, and 3'-VNTR polymorphisms) with variation in lipid concentrations (total cholesterol (T-C), HDL cholesterol (HDL-C), and log-triglycerides (TG)) in plasma was studied in 259 men and 59 women with moderate hypercholesterolemia (T-C 5.5-8.0 mmol/l and TG < 2.5 mmol/l) and ischemic heart disease, especially in relation to the effect of sex and age. The XbaI and the Ins/Del polymorphic alleles were associated with variation in T-C, but only in patients below the 75th percentile for age. The XbaI and Ins/Del polymorphic alleles were synergistically associated with variation in T-C: the X+ and the Del alleles were associated with higher cholesterol concentrations. Younger male patients had the highest frequency of haplotypes including both the X+ and the Del alleles, but the most striking difference was a significantly higher frequency of haplotypes including both the X- and the Ins alleles in female and in older male patients. The heterogeneity of association of polymorphic alleles in the apolipoprotein B gene to complex traits like hypercholesterolemia and ischemic heart disease in this study could explain why in most studies the X+ allele has been associated with higher cholesterol levels, whereas the X- allele has been associated with symptomatic atherosclerosis. The results of our study emphasize the importance of age and sex in measured genotype association studies.

Adult↗

Characteristics of 46 heterozygous carriers and 57 unaffected relatives in five Danish families with familial defective apolipoprotein B-100.

Plasma concentrations of cholesterol, high-density lipoprotein (HDL) cholesterol, low-density lipoprotein (LDL) cholesterol, apolipoprotein (apo) B, and lipoprotein(a) (Lp[a]) in 46 persons heterozygous for the apo B-3500 mutation causing familial defective apo B-100 (FDB) were compared with those in 57 non-FDB relatives. FDB patients had 50% to 70% higher mean concentrations of cholesterol, LDL cholesterol, and apo B than non-FDB relatives (P < 10(-4) for all three variables). Triglycerides were higher (P = .016) and HDL cholesterol was lower (P = .021) in FDB patients. The concentration ranges of these variables were broad in each family, and there was no between-family difference in means for cholesterol and LDL cholesterol. There was no phenotype-specific difference in Lp(a) concentrations between FDB patients and non-FDB relatives. Apo E4 is normally associated with higher concentrations of LDL and apo E2 with lower concentrations. This relation was partly reversed in FDB patients: apo E4 was associated with lower apo B concentrations and apo E2 with higher apo B concentrations. Tendon xanthomata were found in members of two of the five families. Six of 12 FDB patients > 50 years old had atherosclerotic disease. In contrast, all 18 non-FDB relatives > 50 years old were apparently healthy. A total of 8 FDB patients with atherosclerotic disease had 36% higher cholesterol concentrations, 28% higher apo B concentrations, 50% higher triglyceride concentrations, and 120% higher Lp(a) concentrations than FDB patients without clinical atherosclerosis.(ABSTRACT TRUNCATED AT 250 WORDS)

Adolescent↗

A PvuII polymorphism of the low density lipoprotein receptor gene is not associated with plasma concentrations of low density lipoproteins including LP(a).

Lipoprotein(a) [Lp(a)] is a low density lipoprotein (LDL), in which apolipoprotein B-100 (apo B-100) is attached to apolipoprotein(a) [apo(a)], a glycoprotein of variable size. Lp(a) may be as atherogenic as LDL. In normal populations, Lp(a) concentrations in plasma are largely determined by the apo(a) gene locus on chromosome 6, but regulation of synthesis and catabolism of Lp(a) is poorly understood. In some studies, a PvuII restriction fragment length polymorphism (RFLP) in the LDL receptor gene seems to affect concentrations of LDL in plasma, and other studies have indicated that Lp(a) catabolism could be mediated by the LDL receptor. We therefore expected that the PvuII polymorphism in the LDL receptor gene might be associated with Lp(a) levels in 170 Caucasian men aged 40 years, selected to have a high representation of low molecular weight apo(a) phenotypes. However, plasma concentrations of cholesterol, LDL-cholesterol, HDL-cholesterol, triglycerides and Lp(a) were all unrelated to the LDL receptor gene PvuII polymorphism both in the group as a whole and when it was subgrouped by apo(a) phenotype. Therefore our data do not support the concept that this particular LDL receptor gene polymorphism is associated with LDL receptor function, and our data therefore neither support nor rule out a role for the LDL receptor in Lp(a) catabolism.

Adult↗

Polymorphisms in the apolipoprotein B-100 gene contributes to normal variation in plasma lipids in 464 Danish men born in 1948.

We have studied the possible association of 5 polymorphisms in the apoB gene [a 9-bp insertion/deletion length polymorphism in the signal peptide coding region, XbaI, MspI, and EcoRI restriction fragment length polymorphisms (RFLPs) and a 15-bp variable number of tandem repeats (VNTR) region 3' to the apoB gene] with plasma concentrations of cholesterol, high density lipoprotein cholesterol, triglycerides and apolipoprotein B-100 in 464 randomly selected Danish men born in 1948. The XbaI RFLP and the insertion/deletion length polymorphism were significantly associated with plasma concentration and inter-individual variation of cholesterol and apolipoprotein B-100 (1.77% and 1.37% of sample variance in cholesterol, and 1.4% and 1.39% of sample variance in apoB). The association was particularly strong in men with a body mass index less than 25 kg/m2 (the mean value of the whole cohort) (3.43% and 2.93% of sample variance in cholesterol, and 3.1% and 2.13% of sample variance in apoB). The XbaI RFLP and the insertion/deletion length polymorphism were in strong linkage disequilibrium, explaining why independent associations of these two polymorphisms with cholesterol and apoB could not be established. There were no other associations between apoB gene polymorphisms and lipoprotein components.

Alleles↗

Genetic markers in the apo AI-CIII-AIV gene cluster for combined hyperlipidemia, hypertriglyceridemia, and predisposition to atherosclerosis.

The aim of the present study was to search for genetic determinants of combined hyperlipidemia and hypertriglyceridemia, and to evaluate whether such determinants might be associated with predisposition to atherosclerosis. Four DNA polymorphisms in the apo AI-CIII-AIV gene cluster (G to A mutation at position -75 basepairs in the apo AI promoter, XmnI, PstI and SstI) were studied in relation to combined hyperlipidemia, hypertriglyceridemia, lipoprotein levels, atherosclerosis and age in 221 Danish men. The frequency of the rare allele of the XmnI polymorphism, the X+ allele, was higher in individuals below 55 years of age with combined hyperlipidemia than in individuals with normal lipid levels (0.31 vs. 0.14; P = 0.05). The rare allele of the SstI polymorphism, the S+ allele, was more frequent in hypertriglyceridemic individuals compared with normotriglyceridemic individuals (0.16 vs. 0.09; P < 0.05) and on analysis of variance the combined S-S+ and S+S+ genotypes were also associated with the highest triglyceride levels. Furthermore, the frequency of the S+ allele decreased significantly as a function of age in nonatherosclerotic subjects (from 0.15 to 0.10 to 0.02 in 48-, 63- and 85-year-olds, respectively; 48- versus 85-year-olds, P = 0.03). These results suggest that genetic variation in the apo AI-CIII-AIV gene complex is associated with combined hyperlipidemia and hypertriglyceridemia and may have an impact on longevity and/or predisposition to atherosclerosis.

Aged↗

Apolipoprotein(a) polymorphism predicts the increase of Lp(a) by pravastatin in patients with familial hypercholesterolaemia treated with bile acid sequestration.

HMG-CoA reductase inhibitors effectively reduce the concentration of low density lipoproteins (LDL) in plasma. Lipoprotein(a) [Lp(a)] may be as atherogenic as LDL. A few studies, only one of which was placebo controlled, suggest that the HMG CoA reductase inhibitors either do not affect Lp(a) or they increase Lp(a). The response of Lp(a) to HMG-CoA reductase inhibition has not been related to apolipoprotein(a) phenotypes in previous studies. We conducted a double-blind, placebo controlled study of pravastatin in 51 patients with familial hypercholesterolemia (FH) (n = 43) or probable FH (n = 8). All patients had LDL-cholesterol concentration above 4.1 mmol l-1 despite treatment with diet and bile acid sequestration. In patients assigned to pravastatin (n = 34), the mean concentrations of total cholesterol and LDL cholesterol fell significantly (P < 0.01) when compared to placebo. Lp(a) increased (P < 0.01) from a mean (+/- SD) of 33.6 +/- 40.8 mg dl-1 to 41.1 +/- 46.1 mg dl-1 on pravastatin but was unchanged during placebo treatment. The percentage increase in Lp(a) was the same in patients with different apo(a) phenotypes, and hence the absolute increase in Lp(a) was greatest in patients with the low molecular weight apo(a) phenotypes.

Adult↗

Disodium-ethylene diamine tetraacetic acid (EDTA) has no effect on blood lipids in atherosclerotic patients. A randomized, placebo-controlled study.

OBJECTIVE: To study whether intravenous disodium-ethylene diamine tetraacetic acid (EDTA) affects blood lipids in patients with intermittent claudication. DESIGN: Double-blind, randomized, placebo-controlled trial. PARTICIPANTS: Twenty-nine patients with intermittent claudication (systolic ankle-brachial blood pressure index < 0.8; pain free walking distance 50-200 m). INTERVENTION: 3 g EDTA or placebo (isotonic saline) per infusion over a period of 5-9 weeks to a total of 57 g EDTA. Patients received vitamins, minerals and trace-elements daily. RESULTS: 14 patients received EDTA and 15 placebo. There was no statistically significant difference in the plasma concentration of cholesterol, low-density lipoprotein (LDL) cholesterol, high-density lipoprotein (HDL) cholesterol or triglyceride between the 2 groups. CONCLUSION: Treatment with EDTA does not alter blood lipids in patients with intermittent claudication.

Adult↗

Generation of analytic plasma lipoprotein profiles using two prepacked superose 6B columns.

A simple, low-priced chromatographic system to generate plasma lipoprotein profiles from total human plasma was tested with plasma from normolipidemic subjects and patients with heterozygous familial hypercholesterolemia, hyper-alpha-lipoproteinemia, lipoprotein lipase deficiency, familial dysbetalipoproteinemia and familial lecithin-cholesterol-acyl-transferase deficiency. The system appears to be a good alternative to more expensive high-pressure liquid chromatography systems, notably in lipoprotein laboratories already provided with equipment for column chromatography. If a microplate photometer and a computer is available in the laboratory, the measurement of various lipids in 70-80 eluant fractions from the columns can be simplified.

Adult↗

Apolipoprotein E polymorphism in a Danish population compared to findings in 45 other study populations around the world.

Apolipoprotein E (apoE) phenotypes were determined in a random sample of 466 Danish men born in 1948. The frequencies of the common alleles of the apoE gene were (with 95% confidence intervals) epsilon 2 = 0.085 (0.068-0.105), epsilon 3 = 0.741 (0.712-0.769), and epsilon 4 = 0.174 (0.150-0.200). These frequencies were compared to findings in 45 other study populations around the world (n greater than 100). The Danish population was found to cluster with populations from Iceland, Norway, Iceland, Scotland, the Netherlands, Germany, France (Paris), and Caucasian populations in Canada and the USA. The compiled data further show that dissimilarities in apoE allele frequencies among Caucasian populations are comparable to dissimilarities between some Caucasian and Asian populations. Notably, the frequency of epsilon 4 appears to be higher in northern regions of Europe (the Nordic countries, Scotland, Germany, and the Netherlands) than in southern regions (Switzerland, Tyrol, France [Nancy], Italy, and Spain).

Adult↗

Differences in apolipoprotein (a) polymorphism in west Greenland Eskimos and Caucasian Danes.

Previous studies in Greenland suggest that death rates from ischemic heart disease [IHD] are lower in Eskimos than in Danes and other Caucasian populations. This has been explained by a high intake of n-3 polyunsaturated fatty acids with beneficial effects on blood lipids and hemostasis. In other populations, lipoprotein(a) [Lp(a)] is associated with IHD, plasma concentrations of Lp(a) being genetically determined to a major extent. We have compared Lp(a) concentrations and apo(a) phenotypes in 120 Greenlandic Eskimos with those in 466 Danish men. The median Lp(a) concentration in Eskimos (8.7 mg/dl;[95% CI 6.5-10.7]) was not significantly different from that in Danes (6.3 mg/dl; [95% CI 5.2-7.0]), whereas the 90th percentile was significantly higher among Danes: 46.36 mg/dl; [95% CI 43.0-54.3] vs. 27.6 mg/dl [95% CI 20.7-36.9]. In 20% of the Danes, but in only 8% of the Eskimos (P = 0.009), the concentration of Lp(a) exceeded 30 mg/dl. The difference is probably explained by a low frequency of the low molecular weight apo(a) phenotypes among Eskimos, since the apo(a) isoforms F and B were absent, and the S1 and S2 types were present in only 3.3% of Eskimos. In contrast, these apo(a) isoforms were present in 26.6% of the Danes in either single-band or double-band phenotypes. The pattern of apo(a) polymorphism found in this study could provide part of a genetic explanation for the putative low rates of IHD in Eskimo populations.

Adult↗